The different ways GENES and their ALLELES interact during the transmission of genetic traits that effect the outcome of GENE EXPRESSION.
The record of descent or ancestry, particularly of a particular condition or trait, indicating individual family members, their relationships, and their status with respect to the trait or condition.
Genes that influence the PHENOTYPE both in the homozygous and the heterozygous state.
The co-inheritance of two or more non-allelic GENES due to their being located more or less closely on the same CHROMOSOME.
Genes that influence the PHENOTYPE only in the homozygous state.
Deliberate breeding of two different individuals that results in offspring that carry part of the genetic material of each parent. The parent organisms must be genetically compatible and may be from different varieties or closely related species.
The percent frequency with which a dominant or homozygous recessive gene or gene combination manifests itself in the phenotype of the carriers. (From Glossary of Genetics, 5th ed)
The magnitude of INBREEDING in humans.
The outward appearance of the individual. It is the product of interactions between genes, and between the GENOTYPE and the environment.
Inherited myotonic disorders with early childhood onset MYOTONIA. Muscular hypertrophy is common and myotonia may impair ambulation and other movements. It is classified as Thomsen (autosomal dominant) or Becker (autosomal recessive) generalized myotonia mainly based on the inheritance pattern. Becker type is also clinically more severe. An autosomal dominant variant with milder symptoms and later onset is known as myotonia levior. Mutations in the voltage-dependent skeletal muscle chloride channel are associated with the disorders.
The health status of the family as a unit including the impact of the health of one member of the family on the family as a unit and on individual family members; also, the impact of family organization or disorganization on the health status of its members.
Any method used for determining the location of and relative distances between genes on a chromosome.
Any detectable and heritable change in the genetic material that causes a change in the GENOTYPE and which is transmitted to daughter cells and to succeeding generations.
Theoretical representations that simulate the behavior or activity of genetic processes or phenomena. They include the use of mathematical equations, computers, and other electronic equipment.
Hereditary, progressive degeneration of the neuroepithelium of the retina characterized by night blindness and progressive contraction of the visual field.
An individual having different alleles at one or more loci regarding a specific character.
Variant forms of the same gene, occupying the same locus on homologous CHROMOSOMES, and governing the variants in production of the same gene product.
The genetic constitution of the individual, comprising the ALLELES present at each GENETIC LOCUS.
A latent susceptibility to disease at the genetic level, which may be activated under certain conditions.
A characteristic symptom complex.
A phenotypically recognizable genetic trait which can be used to identify a genetic locus, a linkage group, or a recombination event.
The total relative probability, expressed on a logarithmic scale, that a linkage relationship exists among selected loci. Lod is an acronym for "logarithmic odds."
Biochemical identification of mutational changes in a nucleotide sequence.
Double-stranded DNA of MITOCHONDRIA. In eukaryotes, the mitochondrial GENOME is circular and codes for ribosomal RNAs, transfer RNAs, and about 10 proteins.
'Abnormalities, Multiple' is a broad term referring to the presence of two or more structural or functional anomalies in an individual, which may be genetic or environmental in origin, and can affect various systems and organs of the body.
The female sex chromosome, being the differential sex chromosome carried by half the male gametes and all female gametes in human and other male-heterogametic species.
The age, developmental stage, or period of life at which a disease or the initial symptoms or manifestations of a disease appear in an individual.
Detection of a MUTATION; GENOTYPE; KARYOTYPE; or specific ALLELES associated with genetic traits, heritable diseases, or predisposition to a disease, or that may lead to the disease in descendants. It includes prenatal genetic testing.
A variety of simple repeat sequences that are distributed throughout the GENOME. They are characterized by a short repeat unit of 2-8 basepairs that is repeated up to 100 times. They are also known as short tandem repeats (STRs).
An individual in which both alleles at a given locus are identical.
The genetic constitution of individuals with respect to one member of a pair of allelic genes, or sets of genes that are closely linked and tend to be inherited together such as those of the MAJOR HISTOCOMPATIBILITY COMPLEX.
Genotypic differences observed among individuals in a population.
Descriptions of specific amino acid, carbohydrate, or nucleotide sequences which have appeared in the published literature and/or are deposited in and maintained by databanks such as GENBANK, European Molecular Biology Laboratory (EMBL), National Biomedical Research Foundation (NBRF), or other sequence repositories.
A mutation in which a codon is mutated to one directing the incorporation of a different amino acid. This substitution may result in an inactive or unstable product. (From A Dictionary of Genetics, King & Stansfield, 5th ed)
The regular and simultaneous occurrence in a single interbreeding population of two or more discontinuous genotypes. The concept includes differences in genotypes ranging in size from a single nucleotide site (POLYMORPHISM, SINGLE NUCLEOTIDE) to large nucleotide sequences visible at a chromosomal level.
The sequence of PURINES and PYRIMIDINES in nucleic acids and polynucleotides. It is also called nucleotide sequence.
The transmission of traits encoded in GENES from parent to offspring.
Vertical transmission of hereditary characters by DNA from cytoplasmic organelles such as MITOCHONDRIA; CHLOROPLASTS; and PLASTIDS, or from PLASMIDS or viral episomal DNA.
A single nucleotide variation in a genetic sequence that occurs at appreciable frequency in the population.
A mutation caused by the substitution of one nucleotide for another. This results in the DNA molecule having a change in a single base pair.
A multistage process that includes cloning, physical mapping, subcloning, determination of the DNA SEQUENCE, and information analysis.
A phenotypic outcome (physical characteristic or disease predisposition) that is determined by more than one gene. Polygenic refers to those determined by many genes, while oligogenic refers to those determined by a few genes.
In vitro method for producing large amounts of specific DNA or RNA fragments of defined length and sequence from small amounts of short oligonucleotide flanking sequences (primers). The essential steps include thermal denaturation of the double-stranded target molecules, annealing of the primers to their complementary sequences, and extension of the annealed primers by enzymatic synthesis with DNA polymerase. The reaction is efficient, specific, and extremely sensitive. Uses for the reaction include disease diagnosis, detection of difficult-to-isolate pathogens, mutation analysis, genetic testing, DNA sequencing, and analyzing evolutionary relationships.
A deoxyribonucleotide polymer that is the primary genetic material of all cells. Eukaryotic and prokaryotic organisms normally contain DNA in a double-stranded state, yet several important biological processes transiently involve single-stranded regions. DNA, which consists of a polysugar-phosphate backbone possessing projections of purines (adenine and guanine) and pyrimidines (thymine and cytosine), forms a double helix that is held together by hydrogen bonds between these purines and pyrimidines (adenine to thymine and guanine to cytosine).
Diseases that are caused by genetic mutations present during embryo or fetal development, although they may be observed later in life. The mutations may be inherited from a parent's genome or they may be acquired in utero.
The genetic process of crossbreeding between genetically dissimilar parents to produce a hybrid.
A genetic process by which the adult organism is realized via mechanisms that lead to the restriction in the possible fates of cells, eventually leading to their differentiated state. Mechanisms involved cause heritable changes to cells without changes to DNA sequence such as DNA METHYLATION; HISTONE modification; DNA REPLICATION TIMING; NUCLEOSOME positioning; and heterochromatization which result in selective gene expression or repression.
A subdiscipline of human genetics which entails the reliable prediction of certain human disorders as a function of the lineage and/or genetic makeup of an individual or of any two parents or potential parents.
The variable phenotypic expression of a GENE depending on whether it is of paternal or maternal origin, which is a function of the DNA METHYLATION pattern. Imprinted regions are observed to be more methylated and less transcriptionally active. (Segen, Dictionary of Modern Medicine, 1992)
The branch of science concerned with the means and consequences of transmission and generation of the components of biological inheritance. (Stedman, 26th ed)
Genes that are located on the MITOCHONDRIAL DNA. Mitochondrial inheritance is often referred to as maternal inheritance but should be differentiated from maternal inheritance that is transmitted chromosomally.
The presence of apparently similar characters for which the genetic evidence indicates that different genes or different genetic mechanisms are involved in different pedigrees. In clinical settings genetic heterogeneity refers to the presence of a variety of genetic defects which cause the same disease, often due to mutations at different loci on the same gene, a finding common to many human diseases including ALZHEIMER DISEASE; CYSTIC FIBROSIS; LIPOPROTEIN LIPASE DEFICIENCY, FAMILIAL; and POLYCYSTIC KIDNEY DISEASES. (Rieger, et al., Glossary of Genetics: Classical and Molecular, 5th ed; Segen, Dictionary of Modern Medicine, 1992)
A class in the phylum MOLLUSCA comprised of mussels; clams; OYSTERS; COCKLES; and SCALLOPS. They are characterized by a bilaterally symmetrical hinged shell and a muscular foot used for burrowing and anchoring.
The proportion of one particular in the total of all ALLELES for one genetic locus in a breeding POPULATION.

Inheritance of flower color in periwinkle: orange-red corolla and white eye. (1/858)

The commonly found flower colors in periwinkle (Catharanthus roseus)--pink, white, red-eyed, and pale pink center--are reported to be governed by the epistatic interaction between four genes--A, R, W, and I. The mode of inheritance of an uncommon flower color, orange-red corolla and white eye, was studied by crossing an accession possessing this corolla color with a white flowered variety (Nirmal). The phenotype of the F(1) plants and segregation data of F(2) and backcross generations suggested the involvement of two more interacting and independently inherited genes, one (proposed symbol E) determining the presence or absence of red eye and another (proposed symbol O) determining orange-red corolla.  (+info)

Inheritance and linkage of allozymes in a Balkan endemic, Pinus peuce Griseb. (2/858)

This article presents a study of isozyme variation in Pinus peuce Griseb., a Balkan endemic. Among the enzyme systems studied, five were monomorphic and eight were polymorphic in at least one locus. The segregation analysis of the polymorphic loci were consistent with a Mendelian mode of inheritance. No significant deviation from the expected ratio was observed both at the individual and pooled segregation data levels. Segregation patterns were homogeneous across individuals. Two significant linkage groups were found in P. peuce: FEST-2:LAP-2 and 6PG-1:6PG-2, which correspond to the results obtained for other pine species.  (+info)

Dopaminergic system genes in ADHD: toward a biological hypothesis. (3/858)

Converging evidence has implicated abnormalities of dopamine neurotransmission to the pathology of attention deficit hyperactivity disorder (ADHD). Several genetic association studies have been published, but so far, no DNA variants have been unequivocally demonstrated as contributing to ADHD susceptibility. Four dopamine related gene loci have been implicated, however: DAT 1, DRD 4, DBH, and DRD 5. Each of these may influence the liability of ADHD to a small degree. Notably, all are involved in signal transduction at the neuronal synapse. In this article, we investigate as candidate genes for ADHD, DNA polymorphisms at dopamine receptors, the dopamine transporter, and genes known to be involved in dopamine synthesis and metabolism. In a recent article, we confirmed the previously reported association of DAT 1 (480 bp allele) with ADHD and identified polymorphisms at two additional loci showing preferential transmission to ADHD children of alleles at DRD 5 (148 bp allele) and at DBH (allele 2, Taq I polymorphism). Increased transmission of the 4 bp deletion in the untranslated exon 1 of the DOPA decarboxylase gene was also observed but was of marginal significance. Nonsignificant trends of association were found for TH (allele 2) and DRD2 (Ser-311). No preferential transmission of alleles to ADHD children was observed for polymorphisms at DRD 1, DRD 2 (Taq I), DRD 3, DRD 4, and COMT. Analyzing the data by sex of transmitting parent showed significant preferential paternal transmission of alleles at TH (allele 2) and a nonsignificant trend for paternal transmission for DRD 2 (Ser-311). We attempt to put these findings together with what is known of the function of the particular proteins, and suggest working hypotheses.  (+info)

