Glass composition
A glass composition with controlled degradation and fluoride release addresses the limitations of existing dentin desensitizing products by effectively occluding dentinal tubules and reducing sensitivity, while maintaining product efficacy and minimizing abrasive wear.
Patent Information
- Application Number
- JP2024121151
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-05-14
- Filing Date
- 2024-07-26
- Publication Date
- 2026-01-15
- Estimated Expiration
- 2039-09-04
AI Technical Summary
Current dentin desensitizing compositions using non-degradable particulate materials either fail to provide long-term relief or require complex formulations, and there is a need for a composition that effectively occludes dentinal tubules and desensitizes dentin without causing abrasive wear.
A glass composition comprising specific mol% of Li2O, Rb2O, KO2O, Na2O, SrO, CaO, MgO, and ZnO, with controlled degradation and fluoride release, formulated into dentin desensitizing products like toothpaste, mouthwash, or dental varnish, to occlude dentinal tubules and reduce sensitivity.
The glass composition effectively occludes dentinal tubules, providing temporary pain relief by forming a protective precipitate, while maintaining product integrity and reducing abrasive wear on teeth surfaces.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to glass compositions for dentin desensitizing compositions. [Background technology]
[0002] The following paragraphs do not constitute an admission that anything discussed therein is prior art or part of the knowledge of those skilled in the art.
[0003] Dentin sensitivity is tooth pain resulting from exposed dentin surfaces in response to thermal, evaporative, tactile, osmotic, chemical, or electrical stimuli. Dentin sensitivity can be caused by gingival recession with exposed root surfaces (receding gums), loss of the cementum and smear layer, tooth wear, acid erosion, root flattening, or tooth whitening.
[0004] Dentin contains thousands of tiny tubular structures radiating outward from the pulp. Alterations in the flow of the plasma-like fluid present in the dentinal tubules trigger mechanoreceptors present in the nerves adjacent to the tooth pulp, thereby eliciting a pain response. This hydrodynamic flow can be increased by cold air pressure, dryness, sugar, acidity (dehydrating agents), or forces acting on the tooth. Hot or cold foods and drinks, and physical pressure are typical triggers for individuals with dental sensitivity.
[0005] There is no globally accepted gold standard treatment that reliably relieves the pain of dental sensitivity in the long term, however treatments can be divided into in-office (i.e., those intended to be applied by a dentist or dental therapist) or those that can be performed at home, over-the-counter or prescription.
[0006] The mechanism of action of these treatments is thought to be either occlusion of dentinal tubules or desensitization of nerve fibers / blocking of nerve conduction. Summary of the Invention
[0007] introduction The following introduction is intended to orient the reader to this specification, but does not define any invention. One or more inventions may reside in any combination or subcombination of the apparatus elements or method steps described below, or elsewhere in this specification. The inventors have not waived or relinquished any rights to any invention disclosed herein merely by not claiming such other inventions.
[0008] One example of a dentin desensitizing composition known in the art is disclosed in PCT Publication WO2007144662A1. The disclosed toothpaste contains a bioactive glass containing strontium. The disclosed bioactive glass occludes dentin tubules and induces the precipitation and crystallization of carbonated hydroxyapatite. The disclosed bioactive glass is designed to degrade at a rate consistent with the rate of induced tissue ingrowth.
[0009] One example of a dentin desensitizing composition known in the art is disclosed in U.S. Patent No. 5,735,942. The disclosed toothpaste contains a mineral component consisting of CaO, Na2O, PO5, and SiO2. The disclosed mineral composition chemically reacts with the surface of dentin and intimately bonds with the tooth structure.
[0010] One or more described embodiments attempt to address or ameliorate one or more drawbacks associated with dentin desensitizing compositions that include non-degradable particulate materials that occlude dentinal tubules. In some embodiments, the disclosed particulate materials substantially degrade over a 12-24 hour period under ambient conditions. In some embodiments, the disclosed particulate materials provide a controlled release of fluoride over the same period.
[0011] In some embodiments, the present disclosure provides a glass composition comprising about 50 mol% to about 5 mol% of a glass component selected from the group consisting of Li2O, Rb2O, KO2O, Na2O, SrO, CaO, MgO, ZnO, and any combination thereof; 0 mol% CuO; less than 0.1 mol% BaO; and less than 0.1 mol% PO5, wherein the glass composition comprises less than 30 mol% Rb2O; the glass composition loses at least 5 mol% of Rb2O within 24 hours upon exposure to a buffered saline solution; and the glass composition is a particulate material comprising particles having a size of about 1 to about 50 μm. The glass composition does not consist solely of BO3 and Na2O.
