Pit and Fissure Sealants
Fissure in Ano
Dental Fissures
Tooth Preparation
Dental Leakage
Dental Enamel
Bisphenol A-Glycidyl Methacrylate
Phosphoric Acids
Dental Marginal Adaptation
Dental Caries
Fibrin Tissue Adhesive
Glass Ionomer Cements
Acid Etching, Dental
Cariostatic Agents
Enamel Microabrasion
Resin Cements
Dental Prophylaxis
Light-Curing of Dental Adhesives
Dental Enamel Permeability
Materials Testing
Dentin-Bonding Agents
Saliva, Artificial
Dental Bonding
Pediatric Dentistry
Fluorides, Topical
Compomers
Rosaniline Dyes
Coated Pits, Cell-Membrane
Tissue Adhesives
Surface Properties
Coloring Agents
Methacrylates
Coloboma
Single-Blind Method
Molar
Ultraconservative resin restorations. (1/136)
Ultraconservative dentistry represents a great step forward for the dentist, the profession, and especially the patient. It involves the early detection and complete elimination of all accessible and non-accessible carious material from the tooth. Untreated caries can be extremely and rapidly destructive. The earliest interception of decay maintains total dental health and increases the likelihood of the restored teeth lasting a lifetime. (+info)Determination of bisphenol A and related aromatic compounds released from bis-GMA-based composites and sealants by high performance liquid chromatography. (2/136)
Most of the composites and sealants used in dentistry are based on bisphenol A diglycidylether methacrylate (Bis-GMA). Reports revealed that in situ polymerization is not complete and that free monomers can be detected by different analytic methods. Concerns about the estrogenicity of bisphenol A (BPA) and other aromatic components leached from commercial products have been expressed. We studied biphenolic components eluted from seven composites and one sealant before and after in vitro polymerization using HPLC and gas chromatography/mass spectrometry and we investigated how pH modifications affect the leaching of these components. We found BPA (maximal amount 1.8 microg/mg dental material), its dimethacrylate derivative (Bis-DMA, 1.15 microg/mg), bisphenol A diglycidylether (6. 1 microg/mg), Bis-GMA (2.0 microg/mg), and ethoxylate and propoxylate of bisphenol A in media in which samples of different commercial products were maintained under controlled pH and temperature conditions. Our results confirm the leaching of estrogenic monomers into the environment by Bis-GMA-based composites and sealants in concentrations at which biologic effects have been demonstrated in in vivo experimental models. The main issue with implications for patient care and dentist responsibility is to further determine the clinical relevance of this estrogenic exposure. (+info)Trends in preventive care: caries risk assessment and indications for sealants. (3/136)
BACKGROUND: In the 21st century, risk assessment models will continue to be developed. By understanding patients' susceptibility to disease, better treatment and preventive regimens can be offered. As the causative agent of dental caries is bacterial, the interaction between the susceptible host, the causative agent and the environment determine whether caries occurs--regardless of the patient's age. CLINICAL IMPLICATIONS: This article reviews risk assessment for dental caries and the implication for developing preventive strategies. It also describes the indications and uses of sealants in the prevention of dental caries. (+info)Rationale and treatment approach in minimally invasive dentistry. (4/136)
BACKGROUND: Current methods of detecting caries, especially fissure caries, are inaccurate, causing some caries to go undetected until it has reached more advanced stages. Minimally invasive dentistry is a philosophy in which the goal of intervention to conserve healthy tooth structure. The authors review the rationale and role of air abrasion in successful practice in the 21st century that includes the philosophy of minimal intervention. CLINICAL IMPLICATIONS: This objective encompasses a range of clinical procedures that includes assessment of caries risk to reinforce patient self-help, early detection of the disease before lesion cavitation to fortify the oral environment, restoration of fissure caries with maximum retention of sound tooth structure and sealant placement in unaffected areas. This conservative approach minimizes the restoration/re-restoration cycle, thus benefiting the patient over a lifetime. (+info)Detection of bisphenol-A in dental materials by gas chromatography-mass spectrometry. (5/136)
The xenoestrogenic substance bisphenol-A is widely used as a synthetic precursor of resin monomers, such as bisphenol-A diglycidyl methacrylate. Reports describing the release of bisphenol-A from polymerized resin into saliva have aroused considerable concern regarding exposure to xenoestrogen by dental treatment. The purpose of the present study was to demonstrate a reliable methodology of detecting the trace amounts of bisphenol-A in dental materials. Bisphenol-A was separable from bisphenol-A diglycidyl methacrylate, which is often employed as the principal dimethacrylate monomer, by selective extraction with a Sep-Pak C18 cartridge. Using this extraction method in combination with a gas-chromatography mass-spectrometry, we have obtained evidence that all unpolymerized materials used in this study were contaminated with bisphenol-A. Quantitative analysis using a deuterium-labeled compound as an internal standard revealed bisphenol-A contents in commercial dental materials ranging from < 1 microgram/g material to about 20 micrograms/g material. The polymerized dental materials released up to 91.4 ng bisphenol-A/g material into phosphate buffered saline during 24-h incubation. These results indicate that bisphenol-A can be released from dental materials, however the leachable amount would be less than 1/1000 of the reported dose (2 micrograms/kg body weight/day) required for xenoestrogenisity in vivo. (+info)Variation, certainty, evidence, and change in dental education: employing evidence-based dentistry in dental education. (6/136)