Simulating complex traits influenced by genes with fuzzy-valued effects in pedigreed populations. (4/858)

MOTIVATION: Methods involving fuzzy theory have been rarely applied to genetics. We present an open platform for experimentation with fuzzy numbers as a tool to represent imprecise phenotypes in genetic modeling. RESULTS: A C++ library for simulation of genetic information transmission is introduced. The study of genetic linkage was its first goal, though a design so general as possible has been meant. Fuzzy-valued phenotypes are handled by means of fuzzy numbers. AVAILABILITY: ftp://carleos.etsiig.uniovi.es/pub/falin ftp://fisher.ciencias.uniovi.es/pub/falin ftp://bellman.ciencias.uniovi.es/pub/falin Licensed under the GNU General Public License version 2 (see http://www.gnu.org/licenses/gpl.html).  (+info)

Genetic biases for showy males: are some genetic systems especially conducive to sexual selection? (5/858)

Male secondary sexual characters (conspicuous ornaments, signals, colors) are among nature's most striking features. Yet, it is unclear why certain groups of organisms are more likely than others to evolve these traits. One explanation for such taxonomic biases is that some genetic systems may be especially conducive to sexual selection. Here, we present theory and simulation results demonstrating that rare alleles encoding either male ornaments or female preferences for those ornaments are better protected against random loss in species with ZZZW or ZZZO sex chromosome systems (male homogamety) than in species with XXXY or XXXO systems (male heterogamety). Moreover, this protection is much stronger in diploid than haplodiploid species. We also present empirical data showing that male secondary sexual characters are better developed in diploid than haplodiploid species and in diploid species with male homogamety than in those with male heterogamety. Thus, taxonomic biases for showy males may stem from differences in sex chromosome systems.  (+info)

Inheritance of a novel flaccid mutant in Capsicum annuum. (6/858)

A mutant that causes a novel flaccidity phenotype in bell pepper (Capsicum annuum L.) was generated by treating seeds with ethyl methanesulfonate (EMS). Inheritance studies indicated that the mutant was controlled by a single recessive gene. It is proposed that the gene designation representing this mutation be flc (flaccid). The mutation may be useful for investigations of the genetic basis for turgor maintenance and drought stress physiology.  (+info)

A family-based test for correlation between gene expression and trait values. (7/858)

Advances in microarray technology have made it attractive to combine information on clinical traits, marker genotypes, and comprehensive gene expression from family studies to dissect complex disease genetics. Without accounting for family structure, methods that test for association between a trait and gene-expression levels can be misleading. We demonstrate that the standard unstratified test based on Pearson's correlation coefficient can produce spurious results when applied to family data, and we present a stratified family expression association test (FEXAT). We illustrate the utility of the FEXAT via simulation and an application to gene-expression data from lymphoblastoid cell lines from four CEPH families. The FEXAT has a smaller estimated false-discovery rate than the standard test when within-family correlations are of interest, and it detects biologically plausible correlations between beta catenin and genes in the WNT-activation pathway in humans that the standard test does not.  (+info)

Consistency of genetic inheritance mode and heritability patterns of triglyceride vs. high density lipoprotein cholesterol ratio in two Taiwanese family samples. (8/858)

BACKGROUND: Triglyceride/HDL cholesterol ratio (TG/HDL-C) is considered as a risk factor for cardiovascular events. Genetic components were important in controlling the variation in western countries. But the mode of inheritance and family aggregation patterns were still unknown among Asian-Pacific countries. This study, based on families recruited from community and hospital, is aimed to investigate the mode of inheritance, heritability and shared environmental factors in controlling TG/HDL-C. RESULTS: Two populations, one from community-based families (n = 988, 894 parent-offspring and 453 sibling pairs) and the other from hospital-based families (n = 1313, 76 parent-offspring and 52 sibling pairs) were sampled. The population in hospital-based families had higher mean age values than community-based families (54.7 vs. 34.0). Logarithmic transformed TG/ HDL-C values, after adjusted by age, gender and body mass index, were for genetic analyses. Significant parent-offspring and sibling correlations were also found in both samples. The parent-offspring correlation coefficient was higher in the hospital-based families than in the community-based families. Genetic heritability was higher in community-based families (0.338 +/- 0.114, p = 0.002), but the common shared environmental factor was higher in hospital-based families (0.203 +/- 0.042, p < 0.001). Commingling analyses showed that more than one-component distribution models were the best-fit models to explain the variance in both populations. Complex segregation analysis by regressive models revealed that in both samples the best-fit model of TG/HDL-C was the model of environmental effects plus familial correlation, in which significant parent-offspring and sibling correlations were demonstrated. Models of major gene effects were rejected in both samples. CONCLUSION: Variations of TG/HDL-C in the normal ranges were likely to be influenced by multiple factors, including environmental and genetic components. Higher genetic factors were proved in younger community-based families than in older hospital-based families.  (+info)

Inheritance patterns refer to the way in which a particular genetic trait or disorder is passed down from one generation to the next, following the rules of Mendelian genetics. There are several different inheritance patterns, including:

1. Autosomal dominant: A single copy of the altered gene in each cell is sufficient to cause the disorder. An affected parent has a 50% chance of passing on the altered gene to each offspring.
2. Autosomal recessive: Two copies of the altered gene in each cell are necessary for the disorder to occur. Both parents must be carriers of the altered gene and have a 25% chance of passing on the altered gene to each offspring, who may then develop the disorder.
3. X-linked dominant: The altered gene is located on the X chromosome, and one copy of the altered gene in each cell is sufficient to cause the disorder. Females are more likely to be affected than males, and an affected female has a 50% chance of passing on the altered gene to each offspring.
4. X-linked recessive: The altered gene is located on the X chromosome, and two copies of the altered gene in each cell are necessary for the disorder to occur. Males are more likely to be affected than females, and an affected male will pass on the altered gene to all of his daughters (who will be carriers) but none of his sons.
5. Mitochondrial inheritance: The altered gene is located in the mitochondria, the energy-producing structures in cells. Both males and females can pass on mitochondrial genetic disorders, but only through the female line because offspring inherit their mother's mitochondria.

Understanding inheritance patterns helps medical professionals predict the likelihood of a genetic disorder occurring in families and provides information about how a disorder may be passed down through generations.

I must clarify that the term "pedigree" is not typically used in medical definitions. Instead, it is often employed in genetics and breeding, where it refers to the recorded ancestry of an individual or a family, tracing the inheritance of specific traits or diseases. In human genetics, a pedigree can help illustrate the pattern of genetic inheritance in families over multiple generations. However, it is not a medical term with a specific clinical definition.

Dominant genes refer to the alleles (versions of a gene) that are fully expressed in an individual's phenotype, even if only one copy of the gene is present. In dominant inheritance patterns, an individual needs only to receive one dominant allele from either parent to express the associated trait. This is in contrast to recessive genes, where both copies of the gene must be the recessive allele for the trait to be expressed. Dominant genes are represented by uppercase letters (e.g., 'A') and recessive genes by lowercase letters (e.g., 'a'). If an individual inherits one dominant allele (A) from either parent, they will express the dominant trait (A).

Genetic linkage is the phenomenon where two or more genetic loci (locations on a chromosome) tend to be inherited together because they are close to each other on the same chromosome. This occurs during the process of sexual reproduction, where homologous chromosomes pair up and exchange genetic material through a process called crossing over.

The closer two loci are to each other on a chromosome, the lower the probability that they will be separated by a crossover event. As a result, they are more likely to be inherited together and are said to be linked. The degree of linkage between two loci can be measured by their recombination frequency, which is the percentage of meiotic events in which a crossover occurs between them.

Linkage analysis is an important tool in genetic research, as it allows researchers to identify and map genes that are associated with specific traits or diseases. By analyzing patterns of linkage between markers (identifiable DNA sequences) and phenotypes (observable traits), researchers can infer the location of genes that contribute to those traits or diseases on chromosomes.

Recessive genes refer to the alleles (versions of a gene) that will only be expressed when an individual has two copies of that particular allele, one inherited from each parent. If an individual inherits one recessive allele and one dominant allele for a particular gene, the dominant allele will be expressed and the recessive allele will have no effect on the individual's phenotype (observable traits).

Recessive genes can still play a role in determining an individual's genetic makeup and can be passed down through generations even if they are not expressed. If two carriers of a recessive gene have children, there is a 25% chance that their offspring will inherit two copies of the recessive allele and exhibit the associated recessive trait.

Examples of genetic disorders caused by recessive genes include cystic fibrosis, sickle cell anemia, and albinism.

"Genetic crosses" refer to the breeding of individuals with different genetic characteristics to produce offspring with specific combinations of traits. This process is commonly used in genetics research to study the inheritance patterns and function of specific genes.

There are several types of genetic crosses, including:

1. Monohybrid cross: A cross between two individuals that differ in the expression of a single gene or trait.
2. Dihybrid cross: A cross between two individuals that differ in the expression of two genes or traits.
3. Backcross: A cross between an individual from a hybrid population and one of its parental lines.
4. Testcross: A cross between an individual with unknown genotype and a homozygous recessive individual.
5. Reciprocal cross: A cross in which the male and female parents are reversed to determine if there is any effect of sex on the expression of the trait.

These genetic crosses help researchers to understand the mode of inheritance, linkage, recombination, and other genetic phenomena.

Penetrance, in medical genetics, refers to the proportion of individuals with a particular genetic variant or mutation who exhibit clinical features or symptoms of a resulting disease. It is often expressed as a percentage, with complete penetrance indicating that all individuals with the genetic change will develop the disease, and reduced or incomplete penetrance suggesting that not all individuals with the genetic change will necessarily develop the disease, even if they express some of its characteristics.

Penetrance can vary depending on various factors such as age, sex, environmental influences, and interactions with other genes. Incomplete penetrance is common in many genetic disorders, making it challenging to predict who will develop symptoms based solely on their genotype.

Consanguinity is a medical and genetic term that refers to the degree of genetic relationship between two individuals who share common ancestors. Consanguineous relationships exist when people are related by blood, through a common ancestor or siblings who have children together. The closer the relationship between the two individuals, the higher the degree of consanguinity.

The degree of consanguinity is typically expressed as a percentage or fraction, with higher values indicating a closer genetic relationship. For example, first-degree relatives, such as parents and children or full siblings, share approximately 50% of their genes and have a consanguinity coefficient of 0.25 (or 25%).