[0012] In some examples of glass compositions according to the present disclosure, less than 20 mol %, eg, less than 15 mol %, less than 10 mol %, or less than 5 mol % of the glass composition is CaO, MgO, and Na 2 O.
[0013] The glass composition may further include up to about 30 mol% fluoride, where the fluoride is in the form of CaF2, NaF, Na2PO3F, KF, or SnF2.
[0014] In another embodiment, the present disclosure provides a glass composition for desensitizing dentin, the glass composition comprising about 50 mol% to about 95 mol% of a glass component selected from the group consisting of about 50 mol% to about 95 mol% B2O3; Li2O, Rb2O, KO2O, Na2O, SrO, CaO, MgO, ZnO, and any combination thereof, wherein the glass composition comprises less than 30 mol% Rb2O. The glass composition loses at least 5% by mass within 24 hours upon exposure to a buffered saline solution, and the glass composition is a particulate material comprising particles ranging in size from about 1 to about 50 μm.
[0015] In some examples of the glass composition, less than 20 mol %, for example less than 15 mol %, less than 10 mol %, or less than 5 mol % of the glass composition is CaO, MgO, and Na 2 O.
[0016] The glass composition may further include up to about 30 mol% fluoride, where the fluoride is in the form of CaF2, NaF, Na2PO3F, KF, or SnF2.
[0017] In another embodiment, the present disclosure provides a glass composition comprising: about 5 mol % to about 10 mol % fluoride provided as CaF, SnF, NaF, KF, or any combination thereof; and about 90 mol % to about 95 mol % of a combination of B0, NaO, MgO, and CaO, wherein boron, magnesium, any combination of Na and K, and any combination of Ca and Sn in the glass composition are present in an elemental ratio of about 20:4:6:3, respectively.
[0018] One example of such a specific glass composition according to the present disclosure includes about 50 mol% B2O3, about 15 mol% Na2O, about 20 mol% MgO, about 10 mol% CaOC, and about 5 mol% CaF2.
[0019] The glass compositions according to the present disclosure can be formulated into dentin-desensitizing compositions such as toothpastes, prophylactic pastes, dental varnishes, mouthwashes, dental gels, or adhesives. The dentin-desensitizing compositions according to the present disclosure are substantially anhydrous.
[0020] Glass compositions according to the present disclosure can be used to desensitize dentin, for example, in a method comprising applying a toothpaste, prophylactic paste, dental varnish, mouthwash, dental gel, or adhesive according to the present disclosure to an individual's dentin.
[0021] Glass compositions according to the present disclosure can be prepared from the corresponding bulk glasses. The chemical formulation is the same between the bulk glasses and the particulate materials. Another aspect of the present disclosure is a bulk glass having a chemical formulation as disclosed herein.