Variation in health care, and more particularly in dental care, was recently chronicled in a Readers Digest investigative report. The conclusions of this report are consistent with sound scientific studies conducted in various areas of health care, including dental care, which demonstrate substantial variation in the care provided to patients. This variation in care parallels the certainty with which clinicians and faculty members often articulate strongly held, but very different opinions. Using a case-based dental scenario, we present systematic evidence-based methods for accessing dental health care information, evaluating this information for validity and importance, and using this information to make informed curricular and clinical decisions. We also discuss barriers inhibiting these systematic approaches to evidence-based clinical decision making and methods for effectively promoting behavior change in health care professionals. (+info)Study of the fluoridated adhesive resin cement--fluoride release, fluoride uptake and acid resistance of tooth structures. (7/136)
The objectives of this study, were to evaluate the fluoride release from fluoridate adhesive resin cement, fluoride uptake into surrounding tooth structures and the effect of their acid resistance. Several specimens were prepared using a plastic ring mould, from extracted human premolars, and prepared from enamel and dentin of the central area of the buccal surface of bovine teeth. The fluoride release rate of fluoridate adhesive resin cement (PN 200) per day was higher than other materials during the 7-day study period. Fluoride released and fluoride uptake by tooth structures was higher in the fluoridate adhesive resin cement. WDX analysis showed the fluoride concentration on dentin contact area was higher than that of enamel after 60 days of immersion in deionized water. The calcium release values were similar for enamel and dentin plates in the various test materials. The present findings indicated the important enhancement of tooth structure acid resistance by fluoridate material. (+info)Use of fissure sealant retention as an outcome measure in a dental school setting. (8/136)
The purpose of this study was to describe and assess the use of fissure sealant retention as a quality measure of the delivery system for pediatric dentistry. The Pediatric Dentistry Section at the Ohio State University College of Dentistry adopted Sealant retention as a measure of quality. Sealant retention in first and second molars was evaluated at each six-month recall appointment. Sealants were categorized as satisfactory or unsatisfactory. Two hundred five sealants were evaluated between March 1998 and March 1999. The mean age of the patients at the time of sealant evaluation was 14.0 +/- 2.9. Mean sealant retention period was 29.8 +/- 23.2 months, with a range of 0.9 to 148 months. Median sealant retention period was 23.2 months. Overall, 75.6 percent of the sealed teeth were classified as satisfactory. Use of this data in making improvements is discussed. Our results indicate that the use of sealant retention is a suitable measure for quality of care in pediatric dentistry. (+info)Pit and fissure sealants are a preventive dental treatment that involves the application of a thin, plastic coating to the chewing surfaces of teeth, usually the molars and premolars. The goal of this treatment is to protect the pits and fissures, which are the grooves and depressions on the chewing surfaces of teeth, from decay.
The sealant material flows into the pits and fissures, creating a smooth, protective barrier that prevents food and bacteria from becoming trapped in these areas and causing cavities. The procedure is typically quick, painless, and non-invasive, and can be performed during a routine dental checkup. Sealants are most commonly recommended for children and adolescents, but they may also be appropriate for adults who are at high risk of tooth decay.
A fissure in ano, also known as anal fissure, is a linear tear or split in the lining of the anus, usually occurring in the posterior midline. It can cause pain and bleeding during bowel movements. Anal fissures are often caused by constipation, passing hard stools, or prolonged diarrhea. They can also be associated with underlying conditions such as inflammatory bowel disease or anal cancer. Treatment typically involves increasing fiber intake, using stool softeners, and topical treatments to promote healing and relieve pain. In some cases, surgery may be required for severe or chronic fissures that do not respond to conservative treatment.
Dental fissures are narrow, deep grooves or depressions on the biting surfaces of posterior teeth, such as premolars and molars. These fissures occur naturally in the tooth structure and can vary in depth and width. They can be a potential site for food debris accumulation and dental plaque, making them more susceptible to tooth decay (dental caries).
There are two main types of dental fissures:
1. Mesiobuccal fissure - This fissure is located between the mesial (toward the front) and buccal (toward the cheek) cusps of a molar tooth.
2. Occclusal fissure - These are the grooves that run across the biting surface of a molar or premolar tooth, often dividing into multiple branches.
To prevent dental caries in these areas, dentists may recommend sealants, which are thin plastic coatings applied to the fissures to seal them off and protect them from bacteria and food particles. Regular dental check-ups and good oral hygiene practices, including brushing twice a day and flossing daily, also help maintain the health of these areas and prevent tooth decay.