Consanguinity can increase the risk of certain genetic disorders and birth defects in offspring due to the increased likelihood of sharing harmful recessive genes. The risks depend on the degree of consanguinity, with closer relationships carrying higher risks. It is important for individuals who are planning to have children and have a history of consanguinity to consider genetic counseling and testing to assess their risk of passing on genetic disorders.

A phenotype is the physical or biochemical expression of an organism's genes, or the observable traits and characteristics resulting from the interaction of its genetic constitution (genotype) with environmental factors. These characteristics can include appearance, development, behavior, and resistance to disease, among others. Phenotypes can vary widely, even among individuals with identical genotypes, due to differences in environmental influences, gene expression, and genetic interactions.

Myotonia Congenita is a genetic muscle disorder characterized by delayed relaxation after voluntary muscle contraction, leading to stiffness or difficulty in relaxing the muscles following use. This muscle stiffness is called myotonia and can be aggravated by voluntary muscle action, such as handgrip or walking, and also occurs after periods of rest.

There are two main forms of Myotonia Congenita: Thomsen's disease (autosomal dominant inheritance) and Becker's disease (autosomal recessive inheritance). The disorder is caused by mutations in the CLCN1 gene, which encodes a chloride channel that helps regulate muscle excitability.

Myotonia Congenita primarily affects skeletal muscles, causing stiffness and cramping, but it does not typically affect muscle strength or size. Symptoms usually begin in childhood and may improve with repeated muscle use (warm-up phenomenon). Treatment options include medication to reduce muscle stiffness and physical therapy to maintain muscle flexibility and strength.

"Family Health" is not a term that has a single, widely accepted medical definition. However, in the context of healthcare and public health, "family health" often refers to the physical, mental, and social well-being of all members of a family unit. It includes the assessment, promotion, and prevention of health conditions that affect individual family members as well as the family as a whole.

Family health may also encompass interventions and programs that aim to strengthen family relationships, communication, and functioning, as these factors can have a significant impact on overall health outcomes. Additionally, family health may involve addressing social determinants of health, such as poverty, housing, and access to healthcare, which can affect the health of families and communities.

Overall, family health is a holistic approach to healthcare that recognizes the importance of considering the needs and experiences of all family members in promoting and maintaining good health.

Chromosome mapping, also known as physical mapping, is the process of determining the location and order of specific genes or genetic markers on a chromosome. This is typically done by using various laboratory techniques to identify landmarks along the chromosome, such as restriction enzyme cutting sites or patterns of DNA sequence repeats. The resulting map provides important information about the organization and structure of the genome, and can be used for a variety of purposes, including identifying the location of genes associated with genetic diseases, studying evolutionary relationships between organisms, and developing genetic markers for use in breeding or forensic applications.

A mutation is a permanent change in the DNA sequence of an organism's genome. Mutations can occur spontaneously or be caused by environmental factors such as exposure to radiation, chemicals, or viruses. They may have various effects on the organism, ranging from benign to harmful, depending on where they occur and whether they alter the function of essential proteins. In some cases, mutations can increase an individual's susceptibility to certain diseases or disorders, while in others, they may confer a survival advantage. Mutations are the driving force behind evolution, as they introduce new genetic variability into populations, which can then be acted upon by natural selection.

Genetic models are theoretical frameworks used in genetics to describe and explain the inheritance patterns and genetic architecture of traits, diseases, or phenomena. These models are based on mathematical equations and statistical methods that incorporate information about gene frequencies, modes of inheritance, and the effects of environmental factors. They can be used to predict the probability of certain genetic outcomes, to understand the genetic basis of complex traits, and to inform medical management and treatment decisions.

There are several types of genetic models, including:

1. Mendelian models: These models describe the inheritance patterns of simple genetic traits that follow Mendel's laws of segregation and independent assortment. Examples include autosomal dominant, autosomal recessive, and X-linked inheritance.
2. Complex trait models: These models describe the inheritance patterns of complex traits that are influenced by multiple genes and environmental factors. Examples include heart disease, diabetes, and cancer.
3. Population genetics models: These models describe the distribution and frequency of genetic variants within populations over time. They can be used to study evolutionary processes, such as natural selection and genetic drift.
4. Quantitative genetics models: These models describe the relationship between genetic variation and phenotypic variation in continuous traits, such as height or IQ. They can be used to estimate heritability and to identify quantitative trait loci (QTLs) that contribute to trait variation.
5. Statistical genetics models: These models use statistical methods to analyze genetic data and infer the presence of genetic associations or linkage. They can be used to identify genetic risk factors for diseases or traits.

Overall, genetic models are essential tools in genetics research and medical genetics, as they allow researchers to make predictions about genetic outcomes, test hypotheses about the genetic basis of traits and diseases, and develop strategies for prevention, diagnosis, and treatment.

Retinitis pigmentosa (RP) is a group of rare, genetic disorders that involve a breakdown and loss of cells in the retina - a light-sensitive tissue located at the back of the eye. The retina converts light into electrical signals which are then sent to the brain and interpreted as visual images.

In RP, the cells that detect light (rods and cones) degenerate more slowly than other cells in the retina, leading to a progressive loss of vision. Symptoms typically begin in childhood with night blindness (difficulty seeing in low light), followed by a gradual narrowing of the visual field (tunnel vision). Over time, this can lead to significant vision loss and even blindness.

The condition is usually inherited and there are several different genes that have been associated with RP. The diagnosis is typically made based on a combination of genetic testing, family history, and clinical examination. Currently, there is no cure for RP, but researchers are actively working to develop new treatments that may help slow or stop the progression of the disease.

A heterozygote is an individual who has inherited two different alleles (versions) of a particular gene, one from each parent. This means that the individual's genotype for that gene contains both a dominant and a recessive allele. The dominant allele will be expressed phenotypically (outwardly visible), while the recessive allele may or may not have any effect on the individual's observable traits, depending on the specific gene and its function. Heterozygotes are often represented as 'Aa', where 'A' is the dominant allele and 'a' is the recessive allele.

An allele is a variant form of a gene that is located at a specific position on a specific chromosome. Alleles are alternative forms of the same gene that arise by mutation and are found at the same locus or position on homologous chromosomes.

Each person typically inherits two copies of each gene, one from each parent. If the two alleles are identical, a person is said to be homozygous for that trait. If the alleles are different, the person is heterozygous.

For example, the ABO blood group system has three alleles, A, B, and O, which determine a person's blood type. If a person inherits two A alleles, they will have type A blood; if they inherit one A and one B allele, they will have type AB blood; if they inherit two B alleles, they will have type B blood; and if they inherit two O alleles, they will have type O blood.

Alleles can also influence traits such as eye color, hair color, height, and other physical characteristics. Some alleles are dominant, meaning that only one copy of the allele is needed to express the trait, while others are recessive, meaning that two copies of the allele are needed to express the trait.

Genotype, in genetics, refers to the complete heritable genetic makeup of an individual organism, including all of its genes. It is the set of instructions contained in an organism's DNA for the development and function of that organism. The genotype is the basis for an individual's inherited traits, and it can be contrasted with an individual's phenotype, which refers to the observable physical or biochemical characteristics of an organism that result from the expression of its genes in combination with environmental influences.

It is important to note that an individual's genotype is not necessarily identical to their genetic sequence. Some genes have multiple forms called alleles, and an individual may inherit different alleles for a given gene from each parent. The combination of alleles that an individual inherits for a particular gene is known as their genotype for that gene.

Understanding an individual's genotype can provide important information about their susceptibility to certain diseases, their response to drugs and other treatments, and their risk of passing on inherited genetic disorders to their offspring.

Genetic predisposition to disease refers to an increased susceptibility or vulnerability to develop a particular illness or condition due to inheriting specific genetic variations or mutations from one's parents. These genetic factors can make it more likely for an individual to develop a certain disease, but it does not guarantee that the person will definitely get the disease. Environmental factors, lifestyle choices, and interactions between genes also play crucial roles in determining if a genetically predisposed person will actually develop the disease. It is essential to understand that having a genetic predisposition only implies a higher risk, not an inevitable outcome.

A syndrome, in medical terms, is a set of symptoms that collectively indicate or characterize a disease, disorder, or underlying pathological process. It's essentially a collection of signs and/or symptoms that frequently occur together and can suggest a particular cause or condition, even though the exact physiological mechanisms might not be fully understood.

For example, Down syndrome is characterized by specific physical features, cognitive delays, and other developmental issues resulting from an extra copy of chromosome 21. Similarly, metabolic syndromes like diabetes mellitus type 2 involve a group of risk factors such as obesity, high blood pressure, high blood sugar, and abnormal cholesterol or triglyceride levels that collectively increase the risk of heart disease, stroke, and diabetes.

It's important to note that a syndrome is not a specific diagnosis; rather, it's a pattern of symptoms that can help guide further diagnostic evaluation and management.

Genetic markers are specific segments of DNA that are used in genetic mapping and genotyping to identify specific genetic locations, diseases, or traits. They can be composed of short tandem repeats (STRs), single nucleotide polymorphisms (SNPs), restriction fragment length polymorphisms (RFLPs), or variable number tandem repeats (VNTRs). These markers are useful in various fields such as genetic research, medical diagnostics, forensic science, and breeding programs. They can help to track inheritance patterns, identify genetic predispositions to diseases, and solve crimes by linking biological evidence to suspects or victims.

A LOD (Logarithm of Odds) score is not a medical term per se, but rather a statistical concept that is used in genetic research and linkage analysis to determine the likelihood of a gene or genetic marker being linked to a particular disease or trait. The LOD score compares the odds of observing the pattern of inheritance of a genetic marker in a family if the marker is linked to the disease, versus the odds if the marker is not linked. A LOD score of 3 or higher is generally considered evidence for linkage, while a score of -2 or lower is considered evidence against linkage.

DNA Mutational Analysis is a laboratory test used to identify genetic variations or changes (mutations) in the DNA sequence of a gene. This type of analysis can be used to diagnose genetic disorders, predict the risk of developing certain diseases, determine the most effective treatment for cancer, or assess the likelihood of passing on an inherited condition to offspring.

The test involves extracting DNA from a patient's sample (such as blood, saliva, or tissue), amplifying specific regions of interest using polymerase chain reaction (PCR), and then sequencing those regions to determine the precise order of nucleotide bases in the DNA molecule. The resulting sequence is then compared to reference sequences to identify any variations or mutations that may be present.

DNA Mutational Analysis can detect a wide range of genetic changes, including single-nucleotide polymorphisms (SNPs), insertions, deletions, duplications, and rearrangements. The test is often used in conjunction with other diagnostic tests and clinical evaluations to provide a comprehensive assessment of a patient's genetic profile.

It is important to note that not all mutations are pathogenic or associated with disease, and the interpretation of DNA Mutational Analysis results requires careful consideration of the patient's medical history, family history, and other relevant factors.

Mitochondrial DNA (mtDNA) is the genetic material present in the mitochondria, which are specialized structures within cells that generate energy. Unlike nuclear DNA, which is present in the cell nucleus and inherited from both parents, mtDNA is inherited solely from the mother.