[0022] Embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]
[0023] [Figure 1] FIG. 1 shows the average surface profile of a resin composite after 20,000 brushing cycles with Gel 7HT toothpaste (“Gel”) versus Gel 7HT toothpaste (“Gel”) formulated with a glass composition of the present disclosure (“Gel + additives”). [Figure 2] Figure 2 shows the average surface profile of the resin composite after 20,000 brushing cycles for Gel 7HT ("Gel") toothpaste versus Colgate™ Enamel Health Sensitivity Relief™ toothpaste formulated with a glass composition ("Colgate EN+ Additive"). [Figure 3] FIG. 3 shows the average surface profile of the resin composite after 20,000 brushing cycles with Gel 7HT toothpaste (“Gel”) versus Colgate™ Optic White™ toothpaste (“Colgate Optic”). [Figure 4] FIG. 4 shows the average surface profile of a resin composite after 20,000 brushing cycles with Gel 7HT (“Gel”) toothpaste versus Colgate™ Enamel Health Sensitivity Relief™ toothpaste (“Colgate EN”). [Figure 5] FIG. 5 shows the average surface profile of a resin composite after 20,000 brushing cycles using Gel 7HT toothpaste (“Gel”) and Sensodyne™ Whitening Restorative and Protect™ toothpaste (“Sensodyne”). [Figure 6] FIG. 6 shows the average surface profile of the enamel surface after 20,000 brushing cycles with Gel 7HT toothpaste ("Sensodyne") formulated with a glass composition ("Gel + Additive") versus Sensodyne™ Whitening Restorative and Protect™ Toothpaste ("Sensodyne"). [Figure 7]FIG. 7 shows the average surface profile of the enamel surface after 20,000 brushing cycles with Gel 7HT toothpaste formulated with the glass composition (“Gel + additives”) versus Colgate™ Enamel Health Sensitivity Relief™ toothpaste formulated with the glass composition (“Colgate EN + additives”). [Figure 8] FIG. 8 shows the average surface profile of the enamel surface after 20,000 brushing cycles for Gel 7HT toothpaste (“Gel”) and Gel 7HT toothpaste formulated with a glass composition (“Gel + additives”). [Figure 9] FIG. 9 shows the average surface profile of the enamel surface after 20,000 brushing cycles with Gel 7HT toothpaste formulated with a glass composition (“Gel + Additive”) versus Colgate™ Optic White™ toothpaste (“Colgate Optic”). [Figure 10] FIG. 10 shows the average surface profile of enamel surfaces after 20,000 brushing cycles with Gel 7HT toothpaste formulated with a glass composition (“Gel + Additives”) versus Colgate™ Enamel Health Sensitivity Relief™ toothpaste (“Colgate EN”). [Figure 11] FIG. 11 is an image from a scanning electron microscope of an exemplary glass composition of the present disclosure after 30 minutes in simulated body fluid (SBF) at 37° C. [Figure 12] FIG. 12 is an image from a scanning electron microscope of an exemplary glass composition according to the present disclosure after 3 hours in simulated body fluid (SBF) at 37° C. [Figure 13] FIG. 13 is an image from a scanning electron microscope of an exemplary glass composition according to the present disclosure after 12 hours in simulated body fluid (SBF) at 37° C. [Figure 14] FIG. 14 is another photograph from a scanning electron microscope of an exemplary glass composition according to the present disclosure after 12 hours in simulated body fluid (SBF) at 37° C. DETAILED DESCRIPTION OF THE INVENTION
[0024] The glass composition according to the present disclosure is at least a quaternary system. The glass composition comprises about 50 mol% to about 95 mol% B2O3; and about 5 mol% to about 50 mol% of one or more glass components selected from the group consisting of Li2O, Rb2O, KO, Na2O, SrO, CaO, MgO, and ZnO. The glass composition contains less than 30 mol% Rb2O. The glass composition according to the present disclosure decomposes under physiological conditions, losing at least 5% by mass within 24 hours when exposed to buffered saline.
[0025] The glass composition is a particulate material containing particles having a size of about 1 to about 50 μm. The glass composition includes at least some particles of a size that occludes dentinal tubules, thereby desensitizing dentin. In the context of the present disclosure, particles of a size that occludes dentinal tubules should be understood to mean that the particles are present in or on the dentinal tubules, reducing dentinal fluid movement.
[0026] In the context of this disclosure, a glass composition that is "at least quaternary" should be understood to refer to a glass having four or more distinct elements. For example, a glass composition consisting only of B2O3, Li2O, and ZnO would be considered quaternary because the glass contains boron, lithium, zinc, and oxygen. Similarly, a glass composition consisting only of B2O3, CaO, and CaF2 would be considered quaternary because the glass contains boron, calcium, fluorine, and oxygen. In contrast, a glass composition consisting only of B2O3 and Na2O would be considered ternary because it contains the elements boron, sodium, and oxygen.
[0027] It should be understood that "about 5 mol% to about 50 mol% of one or more glass components" refers to the total mol% of the glass components, not the mol% of each component. For example, a glass composition according to the present disclosure may include 2.5 mol% LiO and 2.5 mol% ZnO to provide the recited 5 mol% additional glass components.
[0028] It is understood that "about X mol%" refers to a value within ±2% of the reported percentage. For example, "about 10 mol%" refers to values between 8 mol% and 12 mol%, since all of these values are within ±2% of the reported 10%; "about 50 mol%" refers to values between 48 mol% and 52 mol%, since all of these values are within ±2% of the reported 50%.