Tooth preparation is a term used in dentistry to refer to the process of altering the tooth structure to receive a dental restoration, such as a filling, crown, or veneer. This procedure involves removing decayed or damaged portions of the tooth and shaping the remaining tooth structure to provide a stable foundation for the restoration. The preparation may also include reducing the size of the tooth to make room for the restoration and creating a smooth, uniform surface to ensure a proper fit and seal. The ultimate goal of tooth preparation is to restore the function, health, and aesthetics of the damaged tooth while preserving as much of the natural tooth structure as possible.
Dental leakage, also known as "microleakage" in dental terminology, refers to the seepage or penetration of fluids, bacteria, or other substances between the walls of a dental restoration (such as a filling, crown, or bridge) and the prepared tooth structure. This occurs due to the presence of microscopic gaps or spaces at the interface of the restoration and the tooth.
Dental leakage can lead to several problems, including:
1. Recurrent decay: The seepage of fluids, bacteria, and sugars from the oral environment can cause secondary tooth decay around the margins of the restoration.
2. Sensitivity: Microleakage may result in temperature sensitivity or pain when consuming hot or cold foods and beverages due to fluid movement within the gap.
3. Discoloration: Over time, dental leakage might lead to staining of the tooth structure around the restoration, resulting in an unaesthetic appearance.
4. Failed restorations: Persistent dental leakage can weaken the bond between the restoration and the tooth, increasing the risk of restoration failure and the need for replacement.
To prevent dental leakage, dentists employ various techniques during restoration placement, such as using appropriate adhesives, following meticulous preparation protocols, and ensuring a tight seal around the margins of the restoration. Regular dental check-ups and professional cleanings are essential to monitor the condition of existing restorations and address any issues before they become more severe.
Dental enamel is the hard, white, outermost layer of a tooth. It is a highly mineralized and avascular tissue, meaning it contains no living cells or blood vessels. Enamel is primarily composed of calcium and phosphate minerals and serves as the protective covering for the crown of a tooth, which is the portion visible above the gum line.
Enamel is the hardest substance in the human body, and its primary function is to provide structural support and protection to the underlying dentin and pulp tissues of the tooth. It also plays a crucial role in chewing and biting by helping to distribute forces evenly across the tooth surface during these activities.
Despite its hardness, dental enamel can still be susceptible to damage from factors such as tooth decay, erosion, and abrasion. Once damaged or lost, enamel cannot regenerate or repair itself, making it essential to maintain good oral hygiene practices and seek regular dental checkups to prevent enamel damage and protect overall oral health.
Bisphenol A-Glycidyl Methacrylate (BPAGM) is a type of chemical compound that belongs to the class of organic compounds known as glycidyl methacrylates. It is created by the reaction between bisphenol A and glycidyl methacrylate.
BPAGM is used in various industrial applications, including the production of coatings, adhesives, and resins. In the medical field, it has been used as a component in some dental materials, such as bonding agents and composite resins. However, due to concerns about its potential health effects, including its possible estrogenic activity and potential to cause reproductive toxicity, its use in dental materials has become more restricted in recent years.
It is important to note that exposure to BPAGM should be limited as much as possible, and appropriate safety measures should be taken when handling this chemical compound.
Phosphoric acids are a group of mineral acids known chemically as orthophosphoric acid and its salts or esters. The chemical formula for orthophosphoric acid is H3PO4. It is a weak acid that partially dissociates in solution to release hydrogen ions (H+), making it acidic. Phosphoric acid has many uses in various industries, including food additives, fertilizers, and detergents.
In the context of medical definitions, phosphoric acids are not typically referred to directly. However, they can be relevant in certain medical contexts, such as:
* In dentistry, phosphoric acid is used as an etching agent to prepare tooth enamel for bonding with dental materials.
* In nutrition, phosphorus is an essential mineral that plays a crucial role in many bodily functions, including energy metabolism, bone and teeth formation, and nerve function. Phosphoric acid is one form of phosphorus found in some foods and beverages.
* In medical research, phosphoric acids can be used as buffers to maintain a stable pH in laboratory experiments or as reagents in various analytical techniques.
Dental marginal adaptation refers to the way in which a dental restoration, such as a filling or crown, fits precisely and accurately along the margin or edge where it meets the tooth structure. The term "marginal" describes the border between the restoration and the tooth. Ideally, this junction should be tight and smooth, without any gaps or spaces that could allow for the accumulation of bacteria, food debris, or dental plaque.
Achieving good marginal adaptation is crucial to ensure the longevity and success of a dental restoration. When the margin is well-adapted, it helps prevent microleakage, secondary tooth decay, and sensitivity. It also contributes to the overall seal and integrity of the restoration, minimizing the risk of recurrent caries or other complications.