MtDNA is a circular molecule that contains 37 genes, including 13 genes that encode for proteins involved in oxidative phosphorylation, a process that generates energy in the form of ATP. The remaining genes encode for rRNAs and tRNAs, which are necessary for protein synthesis within the mitochondria.

Mutations in mtDNA can lead to a variety of genetic disorders, including mitochondrial diseases, which can affect any organ system in the body. These mutations can also be used in forensic science to identify individuals and establish biological relationships.

'Abnormalities, Multiple' is a broad term that refers to the presence of two or more structural or functional anomalies in an individual. These abnormalities can be present at birth (congenital) or can develop later in life (acquired). They can affect various organs and systems of the body and can vary greatly in severity and impact on a person's health and well-being.

Multiple abnormalities can occur due to genetic factors, environmental influences, or a combination of both. Chromosomal abnormalities, gene mutations, exposure to teratogens (substances that cause birth defects), and maternal infections during pregnancy are some of the common causes of multiple congenital abnormalities.

Examples of multiple congenital abnormalities include Down syndrome, Turner syndrome, and VATER/VACTERL association. Acquired multiple abnormalities can result from conditions such as trauma, infection, degenerative diseases, or cancer.

The medical evaluation and management of individuals with multiple abnormalities depend on the specific abnormalities present and their impact on the individual's health and functioning. A multidisciplinary team of healthcare professionals is often involved in the care of these individuals to address their complex needs.

The X chromosome is one of the two types of sex-determining chromosomes in humans (the other being the Y chromosome). It's one of the 23 pairs of chromosomes that make up a person's genetic material. Females typically have two copies of the X chromosome (XX), while males usually have one X and one Y chromosome (XY).

The X chromosome contains hundreds of genes that are responsible for the production of various proteins, many of which are essential for normal bodily functions. Some of the critical roles of the X chromosome include:

1. Sex Determination: The presence or absence of the Y chromosome determines whether an individual is male or female. If there is no Y chromosome, the individual will typically develop as a female.
2. Genetic Disorders: Since females have two copies of the X chromosome, they are less likely to be affected by X-linked genetic disorders than males. Males, having only one X chromosome, will express any recessive X-linked traits they inherit.
3. Dosage Compensation: To compensate for the difference in gene dosage between males and females, a process called X-inactivation occurs during female embryonic development. One of the two X chromosomes is randomly inactivated in each cell, resulting in a single functional copy per cell.

The X chromosome plays a crucial role in human genetics and development, contributing to various traits and characteristics, including sex determination and dosage compensation.

The "age of onset" is a medical term that refers to the age at which an individual first develops or displays symptoms of a particular disease, disorder, or condition. It can be used to describe various medical conditions, including both physical and mental health disorders. The age of onset can have implications for prognosis, treatment approaches, and potential causes of the condition. In some cases, early onset may indicate a more severe or progressive course of the disease, while late-onset symptoms might be associated with different underlying factors or etiologies. It is essential to provide accurate and precise information regarding the age of onset when discussing a patient's medical history and treatment plan.

Genetic testing is a type of medical test that identifies changes in chromosomes, genes, or proteins. The results of a genetic test can confirm or rule out a suspected genetic condition or help determine a person's chance of developing or passing on a genetic disorder. Genetic tests are performed on a sample of blood, hair, skin, amniotic fluid (the fluid that surrounds a fetus during pregnancy), or other tissue. For example, a physician may recommend genetic testing to help diagnose a genetic condition, confirm the presence of a gene mutation known to increase the risk of developing certain cancers, or determine the chance for a couple to have a child with a genetic disorder.

There are several types of genetic tests, including:

* Diagnostic testing: This type of test is used to identify or confirm a suspected genetic condition in an individual. It may be performed before birth (prenatal testing) or at any time during a person's life.
* Predictive testing: This type of test is used to determine the likelihood that a person will develop a genetic disorder. It is typically offered to individuals who have a family history of a genetic condition but do not show any symptoms themselves.
* Carrier testing: This type of test is used to determine whether a person carries a gene mutation for a genetic disorder. It is often offered to couples who are planning to have children and have a family history of a genetic condition or belong to a population that has an increased risk of certain genetic disorders.
* Preimplantation genetic testing: This type of test is used in conjunction with in vitro fertilization (IVF) to identify genetic changes in embryos before they are implanted in the uterus. It can help couples who have a family history of a genetic disorder or who are at risk of having a child with a genetic condition to conceive a child who is free of the genetic change in question.
* Pharmacogenetic testing: This type of test is used to determine how an individual's genes may affect their response to certain medications. It can help healthcare providers choose the most effective medication and dosage for a patient, reducing the risk of adverse drug reactions.

It is important to note that genetic testing should be performed under the guidance of a qualified healthcare professional who can interpret the results and provide appropriate counseling and support.

Microsatellite repeats, also known as short tandem repeats (STRs), are repetitive DNA sequences made up of units of 1-6 base pairs that are repeated in a head-to-tail manner. These repeats are spread throughout the human genome and are highly polymorphic, meaning they can have different numbers of repeat units in different individuals.

Microsatellites are useful as genetic markers because of their high degree of variability. They are commonly used in forensic science to identify individuals, in genealogy to trace ancestry, and in medical research to study genetic diseases and disorders. Mutations in microsatellite repeats have been associated with various neurological conditions, including Huntington's disease and fragile X syndrome.

A homozygote is an individual who has inherited the same allele (version of a gene) from both parents and therefore possesses two identical copies of that allele at a specific genetic locus. This can result in either having two dominant alleles (homozygous dominant) or two recessive alleles (homozygous recessive). In contrast, a heterozygote has inherited different alleles from each parent for a particular gene.

The term "homozygote" is used in genetics to describe the genetic makeup of an individual at a specific locus on their chromosomes. Homozygosity can play a significant role in determining an individual's phenotype (observable traits), as having two identical alleles can strengthen the expression of certain characteristics compared to having just one dominant and one recessive allele.

A haplotype is a group of genes or DNA sequences that are inherited together from a single parent. It refers to a combination of alleles (variant forms of a gene) that are located on the same chromosome and are usually transmitted as a unit. Haplotypes can be useful in tracing genetic ancestry, understanding the genetic basis of diseases, and developing personalized medical treatments.

In population genetics, haplotypes are often used to study patterns of genetic variation within and between populations. By comparing haplotype frequencies across populations, researchers can infer historical events such as migrations, population expansions, and bottlenecks. Additionally, haplotypes can provide information about the evolutionary history of genes and genomic regions.

In clinical genetics, haplotypes can be used to identify genetic risk factors for diseases or to predict an individual's response to certain medications. For example, specific haplotypes in the HLA gene region have been associated with increased susceptibility to certain autoimmune diseases, while other haplotypes in the CYP450 gene family can affect how individuals metabolize drugs.

Overall, haplotypes provide a powerful tool for understanding the genetic basis of complex traits and diseases, as well as for developing personalized medical treatments based on an individual's genetic makeup.

Genetic variation refers to the differences in DNA sequences among individuals and populations. These variations can result from mutations, genetic recombination, or gene flow between populations. Genetic variation is essential for evolution by providing the raw material upon which natural selection acts. It can occur within a single gene, between different genes, or at larger scales, such as differences in the number of chromosomes or entire sets of chromosomes. The study of genetic variation is crucial in understanding the genetic basis of diseases and traits, as well as the evolutionary history and relationships among species.

Molecular sequence data refers to the specific arrangement of molecules, most commonly nucleotides in DNA or RNA, or amino acids in proteins, that make up a biological macromolecule. This data is generated through laboratory techniques such as sequencing, and provides information about the exact order of the constituent molecules. This data is crucial in various fields of biology, including genetics, evolution, and molecular biology, allowing for comparisons between different organisms, identification of genetic variations, and studies of gene function and regulation.

A missense mutation is a type of point mutation in which a single nucleotide change results in the substitution of a different amino acid in the protein that is encoded by the affected gene. This occurs when the altered codon (a sequence of three nucleotides that corresponds to a specific amino acid) specifies a different amino acid than the original one. The function and/or stability of the resulting protein may be affected, depending on the type and location of the missense mutation. Missense mutations can have various effects, ranging from benign to severe, depending on the importance of the changed amino acid for the protein's structure or function.

Genetic polymorphism refers to the occurrence of multiple forms (called alleles) of a particular gene within a population. These variations in the DNA sequence do not generally affect the function or survival of the organism, but they can contribute to differences in traits among individuals. Genetic polymorphisms can be caused by single nucleotide changes (SNPs), insertions or deletions of DNA segments, or other types of genetic rearrangements. They are important for understanding genetic diversity and evolution, as well as for identifying genetic factors that may contribute to disease susceptibility in humans.

A base sequence in the context of molecular biology refers to the specific order of nucleotides in a DNA or RNA molecule. In DNA, these nucleotides are adenine (A), guanine (G), cytosine (C), and thymine (T). In RNA, uracil (U) takes the place of thymine. The base sequence contains genetic information that is transcribed into RNA and ultimately translated into proteins. It is the exact order of these bases that determines the genetic code and thus the function of the DNA or RNA molecule.

Heredity, in medical terms, refers to the passing on of genetic characteristics from parents to their offspring through the transmission of genes. These genes carry the information that determines many traits, such as eye color, hair color, height, and certain health conditions. Heredity plays a significant role in understanding the causes of various diseases and disorders, as some are strongly influenced by genetic factors. However, it's important to note that environmental factors can also interact with genetic predispositions to influence the expression of these traits.

Extrachromosomal inheritance refers to the transmission of genetic information that occurs outside of the chromosomes, which are the structures in the cell nucleus that typically contain and transmit genetic material. This type of inheritance is relatively rare and can involve various types of genetic elements, such as plasmids or transposons.

In extrachromosomal inheritance, these genetic elements can replicate independently of the chromosomes and be passed on to offspring through mechanisms other than traditional Mendelian inheritance. This can lead to non-Mendelian patterns of inheritance, where traits do not follow the expected dominant or recessive patterns.

One example of extrachromosomal inheritance is the transmission of mitochondrial DNA (mtDNA), which occurs in the cytoplasm of the cell rather than on the chromosomes. Mitochondria are organelles that produce energy for the cell, and they contain their own small circular genome that is inherited maternally. Mutations in mtDNA can lead to a variety of genetic disorders, including mitochondrial diseases.

Overall, extrachromosomal inheritance is an important area of study in genetics, as it can help researchers better understand the complex ways in which genetic information is transmitted and expressed in living organisms.

Single Nucleotide Polymorphism (SNP) is a type of genetic variation that occurs when a single nucleotide (A, T, C, or G) in the DNA sequence is altered. This alteration must occur in at least 1% of the population to be considered a SNP. These variations can help explain why some people are more susceptible to certain diseases than others and can also influence how an individual responds to certain medications. SNPs can serve as biological markers, helping scientists locate genes that are associated with disease. They can also provide information about an individual's ancestry and ethnic background.

A point mutation is a type of genetic mutation where a single nucleotide base (A, T, C, or G) in DNA is altered, deleted, or substituted with another nucleotide. Point mutations can have various effects on the organism, depending on the location of the mutation and whether it affects the function of any genes. Some point mutations may not have any noticeable effect, while others might lead to changes in the amino acids that make up proteins, potentially causing diseases or altering traits. Point mutations can occur spontaneously due to errors during DNA replication or be inherited from parents.