The process of achieving optimal marginal adaptation involves careful preparation of the tooth structure, precise impression-taking techniques, and meticulous fabrication of the dental restoration. The use of high-quality materials and modern technologies, such as digital impressions and CAD/CAM systems, can further enhance the accuracy and predictability of the marginal adaptation.
Dental caries, also known as tooth decay or cavities, refers to the damage or breakdown of the hard tissues of the teeth (enamel, dentin, and cementum) due to the activity of acid-producing bacteria. These bacteria ferment sugars from food and drinks, producing acids that dissolve and weaken the tooth structure, leading to cavities.
The process of dental caries development involves several stages:
1. Demineralization: The acidic environment created by bacterial activity causes minerals (calcium and phosphate) to be lost from the tooth surface, making it weaker and more susceptible to decay.
2. Formation of a white spot lesion: As demineralization progresses, a chalky white area appears on the tooth surface, indicating early caries development.
3. Cavity formation: If left untreated, the demineralization process continues, leading to the breakdown and loss of tooth structure, resulting in a cavity or hole in the tooth.
4. Infection and pulp involvement: As the decay progresses deeper into the tooth, it can reach the dental pulp (the soft tissue containing nerves and blood vessels), causing infection, inflammation, and potentially leading to toothache, abscess, or even tooth loss.
Preventing dental caries involves maintaining good oral hygiene, reducing sugar intake, using fluoride toothpaste and mouthwash, and having regular dental check-ups and cleanings. Early detection and treatment of dental caries can help prevent further progression and more severe complications.
A fibrin tissue adhesive is a type of surgical glue that is used to approximate and secure together cut or wounded tissues in the body during surgical procedures. It is made from fibrin, a protein involved in blood clotting, and is often combined with other substances like thrombin and calcium chloride to promote clot formation and enhance adhesion.
Fibrin tissue adhesives work by mimicking the body's natural clotting process. When applied to the wound site, the fibrinogen component of the adhesive is converted into fibrin by the thrombin component, creating a stable fibrin clot that holds the edges of the wound together. This helps to promote healing and reduce the risk of complications such as bleeding or infection.
Fibrin tissue adhesives are commonly used in various surgical procedures, including dermatologic, ophthalmic, orthopedic, and neurologic surgeries. They offer several advantages over traditional suturing methods, such as reduced operation time, less trauma to the tissues, and improved cosmetic outcomes. However, they may not be suitable for all types of wounds or surgical sites, and their use should be determined by a qualified healthcare professional based on individual patient needs and circumstances.
Glass Ionomer Cements (GICs) are a type of dental restorative material that have the ability to chemically bond to tooth structure. They are composed of a mixture of silicate glass powder and an organic acid, such as polyacrylic acid. GICs have several clinical applications in dentistry, including as a filling material for small to moderate sized cavities, as a liner or base under other restorative materials, and as a cement for securing crowns, bridges, and orthodontic appliances.
GICs are known for their biocompatibility, caries inhibition, and adhesion to tooth structure. They also have the ability to release fluoride ions, which can help protect against future decay. However, they are not as strong or wear-resistant as some other dental restorative materials, such as amalgam or composite resin, so they may not be suitable for use in high-load bearing restorations.
GICs can be classified into two main types: conventional and resin-modified. Conventional GICs have a longer setting time and are more prone to moisture sensitivity during placement, while resin-modified GICs contain additional methacrylate monomers that improve their handling properties and shorten their setting time. However, the addition of these monomers may also reduce their fluoride release capacity.
Overall, glass ionomer cements are a valuable dental restorative material due to their unique combination of adhesion, biocompatibility, and caries inhibition properties.
Acid etching in dental terminology refers to a surface treatment technique used in dentistry, particularly for bonding procedures. This process involves the application of a mild acid (usually phosphoric or maleic acid) onto the enamel or dentin surface of a tooth. The acid etches the surface by selectively removing the minerals and creating microscopic irregularities or porosities.
This etched surface provides an increased surface area and better mechanical retention for bonding agents, resin composites, or dental cements. As a result, the bond between the tooth and the restorative material becomes stronger and more durable. Acid etching is widely used in various dental procedures such as direct and indirect tooth-colored restorations, veneers, crowns, bridges, and orthodontic attachments.
Cariostatic agents are substances or medications that are used to prevent or inhibit the development and progression of dental caries, also known as tooth decay or cavities. These agents work by reducing the ability of bacteria in the mouth to produce acid, which can erode the enamel and dentin of the teeth and lead to cavities.
There are several types of cariostatic agents that are commonly used in dental care, including:
1. Fluorides: These are the most widely used and well-studied cariostatic agents. They work by promoting the remineralization of tooth enamel and making it more resistant to acid attacks. Fluoride can be found in toothpaste, mouthwashes, gels, varnishes, and fluoridated water supplies.
2. Antimicrobial agents: These substances work by reducing the population of bacteria in the mouth that contribute to tooth decay. Examples include chlorhexidine, triclosan, and xylitol.