DNA Sequence Analysis is the systematic determination of the order of nucleotides in a DNA molecule. It is a critical component of modern molecular biology, genetics, and genetic engineering. The process involves determining the exact order of the four nucleotide bases - adenine (A), guanine (G), cytosine (C), and thymine (T) - in a DNA molecule or fragment. This information is used in various applications such as identifying gene mutations, studying evolutionary relationships, developing molecular markers for breeding, and diagnosing genetic diseases.

The process of DNA Sequence Analysis typically involves several steps, including DNA extraction, PCR amplification (if necessary), purification, sequencing reaction, and electrophoresis. The resulting data is then analyzed using specialized software to determine the exact sequence of nucleotides.

In recent years, high-throughput DNA sequencing technologies have revolutionized the field of genomics, enabling the rapid and cost-effective sequencing of entire genomes. This has led to an explosion of genomic data and new insights into the genetic basis of many diseases and traits.

Multifactorial inheritance is a type of genetic inheritance that involves the interaction of multiple genes (two or more) along with environmental factors in the development of a particular trait, disorder, or disease. Each gene can slightly increase or decrease the risk of developing the condition, and the combined effects of these genes, along with environmental influences, determine the ultimate outcome.

Examples of multifactorial inheritance include height, skin color, and many common diseases such as heart disease, diabetes, and mental disorders like schizophrenia and autism. These conditions tend to run in families but do not follow simple Mendelian patterns of inheritance (dominant or recessive). Instead, they show complex inheritance patterns that are influenced by multiple genetic and environmental factors.

It is important to note that having a family history of a multifactorial disorder does not guarantee that an individual will develop the condition. However, it does increase the likelihood, and the risk may be further modified by lifestyle choices, environmental exposures, and other health factors.

Polymerase Chain Reaction (PCR) is a laboratory technique used to amplify specific regions of DNA. It enables the production of thousands to millions of copies of a particular DNA sequence in a rapid and efficient manner, making it an essential tool in various fields such as molecular biology, medical diagnostics, forensic science, and research.

The PCR process involves repeated cycles of heating and cooling to separate the DNA strands, allow primers (short sequences of single-stranded DNA) to attach to the target regions, and extend these primers using an enzyme called Taq polymerase, resulting in the exponential amplification of the desired DNA segment.

In a medical context, PCR is often used for detecting and quantifying specific pathogens (viruses, bacteria, fungi, or parasites) in clinical samples, identifying genetic mutations or polymorphisms associated with diseases, monitoring disease progression, and evaluating treatment effectiveness.

Deoxyribonucleic acid (DNA) is the genetic material present in the cells of organisms where it is responsible for the storage and transmission of hereditary information. DNA is a long molecule that consists of two strands coiled together to form a double helix. Each strand is made up of a series of four nucleotide bases - adenine (A), guanine (G), cytosine (C), and thymine (T) - that are linked together by phosphate and sugar groups. The sequence of these bases along the length of the molecule encodes genetic information, with A always pairing with T and C always pairing with G. This base-pairing allows for the replication and transcription of DNA, which are essential processes in the functioning and reproduction of all living organisms.

Inborn genetic diseases, also known as inherited genetic disorders, are conditions caused by abnormalities in an individual's DNA that are present at conception. These abnormalities can include mutations, deletions, or rearrangements of genes or chromosomes. In many cases, these genetic changes are inherited from one or both parents and may be passed down through families.

Inborn genetic diseases can affect any part of the body and can cause a wide range of symptoms, which can vary in severity depending on the specific disorder. Some genetic disorders are caused by mutations in a single gene, while others are caused by changes in multiple genes or chromosomes. In some cases, environmental factors may also contribute to the development of these conditions.

Examples of inborn genetic diseases include cystic fibrosis, sickle cell anemia, Huntington's disease, Duchenne muscular dystrophy, and Down syndrome. These conditions can have significant impacts on an individual's health and quality of life, and many require ongoing medical management and treatment. In some cases, genetic counseling and testing may be recommended for individuals with a family history of a particular genetic disorder to help them make informed decisions about their reproductive options.

Genetic hybridization is a biological process that involves the crossing of two individuals from different populations or species, which can lead to the creation of offspring with new combinations of genetic material. This occurs when the gametes (sex cells) from each parent combine during fertilization, resulting in a zygote with a unique genetic makeup.

In genetics, hybridization can also refer to the process of introducing new genetic material into an organism through various means, such as genetic engineering or selective breeding. This type of hybridization is often used in agriculture and biotechnology to create crops or animals with desirable traits, such as increased disease resistance or higher yields.

It's important to note that the term "hybrid" can refer to both crosses between different populations within a single species (intraspecific hybrids) and crosses between different species (interspecific hybrids). The latter is often more challenging, as significant genetic differences between the two parental species can lead to various reproductive barriers, making it difficult for the hybrid offspring to produce viable offspring of their own.

Epigenetics is the study of heritable changes in gene function that occur without a change in the underlying DNA sequence. These changes can be caused by various mechanisms such as DNA methylation, histone modification, and non-coding RNA molecules. Epigenetic changes can be influenced by various factors including age, environment, lifestyle, and disease state.

Genetic epigenesis specifically refers to the study of how genetic factors influence these epigenetic modifications. Genetic variations between individuals can lead to differences in epigenetic patterns, which in turn can contribute to phenotypic variation and susceptibility to diseases. For example, certain genetic variants may predispose an individual to develop cancer, and environmental factors such as smoking or exposure to chemicals can interact with these genetic variants to trigger epigenetic changes that promote tumor growth.

Overall, the field of genetic epigenesis aims to understand how genetic and environmental factors interact to regulate gene expression and contribute to disease susceptibility.

Medical genetics is the branch of medicine that involves the study of inherited conditions and diseases, as well as the way they are passed down through families. It combines elements of clinical evaluation, laboratory testing, and genetic counseling to help diagnose, manage, and prevent genetic disorders. Medical genetics also includes the study of genetic variation and its role in contributing to both rare and common diseases. Additionally, it encompasses the use of genetic information for pharmacological decision making (pharmacogenomics) and reproductive decision making (preimplantation genetic diagnosis, prenatal testing).

Genomic imprinting is a epigenetic process that leads to the differential expression of genes depending on their parental origin. It involves the methylation of certain CpG sites in the DNA, which results in the silencing of one of the two copies of a gene, either the maternal or paternal allele. This means that only one copy of the gene is active and expressed, while the other is silent.

This phenomenon is critical for normal development and growth, and it plays a role in the regulation of genes involved in growth and behavior. Genomic imprinting is also associated with certain genetic disorders, such as Prader-Willi and Angelman syndromes, which occur when there are errors in the imprinting process that lead to the absence or abnormal expression of certain genes.

It's important to note that genomic imprinting is a complex and highly regulated process that is not yet fully understood. Research in this area continues to provide new insights into the mechanisms underlying gene regulation and their impact on human health and disease.

Genetics is the scientific study of genes, heredity, and variation in living organisms. It involves the analysis of how traits are passed from parents to offspring, the function of genes, and the way genetic information is transmitted and expressed within an organism's biological system. Genetics encompasses various subfields, including molecular genetics, population genetics, quantitative genetics, and genomics, which investigate gene structure, function, distribution, and evolution in different organisms. The knowledge gained from genetics research has significant implications for understanding human health and disease, as well as for developing medical treatments and interventions based on genetic information.

Mitochondrial genes are a type of gene that is located in the DNA (deoxyribonucleic acid) found in the mitochondria, which are small organelles present in the cytoplasm of eukaryotic cells (cells with a true nucleus). Mitochondria are responsible for generating energy for the cell through a process called oxidative phosphorylation.

The human mitochondrial genome is a circular DNA molecule that contains 37 genes, including 13 genes that encode for proteins involved in oxidative phosphorylation, 22 genes that encode for transfer RNAs (tRNAs), and 2 genes that encode for ribosomal RNAs (rRNAs). Mutations in mitochondrial genes can lead to a variety of inherited mitochondrial disorders, which can affect any organ system in the body and can present at any age.

Mitochondrial DNA is maternally inherited, meaning that it is passed down from the mother to her offspring through the egg cell. This is because during fertilization, only the sperm's nucleus enters the egg, while the mitochondria remain outside. As a result, all of an individual's mitochondrial DNA comes from their mother.

Genetic heterogeneity is a phenomenon in genetics where different genetic variations or mutations in various genes can result in the same or similar phenotypic characteristics, disorders, or diseases. This means that multiple genetic alterations can lead to the same clinical presentation, making it challenging to identify the specific genetic cause based on the observed symptoms alone.

There are two main types of genetic heterogeneity:

1. Allelic heterogeneity: Different mutations in the same gene can cause the same or similar disorders. For example, various mutations in the CFTR gene can lead to cystic fibrosis, a genetic disorder affecting the respiratory and digestive systems.
2. Locus heterogeneity: Mutations in different genes can result in the same or similar disorders. For instance, mutations in several genes, such as BRCA1, BRCA2, and PALB2, are associated with an increased risk of developing breast cancer.

Genetic heterogeneity is essential to consider when diagnosing genetic conditions, evaluating recurrence risks, and providing genetic counseling. It highlights the importance of comprehensive genetic testing and interpretation for accurate diagnosis and appropriate management of genetic disorders.

Bivalvia is a class of mollusks, also known as "pelecypods," that have a laterally compressed body and two shells or valves. These valves are hinged together on one side and can be opened and closed to allow the animal to feed or withdraw into its shell for protection.

Bivalves include clams, oysters, mussels, scallops, and numerous other species. They are characterized by their simple body structure, which consists of a muscular foot used for burrowing or anchoring, a soft mantle that secretes the shell, and gills that serve both as respiratory organs and feeding structures.

Bivalves play an important role in aquatic ecosystems as filter feeders, helping to maintain water quality by removing particles and organic matter from the water column. They are also commercially important as a source of food for humans and other animals, and their shells have been used historically for various purposes such as tools, jewelry, and building materials.

Gene frequency, also known as allele frequency, is a measure in population genetics that reflects the proportion of a particular gene or allele (variant of a gene) in a given population. It is calculated as the number of copies of a specific allele divided by the total number of all alleles at that genetic locus in the population.

For example, if we consider a gene with two possible alleles, A and a, the gene frequency of allele A (denoted as p) can be calculated as follows:

p = (number of copies of allele A) / (total number of all alleles at that locus)

Similarly, the gene frequency of allele a (denoted as q) would be:

q = (number of copies of allele a) / (total number of all alleles at that locus)

Since there are only two possible alleles for this gene in this example, p + q = 1. These frequencies can help researchers understand genetic diversity and evolutionary processes within populations.