3. Casein phosphopeptide-amorphous calcium phosphate (CPP-ACP): This is a complex protein that has been shown to help remineralize tooth enamel and reduce the risk of dental caries. It can be found in some toothpastes and mouthwashes.
4. Silver diamine fluoride: This is a topical fluoride compound that contains silver ions, which have antimicrobial properties. It has been shown to be effective in preventing and arresting dental caries, particularly in high-risk populations such as young children and older adults with dry mouth.
It's important to note that while cariostatic agents can help reduce the risk of tooth decay, they are not a substitute for good oral hygiene practices such as brushing twice a day, flossing daily, and visiting the dentist regularly.
Enamel microabrasion is a dental procedure that involves the selective removal of a small amount of enamel from the surface of a tooth in order to eliminate superficial defects or stains. This technique uses a combination of mild acids and abrasives to gently wear away the outermost layer of the enamel, reducing the appearance of imperfections such as discoloration, white spots, or minor chips.
The microabrasion process typically involves the following steps:
1. The tooth is isolated and cleaned to remove any debris or plaque.
2. A protective gel or rubber dam is placed over the surrounding gum tissue to prevent irritation during the procedure.
3. A mild acid is applied to the affected enamel area, which helps to soften and loosen the outer layer of the tooth surface.
4. An abrasive substance, such as pumice or a diamond-impregnated disc, is used to gently rub away the softened enamel.
5. The acid and abrasion steps are repeated several times until the desired level of improvement is achieved.
6. The tooth is rinsed thoroughly and polished to smooth the surface and remove any remaining residue.
Enamel microabrasion is a conservative, non-invasive treatment option for improving the appearance of teeth with minor cosmetic issues. It can be used as an alternative to more invasive procedures like dental bonding or veneers, and it does not require the removal of any significant tooth structure. However, this technique may not be effective for deeper stains or more severe enamel defects, in which case other treatments may be recommended.
Resin cements are dental materials used to bond or cement restorations, such as crowns, bridges, and orthodontic appliances, to natural teeth or implants. They are called "resin" cements because they are made of a type of synthetic resin material that can be cured or hardened through the use of a chemical reaction or exposure to light.
Resin cements typically consist of three components: a base, a catalyst, and a filler. The base and catalyst are mixed together to create a putty-like consistency, which is then applied to the restoration or tooth surface. Once the cement is in place, it is exposed to light or allowed to chemically cure, which causes it to harden and form a strong bond between the restoration and the tooth.
Resin cements are known for their excellent adhesive properties, as well as their ability to withstand the forces of biting and chewing. They can also be color-matched to natural teeth, making them an aesthetically pleasing option for dental restorations. However, they may not be suitable for all patients or situations, and it is important for dental professionals to carefully consider the specific needs and conditions of each patient when choosing a cement material.
Dental prophylaxis is a dental procedure aimed at the prevention and treatment of dental diseases. It is commonly known as a "teeth cleaning" and is performed by a dentist or dental hygienist. The procedure involves removing plaque, tartar, and stains from the teeth to prevent tooth decay and gum disease. Dental prophylaxis may also include polishing the teeth, applying fluoride, and providing oral hygiene instructions to promote good oral health. It is recommended that individuals receive a dental prophylaxis every six months or as directed by their dentist.
Light-curing of dental adhesives refers to the process of using a special type of light to polymerize and harden the adhesive material used in dentistry. The light is typically a blue spectrum light, with a wavelength of approximately 460-490 nanometers, which activates a photoinitiator within the adhesive. This initiates a polymerization reaction that causes the adhesive to solidify and form a strong bond between the tooth surface and the dental restoration material, such as a filling or a crown.
The light-curing process is an important step in many dental procedures as it helps ensure the durability and longevity of the restoration. The intensity and duration of the light exposure are critical factors that can affect the degree of cure and overall strength of the bond. Therefore, it is essential to follow the manufacturer's instructions carefully when using dental adhesives and light-curing equipment.
"School dentistry" is not a term with a widely accepted or specific medical definition. However, it generally refers to dental services provided in a school setting, often as part of a school-based oral health program. These programs aim to improve the oral health of children, particularly those from underserved communities who may not have easy access to regular dental care. Services can include dental screenings, cleanings, fluoride treatments, sealants, and education about oral hygiene and nutrition. School dentistry programs can be an important component of efforts to reduce tooth decay and promote overall health in children.
Dental enamel permeability refers to the ability of substances to pass through the dental enamel, which is the hard, outermost layer of a tooth. The permeability of dental enamel can be affected by various factors such as its mineral content, structure, and the pH level of the oral environment.
Under normal conditions, dental enamel is relatively impermeable to substances due to its highly mineralized structure. However, when the enamel is exposed to acidic environments, such as those created by bacterial plaque, the minerals in the enamel can dissolve, creating microscopic pores that increase its permeability. This process, known as demineralization, can lead to tooth decay and other dental problems.