Marianne Schwartz; John Vissing (2003). "New patterns of inheritance in mitochondrial disease". Biochemical and Biophysical ... Extranuclear inheritance or cytoplasmic inheritance is the transmission of genes that occur outside the nucleus. It is found in ... Biparental inheritance occurs in extranuclear genes when both parents contribute organellar DNA to the offspring. It may be ... Uniparental inheritance occurs in extranuclear genes when only one parent contributes organellar DNA to the offspring. A ...
"Autosomal recessive inheritance pattern". Mayo Clinic. Retrieved 2022-10-09. Cremaschi A (2021-08-03). "Autosomal recessive ... The disorder shown by this family clearly followed an autosomal recessive inheritance pattern. A homozygosity mapping study ... inheritance". Breda Genetics srl (in European Spanish). Retrieved 2022-10-09. Manoochehri J, Dastgheib SA, Khamirani HJ, ...
"ABO inheritance patterns". Inheritance patterns of blood groups. Australian Red Cross Blood Service. Archived from the original ... Both systems reflected alternative theories of inheritance. The Fisher-Race system, which is more commonly in use today, uses ... Based on different models of genetic inheritance, two different terminologies were developed; both of them are still in use. ... due to combined genetic inheritance). It is therefore common to select c-negative and E-negative blood for transfusion patients ...
"ABO inheritance patterns". Inheritance patterns of blood groups. Australian Red Cross Blood Service. Retrieved 30 October 2013 ... Felix Bernstein demonstrated the correct blood group inheritance pattern of multiple alleles at one locus in 1924. Watkins and ... They were also the first to explain the genetic inheritance of the blood groups. Czech serologist Jan Janský independently ...
Although complex disorders often cluster in families, they do not have a clear-cut pattern of inheritance. This makes it ... Only a few disorders have this inheritance pattern, with a prime example being X-linked hypophosphatemic rickets. Males and ... ISBN 978-1-4292-2943-2. "Inheritance Patterns for Single Gene Disorders". learn.genetics.utah.edu. Retrieved 2019-07-01. Wade, ... This type of inheritance, also known as maternal inheritance, is the rarest and applies to the 13 genes encoded by ...
"Klinefelter Syndrome - Inheritance Pattern". NIH - Genetics Home Reference. NIH. Archived from the original on 30 January 2017 ... "Klinefelter Syndrome - Inheritance Pattern". NIH - Genetics Home Reference. NIH. Archived from the original on 30 January 2017 ... Variability in Klinefelter Syndrome is Associated with GTPBP6 Expression Under Regulation of X-Chromosome Inactivation Pattern ...
"Autosomal dominant inheritance pattern". Mayo Clinic. Retrieved 2022-10-07. "Wolfram syndrome: MedlinePlus Genetics". ... while Wolfram syndrome tends to follow an autosomal recessive inheritance pattern, Wolfram-like syndrome follows an autosomal ... they have different phenotypical features and different inheritance patterns, for example; ... dominant inheritance pattern. Symptoms are another example of the difference between Wolfram syndrome and Wolfram-like syndrome ...
"Autosomal recessive inheritance pattern". Mayo Clinic. Retrieved 2019-12-14. "SLURP1 gene". Reference, Genetics Home. "SLURP1 ... It is of autosomal recessive inheritance. It may be caused by a mutation on the SLURP1 gene, located on chromosome 8. The ... Palmoplantar keratoderma List of cutaneous conditions Online Mendelian Inheritance in Man (OMIM): 248300 Freedberg, et al. ( ... These are different patterns of disorders that cause the thickening of the skin on the hands and feet: Diffuse PPK: Symmetric ...
"Inheritance Patterns in Drosophila Melanogaster". Retrieved March 26, 2019. Green MM (April 1952). "Mutant Isoalleles at the ... Hunt eventually discovered that the gene followed a similar pattern of inheritance related to the meiotic segregation of the X ... D. melanogaster had historically been used in laboratories to study genetics and patterns of inheritance. However, D. ... He also noted its inheritance is connected to the sex of the fly and could be paired with the inheritance of other sex- ...
Mendel traced the inheritance patterns of certain traits in pea plants and described them mathematically. Although this pattern ... Mendel studied "trait inheritance", patterns in the way traits are handed down from parents to offspring over time. He observed ... 2000). "Patterns of Inheritance: Introduction". An Introduction to Genetic Analysis (7th ed.). New York: W.H. Freeman. ISBN 978 ... Many species, including humans, have this pattern of inheritance. Diploid organisms with two copies of the same allele of a ...
Inheritance pattern varies among families. It has been described in 11 Omani children. The pedigrees of these children couldn't ... while the pedigrees of 3 of the 11 children pointed to autosomal recessive inheritance. "Olivopontocerebellar atrophy deafness ... identify a solid mode of inheritance: 8 of the 11 children were suspected to be sporadic cases, ...
It's inheritance pattern is unknown. - "Blepharophimosis intellectual disability syndromes - About the Disease - Genetic and ... Autosomal recessive, dominant, X-linked recessive, and mitochondrial inheritance patterns have been suggested. Only 30 cases ... or mitochondrial inheritance patterns. Oculocerebrofacial syndrome is a very rare autosomal recessive type of BIDS which is ...
Furthermore, inheritance of the whorl pattern does not appear to be symmetric in that the pattern is seemingly randomly ... Another mode of fingerprint pattern inheritance suggests that the arch pattern on the thumb and on other fingers are inherited ... Several modes of inheritance have been suggested and observed for various fingerprint patterns. Total fingerprint ridge count, ... Further research on the arch pattern has suggested that a major gene or multifactorial inheritance is responsible for arch ...
"The inheritance of organelle genes and genomes: patterns and mechanisms". Genome. 48 (6): 951-958. doi:10.1139/g05-082. PMID ... Epigenetic inheritance Extranuclear inheritance Gregor Johann Mendel Mendelian inheritance Non-Mendelian inheritance Organelles ... Uniparental inheritance is a non-Mendelian form of inheritance that consists of the transmission of genotypes from one parental ... Uniparental inheritance can be divided into multiple subtypes based on the pathway of inheritance. Although most of the ...
There is no specific inheritance pattern. The male-to-female ratio of affected is 1.8:1 and is often diagnosed before the age ...
Inheritance follows an autosomal dominant pattern.[citation needed] Radiographic imaging reveals thickening of bones, ...
The inheritance pattern is autosomal dominant. It is related to a mutation in the TIMP3 gene. "SORSBY FUNDUS DYSTROPHY; SFD". ...
... displays a complex inheritance pattern. For example, if both parents of a child are left-handed, there is a 26% ... Two theoretical single-gene models have been proposed to explain the patterns of inheritance of handedness, by Marian Annett of ... In bowling, the oil pattern used on the bowling lane breaks down faster the more times a ball is rolled down the lane. Bowlers ... There are also handedness differences in perception of musical patterns. Left-handers as a group differ from right-handers, and ...
... can have different inheritance patterns. This condition is usually inherited in an autosomal recessive ... Hypermethioninemia is occasionally inherited in an autosomal dominant pattern, which means one copy of the altered gene in each ... pattern, which means two copies of the gene in each cell are altered. Most often, the parents of an individual with an ...
Its inheritance pattern is not known. "Graham Boyle Troxell syndrome". NORD (National Organization for Rare Disorders). 16 June ...
In the past North Korea has the same pattern of inheritance as the South, however no details about current inheritance ... Dutch and New Englander peasants was partible inheritance. The pattern of land inheritance traditionally prevalent among ... This pattern of inheritance is also reported for many Fulbe villages in the Republic of Guinea, though it seems that in past ... Inheritance customs do not follow clear ethnic, linguistic or geographical patterns. Equality between all sons and a ...
It is sometimes called "Upside-Down Inheritance" due to the way it allows class hierarchies to be extended by substituting ... This pattern is used extensively in the Windows ATL and WTL libraries. To elaborate on the above example, consider a base class ... When the named parameter object pattern is applied to an object hierarchy, things can go wrong. Suppose we have such a base ... The curiously recurring template pattern (CRTP) is an idiom, originally in C++, in which a class X derives from a class ...
MLD has an autosomal recessive inheritance pattern. The inheritance probabilities per birth are as follows: If both parents are ... Metachromatic leukodystrophy, like most enzyme deficiencies, has an autosomal recessive inheritance pattern. Like many other ...
MSD has an autosomal recessive inheritance pattern.: 561 The inheritance probabilities per birth are as follows: If both ...
The inheritance pattern is very unusual, in that men that carry the PCDH19 gene mutation on their only X-chromosome are ... The disorder has an unusual inheritance pattern. It is considered X-linked dominant with male carriers. Women and men with the ... The striking pattern of onset seizures at a young age, genetic testing and laboratory results, potential developmental delays ... In a large series of cases in which inheritance was determined, half of the PCDH19 mutations occurred de novo, and half were ...
Silva, A.J.; White, R. (1988). "Inheritance of allelic blueprints for methylation patterns". Cell. 54 (2): 145-52. doi:10.1016/ ... "Inheritance of allelic blueprints for methylation patterns". Cell. 54 (2): 145-52. doi:10.1016/0092-8674(88)90546-6. PMID ... His graduate work showed that epigenetic patterns of DNA methylation can be polymorphic and that they are inherited in a ...
Inheritance patterns depend on the specific syndrome. Most forms of EDS are inherited in an autosomal dominant pattern, which ... Inheritance patterns in this group include X-linked recessive, autosomal dominant, and autosomal recessive. Examples of types ... A few are inherited in an autosomal recessive pattern, which means both copies of the gene must be altered for a person to be ... Sporadic variations occur without any inheritance. A diagnosis can be made by an evaluation of medical history and clinical ...
It exhibits an autosomal recessive inheritance pattern. The first confirmed case was diagnosed in 1865 by French doctor ... Online Mendelian Inheritance in Man, OMIM, entry for gene TFR2, Oct 2018 Online Mendelian Inheritance in Man, OMIM, entries for ... Online Mendelian Inheritance in Man, OMIM, entry for gene HFE, May 2022 Crawford, Darrell (2014). "Hereditary Hemochromatosis ... The prevalence in the ethnic Norwegian population of homozygous and heterozygous inheritance is 0.8% and 12-15% respectively, ...
The mother, whose hands and patterned skirt are especially prominent, has a tearful red face and sits on a bench in front of a ... Inheritance (Norwegian: Arv; 1897-1899) is an oil painting on canvas created by the Norwegian painter Edvard Munch (1863-1944 ... The mother's hands and patterned skirt are specifically prominent. She is crying and has a red face. Her jacket is plain black ... The painting is known as Inheritance. The first version was titled The Syphilitic Child. The work is housed at the Munch Museum ...
Inheritance pattern is thought to be autosomal recessive. "Congenital muscular dystrophy-infantile cataract-hypogonadism ...
There are only 5 basic patterns of single gene inheritance: * Autosomal dominant * Autosomal recessive * X-linked dominant * X- ... Maternal (mitochondrial) inheritance The observed effect of an abnormal gene (the appearance of a disorder) is called the ... In AUTOSOMAL RECESSIVE INHERITANCE, the parents of an affected individual may not express the disease. On average, the chance ... In X-LINKED DOMINANT INHERITANCE, the presence of the defective gene appears in females even if there is also a normal X ...
... students will learn about the different types of inheritance, including co-dominance, sex-linked, and incomplete dominance. The ... About Alternative Patterns of Inheritance. PowerPoint presentation about Alternative Patterns of Inheritance. This ... Slide1Alternative Patterns of Inheritance• Warm-Up • Objective • Powerpoint • Packet/book work - what you dont finish is HW • ... Slide7Exit Ticket• Which type of inheritance is demonstrated by the picture? How can you tell. • 3 sentence limit ...
The genetic basis for inheritance of abdominal tergal white scale pattern was considered in this study. From the CARN strain of ... Since the abdominal tergal scale pattern in Ae. aegypti appears to be controlled by one major polygenic system with modifiers, ... aegypti, chosen because of increased variability in abdominal tergal scale pattern, two experimental strains were established ( ... Progeny were examined and scored according to McClellands (1974) original pattern value system of classification, and ...
Patterns of inheritance * Autosomal dominant inheritance. * Autosomal recessive inheritance. * Carrier. * Classical genetics. ...
... youtu.be/CMdWcfHDmKI Check out more JavaScript Inheritance and Callback Patterns Programming with Recursion Chatbots and ... TECHNICAL BOOTCAMP THE FUTURE OF WORK JavaScript Inheritance and Callback Patterns presented by BayOne https:// ...
Pedigrees & Patterns Of Genetic Inheritance. September 29, 2022. by SA Admin All analyses had been restricted to females by ... examples and evaluation after which to apply these new skills analyzing the Fugate household of Kentucky and their inheritance ...
Develop robust and reusable code using a multitude of design patterns for PHP 7 ... PHP conventionally acts as a single inheritance language, because of the fact that you cant inherit more than one class into a ... One such pattern that is documented in the book is Pattern 12, known as the Community of 7000; the book documents this pattern ... This is not strictly a design pattern (but the Gang of Four didnt cover Architectural patterns in their book); but it is ...
Patterns of inheritance * Autosomal dominant inheritance. * Autosomal recessive inheritance. * Carrier. * Classical genetics. ...
Autosomal dominant inheritance pattern Enlarge image Close Autosomal dominant inheritance pattern. Autosomal dominant ... Autosomal recessive inheritance pattern Enlarge image Close Autosomal recessive inheritance pattern. Autosomal recessive ... inheritance pattern. In an autosomal dominant disorder, the changed gene is a dominant gene. Its located on one of the nonsex ... inheritance pattern. To have an autosomal recessive disorder, you inherit two changed genes, sometimes called mutations. You ...
Understanding basic inheritance patterns. At this site, you will find many resources to help you understand the basic patterns ...
Many flowering plants exhibit mendelian inheritance. The peony is a perennial flowering plant of the genus Paeonia, which are ...
In this tutorial, I will describe a practical use case where using abstract base class pattern plays well with Ruby on Rails ... Inheritance is often frowned upon, because of the banana and jungle metaphor. In some scenarios, it can be a viable alternative ... Inheritance and Abstract Class Pattern for Ruby on Rails Controllers. Updated Jan 7, 2020 4 minute read ... Inheritance is often frowned upon, because "You wanted a banana but got the whole jungle…". In some scenarios, it can be a ...
Supplementary Figure 7 Inheritance patterns by gene count.. Plot of paternal (y-axis) or maternal (x-axis) inheritance counts ... Where available, inheritance is indicated (de novo or inherited). *Genes that reach DN significance in the study. †Genes that ... Unusual brain growth patterns in early life in patients with autistic disorder: an MRI study. Neurology 57, 245-254 (2001). ... Identification of intergenerational epigenetic inheritance by whole genome DNA methylation analysis in trios Article Open ...
HomeUCLA Brain Research Institute (BRI) , Cortical gene expression is affected by inheritance pattern of chromosome 15q ... Cortical gene expression is affected by inheritance pattern of chromosome 15q duplication. Genetics plays a substantial role in ... Project Title: Cortical gene expression is affected by inheritance pattern of chromosome 15q duplication ... Cortical gene expression is affected by inheritance pattern of chromosome 15q duplication. ...
Tutorial article on Fluent Interface Pattern in C# ... "curiously recurring template pattern", to make inheritance work ... Just like any Design pattern you should look at what you needs are and then decide if a pattern will help. Help either use it ... Finally, quite a complicated inheritance problem with Fluent Interface Pattern is discussed. The intended audience is ... Fluent Interface Pattern is just concerned about how interface should look like, it does not prescribe pattern in classical ...
Note that I am not suggesting that the decorator pattern actually reflects a multiple inheritance pattern, Im just using it as ... However I think - all things being equal - using the decorator pattern instead of inheritance to solve this sort of thing is ... Design Patterns (10) REST (10) Custom Tags (9) Higher-order functions (9) TinyTestFramework (8) Groovy (6) Python (6) Clojure ( ... where an inheritance-based approach only allows a single inheritance chain: and that will get clumsy quickly. ...
Inheritance. If your UI library is going to be used once or twice on each page, then inheritance wont matter much. However, if ... input pattern="regex">. ), and I believe it was quite successful, because non-programmers can look up their use case in a regex ... To mitigate this pain, Prism supports inheritance of these classes: If a ,code>. element does not have a language-xxx. class of ... HTML APIs usually consist of certain class and attribute patterns that can be used on existing HTML. With Web Components, even ...
Is context inheritance, as shown by Head First Design Patterns Duck example, irrelevant to strategy pattern?. Ask Question ... The class using the strategy pattern does not have to be a subclass. The strategy pattern is an alternative to inheritance for ... Is context inheritance of Duck irrelevant to the strategy pattern or is varying Duck types and also varying their behaviors a ... In Head First Design Patterns it teaches the strategy pattern by using a Duck example where different subclasses of Duck can be ...
Inheritance. This condition is inherited in an X-linked recessive. pattern. The gene associated with this condition is located ... In X-linked recessive inheritance, a female with one mutated copy of the gene in each cell is called a carrier. She can pass on ... A characteristic of X-linked inheritance is that fathers cannot pass X-linked traits to their sons. ...
What are the inheritance patterns for hemophilia? There are three scenarios for how a person may inherit affected genes. ... are inherited on the X chromosome in an autosomal recessive pattern. This means that you must inherit one affected X chromosome ...
We dont need a standard for single inheritance. Single inheritance taxonomies are an anti-pattern.. It could be composition ... And today Im sharing it with you, so when I tell you that `class` inheritance can wreck lives, you will know… ... As I dug into it, I couldnt help but sink deeper and deeper into the importance of avoiding classical inheritance. I advise ... Until one of our coworkers went on an inheritance binge. This thing inherits from that, and another inherits from that and on ...
Marianne Schwartz; John Vissing (2003). "New patterns of inheritance in mitochondrial disease". Biochemical and Biophysical ... Extranuclear inheritance or cytoplasmic inheritance is the transmission of genes that occur outside the nucleus. It is found in ... Biparental inheritance occurs in extranuclear genes when both parents contribute organellar DNA to the offspring. It may be ... Uniparental inheritance occurs in extranuclear genes when only one parent contributes organellar DNA to the offspring. A ...
Tricky inheritance question. 6 replies Swing / AWT / SWT Help sorting out what combination of layouts will provide the result I ... Other threads similar to Design Pattern for my code. OO, Patterns, UML and Refactoring ...
Patterns of inheritance. The specific pattern of inheritance has not been established for many of the disorders that are ... The following describes known patterns of inheritance.. Autosomal dominant. Only 1 copy of the gene, which may be inherited ... Polygenic inheritance. Polygenic traits are controlled by an unknown number of genes. The gene expression is influenced by a ... Where the mode of inheritance is not known, breeds that have an increased risk relative to other dog breeds are said to have a ...
Inheritance. This condition is inherited in an autosomal recessive pattern. , which means both copies of the gene in each cell ...
See Suppressing Inheritance. vpath pattern. path. Specify a search path for files matching a . %. pattern.. See The vpath. ... pattern. …). Find file names matching a shell file name pattern (not a . %. pattern).. See The Function wildcard. . ... pattern. words.. See Functions for String Substitution and Analysis. $(filter-out pattern. …,. text. ). Select words in text. ... pattern. Remove all search paths previously specified for pattern. . vpath. Remove all search paths previously specified in any ...
Inheritance. This condition is inherited in an autosomal recessive pattern. , which means both copies of the gene in each cell ...
In dominant-recessive inheritance, if an individual is heterozygous, which phenotype will be expressed? ... HeredityPatterns of Inheritance. Multiple Choice. Multiple Choice. In dominant-recessive inheritance, if an individual is ...
  • This is called a recessive disease, and the gene is said to be inherited in a recessive pattern. (health.am)
  • Single-gene disorders are characterized by the pattern of transmission in families - this is called a pedigree. (health.am)
  • Traits influenced mainly by one gene usually have predictable patterns of inheritance. (utah.edu)
  • The pattern of disease inheritance can be predictable or unpredictable, depending on whether the disease is influenced mainly by one gene or by several genes. (utah.edu)
  • The inheritance of the C gene for the canary yellow flesh color was verified as single dominant, and a new inbred type line was developed possessing that gene. (ncsu.edu)
  • This information will assist in discovery of similarities and differences between the gene expression of the two types of duplication inheritance. (ucla.edu)
  • A classic example of uniparental gene transmission is the maternal inheritance of human mitochondria. (wikipedia.org)
  • Better understanding of new mutations and the wide range of possible phenotypes led to the development of a new nomenclature proposal, based on the gene and inheritance pattern. (medscape.com)
  • Some diseases show a specific pattern of inheritance, such that if a person carries a gene, they will inevitably develop a disorder. (medicalnewstoday.com)
  • Autosomal dominant: A pattern of inheritance in which an affected individual has one copy of a mutant gene and one normal gene on a pair of autosomal chromosomes. (handlebar-online.com)
  • There are five basic modes of inheritance for single-gene diseases: autosomal dominant, autosomal recessive, X-linked dominant, X-linked recessive, and mitochondrial. (handlebar-online.com)
  • Mutations in the gene are transmitted in an autosomal dominant pattern in a family. (handlebar-online.com)
  • Many flowering plants exhibit mendelian inheritance. (khanacademy.org)
  • In this review, we examine the diversity and peculiarities of cytoplasmically inherited genomes, and the broad evolutionary consequences that non-Mendelian inheritance brings. (nature.com)
  • The first documented evidence for this came from Carl Correns research on the four o'clock plant Mirabilis jalapa , in which he detailed the non-Mendelian inheritance of leaf colour (Correns 1909 ). (nature.com)
  • Results generally conformed expectations according to Mendelian inheritance patterns, but deviations were detected indicating mutations during sexual reproduction. (uea.ac.uk)
  • Non-Mendelian inheritance patterns and extreme deviation rates of CGG repeats in autism. (bvsalud.org)
  • Structural variants identified using non-Mendelian inheritance patterns advance the mechanistic understanding of autism spectrum disorder. (cdc.gov)
  • Rather than a classic Mendelian inheritance pattern, more than 30 genetic polymorphisms have been associated with risk of developing AMD. (medscape.com)
  • The mice are Agouti Viable Yellow, naturally occurring mutants, which, though genetically identical, have coats that vary in color-a phenomenon that researchers have long studied as an example of epigenetic inheritance. (the-scientist.com)