On the other hand, certain treatments and materials used in dentistry may temporarily increase the permeability of dental enamel, such as etching with acid before bonding procedures. This intentional increase in permeability allows for better adhesion of filling materials or sealants to the tooth surface. However, it is important to manage and control the permeability of dental enamel to maintain its structural integrity and protect oral health.
I'm happy to help! However, I must clarify that "materials testing" is not a medical term per se. It is a term used in various fields, including engineering and materials science, to describe the process of subjecting materials to different tests to evaluate their properties and performance under various conditions.
In the context of medical devices or implants, materials testing may refer to the evaluation of the physical and mechanical properties of materials used in their construction. These tests can include assessments of strength, durability, biocompatibility, and other factors that are critical to ensuring the safety and efficacy of medical devices.
Medical device manufacturers must comply with regulatory standards for materials testing to ensure that their products meet specific requirements for performance, safety, and quality. These standards may vary depending on the type of device, its intended use, and the country or region in which it will be marketed and sold.
Composite resins, also known as dental composites or filling materials, are a type of restorative material used in dentistry to restore the function, integrity, and morphology of missing tooth structure. They are called composite resins because they are composed of a combination of materials, including a resin matrix (usually made of bisphenol A-glycidyl methacrylate or urethane dimethacrylate) and filler particles (commonly made of silica, quartz, or glass).
The composite resins are widely used in modern dentistry due to their excellent esthetic properties, ease of handling, and ability to bond directly to tooth structure. They can be used for a variety of restorative procedures, including direct and indirect fillings, veneers, inlays, onlays, and crowns.
Composite resins are available in various shades and opacities, allowing dentists to match the color and translucency of natural teeth closely. They also have good wear resistance, strength, and durability, making them a popular choice for both anterior and posterior restorations. However, composite resins may be prone to staining over time and may require more frequent replacement compared to other types of restorative materials.
Dentin-bonding agents are substances used in dentistry to create a strong and durable bond between the dental restoration material (such as composite resin, glass ionomer cement, or crowns) and the dentin surface of a tooth. Dentin is the hard tissue that lies beneath the enamel and consists of microscopic tubules filled with fluid.
The primary function of dentin-bonding agents is to improve the adhesion of restorative materials to the tooth structure, enhancing the retention and durability of dental fillings, crowns, veneers, and other types of restorations. These agents typically contain one or more types of bonding resins, such as hydroxyethyl methacrylate (HEMA), 4-methacryloxyethyl trimellitate anhydride (4-META), and/or phosphoric acid ester monomers.
The application process for dentin-bonding agents usually involves several steps, including:
1. Etching the dentin surface with a mild acid to remove the smear layer and expose the collagen network within the dentin tubules.
2. Applying a primer that penetrates into the etched dentin and promotes the infiltration of bonding resins into the dentinal tubules.
3. Applying an adhesive, which is typically a mixture of hydrophilic and hydrophobic monomers, to form a stable bond between the tooth structure and the restoration material.
4. Light-curing the adhesive to polymerize the resin and create a strong mechanical bond with the dentin surface.
Dentin-bonding agents have significantly improved the clinical success of various dental restorations by enhancing their retention, reducing microleakage, and minimizing postoperative sensitivity. However, they may still be susceptible to degradation over time due to factors such as moisture contamination, enzymatic degradation, or hydrolysis, which can lead to the failure of dental restorations. Therefore, continuous advancements in dentin-bonding technology are essential for improving the long-term success and durability of dental restorations.
Artificial saliva is a synthetic solution that mimics the chemical composition and properties of natural saliva. It is often used for patients with dry mouth (xerostomia) caused by conditions such as Sjögren's syndrome, radiation therapy, or certain medications that reduce saliva production. Artificial saliva may contain ingredients like carboxymethylcellulose, mucin, and electrolytes to provide lubrication, moisture, and pH buffering capacity similar to natural saliva. It can help alleviate symptoms associated with dry mouth, such as difficulty speaking, swallowing, and chewing, as well as protect oral tissues from irritation and infection.
Dental bonding is a cosmetic dental procedure in which a tooth-colored resin material (a type of plastic) is applied and hardened with a special light, which ultimately "bonds" the material to the tooth to improve its appearance. According to the American Dental Association (ADA), dental bonding can be used for various purposes, including:
1. Repairing chipped or cracked teeth
2. Improving the appearance of discolored teeth
3. Closing spaces between teeth
4. Protecting a portion of the tooth's root that has been exposed due to gum recession
5. Changing the shape and size of teeth
Dental bonding is generally a quick and painless procedure, often requiring little to no anesthesia. The surface of the tooth is roughened and conditioned to help the resin adhere properly. Then, the resin material is applied, molded, and smoothed to the desired shape. A special light is used to harden the material, which typically takes only a few minutes. Finally, the bonded material is trimmed, shaped, and polished to match the surrounding teeth.
While dental bonding can be an effective solution for minor cosmetic concerns, it may not be as durable or long-lasting as other dental restoration options like veneers or crowns. The lifespan of a dental bonding procedure typically ranges from 3 to 10 years, depending on factors such as oral habits, location of the bonded tooth, and proper care. Regular dental checkups and good oral hygiene practices can help extend the life of dental bonding.
Pediatric Dentistry is a specialty of dentistry that focuses on the oral health of children from infancy through adolescence. It involves comprehensive dental care that includes prevention, early detection and treatment of dental diseases, and counseling to promote healthy oral habits and behaviors. Pediatric dentists are trained to understand and meet the unique needs of children, including those with special healthcare needs. They provide services such as routine check-ups, cleanings, fluoride treatments, sealants, fillings, crowns, extractions, and interceptive orthodontics. The goal of pediatric dentistry is to ensure that children maintain good oral health throughout their lives.
Dental caries susceptibility refers to the likelihood or predisposition of an individual to develop dental caries, also known as tooth decay or cavities. It is influenced by various factors such as oral hygiene practices, dietary habits, saliva composition, and the presence of certain bacteria in the mouth, particularly mutans streptococci and lactobacilli.
People with a higher dental caries susceptibility may have thinner or softer enamel, reduced saliva flow, or a greater concentration of cavity-causing bacteria in their mouths. Regular dental check-ups and good oral hygiene practices, such as brushing twice a day, flossing daily, and using fluoride toothpaste, can help reduce the risk of developing dental caries. Additionally, a balanced diet that limits sugary and starchy foods and beverages can also help lower the likelihood of tooth decay.
Topical fluorides are a form of fluoride that are applied directly to the teeth to prevent dental caries (cavities). They are available in various forms such as toothpastes, gels, foams, and varnishes. Topical fluorides work by strengthening the enamel of the teeth, making them more resistant to acid attacks caused by bacteria in the mouth. They can also help to reverse early signs of decay. Regular use of topical fluorides, especially in children during the years of tooth development, can provide significant protection against dental caries.
Compomers are a type of dental restorative material that contain both glass ionomer and composite resin components. They are designed to combine the advantages of both materials, such as the fluoride release and adhesion to tooth structure of glass ionomers, and the strength and esthetics of composite resins. Compomers are often used for restoring primary teeth in children due to their ease of use and reduced sensitivity compared to traditional composite resins. However, they may not be as durable or wear-resistant as other restorative materials, so their use is generally limited to small to moderate-sized cavities.
Rosaniline dyes are a type of basic dye that were first synthesized in the late 19th century. They are named after rosaniline, which is a primary chemical used in their production. Rosaniline dyes are characterized by their ability to form complexes with metal ions, which can then bind to proteins and other biological molecules. This property makes them useful as histological stains, which are used to highlight specific structures or features within tissues and cells.
Rosaniline dyes include a range of different chemicals, such as methyl violet, crystal violet, and basic fuchsin. These dyes are often used in combination with other staining techniques to provide contrast and enhance the visibility of specific cellular components. For example, they may be used to stain nuclei, cytoplasm, or other structures within cells, allowing researchers and clinicians to visualize and analyze tissue samples more effectively.
It's worth noting that some rosaniline dyes have been found to have potential health hazards, particularly when used in certain forms or concentrations. Therefore, it's important to follow proper safety protocols when handling these chemicals and to use them only under the guidance of trained professionals.
Coated pits are specialized regions on the cell membrane that are involved in the process of endocytosis. They are called "coated" pits because they are covered or coated with a layer of proteins and clathrin molecules, which form a lattice-like structure that helps to shape and invaginate the membrane inward, forming a vesicle.
Coated pits play an important role in regulating cellular uptake of various substances, such as nutrients, hormones, and receptors. Once the coated pit has pinched off from the cell membrane, it becomes a coated vesicle, which can then fuse with other intracellular compartments to deliver its contents.
The formation of coated pits is a highly regulated process that involves the recruitment of specific proteins and adaptors to the site of endocytosis. Defects in this process have been implicated in various diseases, including neurodevelopmental disorders and cancer.
Tissue adhesives, also known as surgical glues or tissue sealants, are medical devices used to approximate and hold together tissues or wounds in place of traditional sutures or staples. They work by creating a bond between the tissue surfaces, helping to promote healing and reduce the risk of infection. Tissue adhesives can be synthetic or biologically derived and are often used in various surgical procedures, including ophthalmic, dermatological, and pediatric surgeries. Some common types of tissue adhesives include cyanoacrylate-based glues, fibrin sealants, and collagen-based sealants.
Surface properties in the context of medical science refer to the characteristics and features of the outermost layer or surface of a biological material or structure, such as cells, tissues, organs, or medical devices. These properties can include physical attributes like roughness, smoothness, hydrophobicity or hydrophilicity, and electrical conductivity, as well as chemical properties like charge, reactivity, and composition.