  • In the past, researchers suggested that the epigenetically regulated Agouti trait was the tip of the iceberg for DNA methylation-based epigenetic inheritance, he says. (the-scientist.com)
  • Uniparental inheritance occurs in extranuclear genes when only one parent contributes organellar DNA to the offspring. (wikipedia.org)
  • The mechanisms of uniparental inheritance from species to species differ greatly and are quite complicated. (wikipedia.org)
  • We first explore the origins of vertical transmission and uniparental inheritance, before detailing the vast diversity of cytoplasmic inheritance systems across Eukaryota. (nature.com)
  • We begin by outlining the origins of cytoplasmic inheritance and the evolution of uniparental inheritance, documenting the diversity of cytoplasmic inheritance systems so far observed. (nature.com)
  • Extranuclear inheritance or cytoplasmic inheritance is the transmission of genes that occur outside the nucleus. (wikipedia.org)
  • The genetic basis for inheritance of abdominal tergal white scale pattern was considered in this study. (georgiasouthern.edu)
  • During this study, individuals with a light cuticle color and background scale color were observed in crosses involving CARN-LIGHT, The scale pattern of the seventh tergite in this experimental strain appears to be influenced by some genetic system other than the one controlling the scale pattern of tergites I-VI. (georgiasouthern.edu)
  • What genetic tests are used to determine the inheritance of hemophilia? (healthline.com)
  • Interestingly, cytoplasmic genetic elements have been shown to have very different inheritance patterns to classic Mendelian nuclear chromosomes. (nature.com)
  • Autosomal dominant is a pattern of inheritance characteristic of some genetic disorders. (genome.gov)
  • Autosomal recessive is a pattern of inheritance characteristic of some genetic disorders. (genome.gov)
  • Researchers require more data to determine whether there is a predictable pattern of inheritance for MS and how certain genetic risk factors interact with the environment. (medicalnewstoday.com)
  • Autosomal dominant inheritance is a way a genetic trait or condition can be passed down from parent to child. (handlebar-online.com)
  • Hemophilia A , also called factor VIII deficiency, and hemophilia B , also called factor IX deficiency, are inherited on the X chromosome in an autosomal recessive pattern . (healthline.com)
  • Some traits demonstrate sex-linked inheritance because they are on a sex chromosome. (pbworks.com)
  • Traits that involve genes on the sex chromosomes have different inheritance patterns than non-sex-linked traits. (utah.edu)
  • https://learn.genetics.utah.edu/content/evolution/inheritance. (utah.edu)
  • This study measured the inheritance of novel rind phenotypes and verified the genetics of white, red, salmon yellow, and canary yellow flesh colors. (ncsu.edu)
  • By 1952, the evidence of various forms of cytoplasmically inherited elements (CIEs) had grown, leading Joshua Lederberg to synthesise the inheritance of cellular organelles and symbionts into one framework in his treatise "Cell genetics and hereditary symbiosis" (Lederberg 1952 ). (nature.com)
  • We discuss the diversity and patterns of genome organisation for cytoplasmic elements and examine the population genetics of CIEs, highlighting the tension between within- and between-individual spread. (nature.com)
  • Through the quantative experiments of Gregor Mendel, a 19th century monk, much of the inheritance of traits was explained through a model called Mendelian genetics. (pbworks.com)
  • The studies of poky mutants were among the first to establish an extranuclear mitochondrial basis for inheritance of a particular genotype. (wikipedia.org)
  • Aberrations in the segregation of red, white, and salmon yellow flesh colors were recorded, raising questions on the inheritance of these traits. (ncsu.edu)
  • Most heritable information in eukaryotic cells is encoded in the nuclear genome, with inheritance patterns following classic Mendelian segregation. (nature.com)
  • So for most traits, patterns of inheritance are complex and unpredictable. (utah.edu)
  • This type of interplay between alleles, especially when traits are influenced by multiple genes, makes predicting inheritance difficult, if not impossible. (utah.edu)
  • released a SAS software based program (SASGENE) for the analysis of inheritance and linkage of qualitative traits. (ncsu.edu)
  • Polygenic inheritance of some vine traits in two segregating watermelon families. (ncsu.edu)
  • In dominant-recessive inheritance, if an individual is heterozygo. (pearson.com)
  • In dominant-recessive inheritance, if an individual is heterozygous, which phenotype will be expressed? (pearson.com)
  • What is the difference between autosomal dominant and autosomal recessive inheritance? (handlebar-online.com)
  • Autosomal Recessive Inheritance is basically the opposite of autosomal dominant.Recessive alleles only change the phenotype when there is no dominant allele present. (handlebar-online.com)
  • Very rare cases which require further investigation have been reported of paternal mitochondrial inheritance in humans, in which the father's mitochondrial genome is found in offspring. (wikipedia.org)
  • They are historically thought to inherit maternally, but paternal inheritance in many species is increasingly being identified. (wikipedia.org)
  • Furthermore, evidence for diversity in inheritance patterns (paternal or biparental) of CIEs started accumulating for a wide range of taxa (Birky 2001 ). (nature.com)
  • Biparental inheritance occurs in extranuclear genes when both parents contribute organellar DNA to the offspring. (wikipedia.org)
  • An example of biparental mitochondrial inheritance is in the yeast Saccharomyces cerevisiae. (wikipedia.org)
  • Based on analysis of single pair progeny from experimental crosses, it is proposed that genes at three separate independently assorting loci control abdominal tergal scale pattern in Ae . (georgiasouthern.edu)
  • Genes determining rind pattern inheritance in watermelon: A review. (ncsu.edu)
  • Moreover, to assess inheritance patterns of the microsatellite alleles, we genotyped 246 F1 strains resulting from four mating experiments between parental strains of know genotype. (uea.ac.uk)
  • ABOVE: Agouti Viable Yellow mice share the same DNA sequence, but have different methylation patterns. (the-scientist.com)
  • Pattern of inheritance in hereditary myeloperoxidase deficiency associated with the R569W missense mutation. (lu.se)
  • Various disorders of lipid metabolism have characteristic patterns of organ involvement and clinical history, depending on the particular substrate that is stored. (medscape.com)
  • More work will be needed to determine whether the differences in pathways associated with different parental inheritance contribute to the differences in clinical phenotypes observed in offspring. (ucla.edu)
  • Inheritance, in this case, was strictly maternal: a seed derived from an ovule from a non-green stem gave rise to non-green progeny, irrespective of the source of pollen. (nature.com)
  • The class using the strategy pattern does not have to be a subclass. (stackexchange.com)
  • Software classes can be manipulated to fit each other - by adapting the class to an interface (by interface implementation) or by extending the class's functionality using implementation inheritance. (codeproject.com)
  • My prepared answer was that the decorator pattern was an implementation representation of an interface, and accordingly it can kinda reflect multiple inheritance (albeit by composition) where an inheritance-based approach only allows a single inheritance chain: and that will get clumsy quickly. (adamcameron.me)
  • This comes back to the even broader comparison of inheritance vs composition. (stackexchange.com)
  • This is consistent with the advice to favor composition over inheritance when possible. (stackexchange.com)
  • Poky is a mutant of the fungus Neurospora crassa that has extranuclear inheritance. (wikipedia.org)
  • 9 isolates obtained in Haiti or the Dominican Republic, 12 atypical El Tor variants that share characteristics of PFGE pattern-matched isolates linked to Asia or Africa, classical and El Tor strains ( 1,3,4 ). (cdc.gov)
  • Is context inheritance, as shown by Head First Design Patterns' Duck example, irrelevant to strategy pattern? (stackexchange.com)
  • Is context inheritance of Duck irrelevant to the strategy pattern or is varying Duck types and also varying their behaviors a good reason to employ the strategy pattern? (stackexchange.com)
  • In this paper, we propose C ap G en , a context-aware patch generation technique. (sigsoft.org)
  • We studied the inheritance of this phenotype in crosses of normal seeded Charleston Gray and Calhoun Gray with two plant introduction accessions, PI 490383w and PI 560006, having the egusi seed type. (ncsu.edu)
  • One can accurately say a LoggedPersonRepository IS A PersonRepository, so the inheritance seems sound, and if one thinks through scenarios, I think it passes a Liskov substitution principle test as well. (adamcameron.me)
  • In this tutorial, I will describe a practical use case where using abstract base class pattern plays well with Ruby on Rails controllers layer. (pawelurbanek.com)
  • This is basically the same class as in the above example, that follows recommendations of Fluent Interface Pattern. (fastly.net)
  • HTML APIs usually consist of certain class and attribute patterns that can be used on existing HTML. (smashingmagazine.com)
  • and parents') isarev lists do not include every class in existence, even though all classes are effectively descendants for method inheritance purposes. (perl.org)
  • In this review, we describe the diversity of inheritance systems of CIEs, and highlight the evolutionary consequences that these inheritance systems bring to cellular, organismal and population dynamics (Fig. 1 ). (nature.com)
  • chosen because of increased variability in abdominal tergal scale pattern, two experimental strains were established (CARN-LIGHT and CARN-DARK). (georgiasouthern.edu)
  • From my understanding the purpose of the strategy pattern is to change a single object's behavior at runtime, yet they are using inheritance of Duck to change the behavior of various types of Duck. (stackexchange.com)
  • Note that I am not suggesting that the decorator pattern actually reflects a multiple inheritance pattern, I'm just using it as a comparative metaphor. (adamcameron.me)
  • Multiple Inheritance in Architecture. (informit.com)
  • C3 is the name of an algorithm which aims to provide a sane method resolution order under multiple inheritance. (perl.org)
  • Three general types of extranuclear inheritance exist. (wikipedia.org)
  • The code sample that demonstrates usage inheritance is located under MultipleInterfaces.sln solution. (codeproject.com)
  • And looking at the code, this is actually more simple than the decorator pattern version because there's no need for this LoggedPersonRepository to take a PersonRepository argument, as it is a PersonRepository. (adamcameron.me)
  • The strategy pattern is an alternative to inheritance for code re-use. (stackexchange.com)
  • This pattern of inheritance suggests that both males and females are equally likely to be affected by hemochromatosis. (proprofs.com)
  • The research can be described as a quantitative study which aimed to examine depressive patterns among pregnant women. (bvsalud.org)
  • Finally, quite a complicated inheritance problem with Fluent Interface Pattern is discussed. (fastly.net)
  • It may be less common than uniparental extranuclear inheritance, and usually occurs in a permissible species only a fraction of the time. (wikipedia.org)
  • In this article, I try to explain some design patterns and principles using analogies and pictures from the non-software world. (codeproject.com)
  • I know "partial enum" doesn't exist - so what is the suggested design pattern for such a task? (stackoverflow.com)
  • I don't think there is design pattern regarding this and it seems more like bad choice in your model. (stackoverflow.com)
  • Get Mark Richards's Software Architecture Patterns ebook to better understand how to design components-and how they should interact. (oreilly.com)
  • A child of a person affected by an autosomal dominant condition has a 50% chance of being affected by that condition via inheritance of a dominant allele. (genome.gov)