In the field of biomaterials science, understanding surface properties is crucial for designing medical implants, devices, and drug delivery systems that can interact safely and effectively with biological tissues and fluids. Surface modifications, such as coatings or chemical treatments, can be used to alter surface properties and enhance biocompatibility, improve lubricity, reduce fouling, or promote specific cellular responses like adhesion, proliferation, or differentiation.
Similarly, in the field of cell biology, understanding surface properties is essential for studying cell-cell interactions, cell signaling, and cell behavior. Cells can sense and respond to changes in their environment, including variations in surface properties, which can influence cell shape, motility, and function. Therefore, characterizing and manipulating surface properties can provide valuable insights into the mechanisms of cellular processes and offer new strategies for developing therapies and treatments for various diseases.
I'm not aware of a medical definition for "DMF Index." The abbreviation "DMF" could potentially stand for many things, as it is used in various contexts across different fields. In the field of dentistry, DMF stands for Decayed, Missing, and Filled teeth/surfaces, which is a method for measuring dental caries or tooth decay. However, there is no standard medical definition for "DMF Index." If you could provide more context or specify the field of study or practice, I would be happy to help further!
Coloring agents, also known as food dyes or color additives, are substances that are added to foods, medications, and cosmetics to improve their appearance by giving them a specific color. These agents can be made from both synthetic and natural sources. They must be approved by regulatory agencies such as the U.S. Food and Drug Administration (FDA) before they can be used in products intended for human consumption.
Coloring agents are used for various reasons, including:
* To replace color lost during food processing or preparation
* To make foods more visually appealing
* To help consumers easily identify certain types of food
* To indicate the flavor of a product (e.g., fruit-flavored candies)
It's important to note that while coloring agents can enhance the appearance of products, they do not affect their taste or nutritional value. Some people may have allergic reactions to certain coloring agents, so it's essential to check product labels if you have any known allergies. Additionally, excessive consumption of some synthetic coloring agents has been linked to health concerns, so moderation is key.
Methacrylates are a group of chemical compounds that contain the methacrylate functional group, which is a vinyl group (CH2=CH-) with a carbonyl group (C=O) at the β-position. This structure gives them unique chemical and physical properties, such as low viscosity, high reactivity, and resistance to heat and chemicals.
In medical terms, methacrylates are used in various biomedical applications, such as dental restorative materials, bone cements, and drug delivery systems. For example, methacrylate-based resins are commonly used in dentistry for fillings, crowns, and bridges due to their excellent mechanical properties and adhesion to tooth structures.
However, there have been concerns about the potential toxicity of methacrylates, particularly their ability to release monomers that can cause allergic reactions, irritation, or even mutagenic effects in some individuals. Therefore, it is essential to use these materials with caution and follow proper handling and safety protocols.
A coloboma is a congenital condition that results from incomplete closure of the optic fissure during fetal development. This results in a gap or hole in one or more structures of the eye, such as the iris, retina, choroid, or optic nerve. The size and location of the coloboma can vary widely, and it may affect one or both eyes.
Colobomas can cause a range of visual symptoms, depending on their size and location. Some people with colobomas may have no visual impairment, while others may experience reduced vision, double vision, or sensitivity to light. In severe cases, colobomas can lead to blindness.
Colobomas are usually diagnosed during routine eye exams and are typically not treatable, although some visual symptoms may be managed with glasses, contact lenses, or surgery in certain cases. Colobomas can occur as an isolated condition or as part of a genetic syndrome, so individuals with colobomas may benefit from genetic counseling to understand their risk of passing the condition on to their offspring.
A single-blind method in medical research is a study design where the participants are unaware of the group or intervention they have been assigned to, but the researchers conducting the study know which participant belongs to which group. This is done to prevent bias from the participants' expectations or knowledge of their assignment, while still allowing the researchers to control the study conditions and collect data.
In a single-blind trial, the participants do not know whether they are receiving the active treatment or a placebo (a sham treatment that looks like the real thing but has no therapeutic effect), whereas the researcher knows which participant is receiving which intervention. This design helps to ensure that the participants' responses and outcomes are not influenced by their knowledge of the treatment assignment, while still allowing the researchers to assess the effectiveness or safety of the intervention being studied.
Single-blind methods are commonly used in clinical trials and other medical research studies where it is important to minimize bias and control for confounding variables that could affect the study results.
In the context of dentistry, a molar is a type of tooth found in the back of the mouth. They are larger and wider than other types of teeth, such as incisors or canines, and have a flat biting surface with multiple cusps. Molars are primarily used for grinding and chewing food into smaller pieces that are easier to swallow. Humans typically have twelve molars in total, including the four wisdom teeth.
In medical terminology outside of dentistry, "molar" can also refer to a unit of mass in the apothecaries' system of measurement, which is equivalent to 4.08 grams. However, this usage is less common and not related to dental or medical anatomy.