[0029] It should be understood that "about X μm" in the context of particle size is determined based on the tolerances accepted according to ASTM for the test sieve of the size in question. For example, the tolerance for a 50 μm test sieve is 3 μm. Therefore, "about 50 μm" refers to particles between 47 μm and 53 μm in size. In another example, the tolerance for a 35 μm test sieve is 2.6 μm. Therefore, "about 35 μm" refers to particles between 32.4 μm and 38.6 μm in size. The ASTM tolerance for a 25 μm sieve is 2.2 μm. For test sieves without standard tolerances (e.g., test sieves smaller than 20 μm), the phrase "about X μm" refers to ±15% for sizes between 5 and 15 μm and ±50% for sizes smaller than 5 μm. For example, "about 1 μm" refers to particles between 0.5 and 1.5 μm in size.
[0030] Glass composition Glass compositions according to the present disclosure can include a fluoride source, such as CaF2, NaF, Na2PO3F, KF, or SnF2. The inclusion of fluoride in a glass composition results in the release of fluoride as the glass deteriorates. The released fluoride forms fluorapatite (Ca5(PO4)3F) in or around dentinal tubules, forming a protective precipitate and further reducing dentin sensitivity. In glass compositions containing fluoride, the fluoride source may comprise up to 30 mol% of the glass composition. In some examples, the fluoride source may comprise about 1 mol% to about 10 mol%, e.g., about 1 mol% to about 5 mol%, of the glass composition. In certain examples, the fluoride source is about 15 mol% of the composition. Compositions containing CaF2 or SnF2 provide twice the amount of fluoride per mole of starting material compared to compositions using NaF, Na2PO3F, or KF.
[0031] In some examples, the glass composition includes between about 1 mol% and about 10 mol% fluoride.In some examples, the glass composition includes between about 1 mol% and about 5 mol% fluoride.
[0032] In some examples, the glass composition contains sufficient fluoride such that 0.1 g of particulate material releases fluoride in 10 mL of buffered saline at an average rate of about 1 ppm / hr to about 15 ppm / hr over a 1, 2, 4, 8, 12, 18, or 24 hour period. In the context of this disclosure, ppm is measured as mass / mass. In particular examples, the glass composition contains sufficient fluoride to release about 4 to about 6 ppm of fluoride per hour over a 1 hour period.
[0033] In some examples of glass compositions according to the present disclosure, less than 20 mol %, eg, less than 15 mol %, less than 10 mol %, or less than 5 mol % of the glass composition is CaO, MgO, and Na 2 O.
[0034] In one example of a glass composition according to the present disclosure, the glass composition contains no CuO, less than 0.1 mol% BaO, and less than 0.1 mol% P2O5. In particular, the glass composition does not contain CuO, BaO, or P2O5.
[0035] Glass compositions according to the present disclosure may include about 5 mol % to about 50 mol % of one or more glass components selected from the group consisting of Li2O, Rb2O, KO, Na2O, SrO, and ZnO, and the glass composition includes less than 0.1 mol % CaO and less than 0.1 mol % MgO.
[0036] Glass compositions according to the present disclosure may include about 5 mol % to about 50 mol % of one or more glass components selected from the group consisting of Li2O, Rb2O, KO, SrO, and ZnO, and the glass composition includes less than 0.1 mol % CaO, less than 0.1 mol % MgO, and less than 0.1 mol % Na2O.
[0037] Glass compositions according to the present disclosure can include about 50 mol % to about 80 mol % B2O3, for example, about 50 mol % B2O3.
[0038] The glass composition according to the present disclosure may contain about 5 mol % to about 40 mol %, for example about 20 mol % to about 40 mol %, of one or more glass components selected from the group consisting of Li2O, Rb2O, K2O, Na2O, SrO, CaO, MgO, and ZnO.
[0039] Glass compositions according to the present disclosure may contain B2O3, Li2O, and ZnO, and optionally Rb2O, Na2O, and / or a fluoride source. Specifically, the glass composition may contain about 5 mol% to about 25 mol% Li2O, about 5 mol% to about 25 mol% Rb2O, or about 5 mol% to about 25 mol% Li2O, about 5 mol% to about 15 mol% ZnO, and optionally about 5 mol% to about 15 mol% Na2O, and the glass composition may contain about 50 mol% B2O3, or about 70 mol% B2O3.
[0040] Glass compositions according to the present disclosure can include B2O3, ZnO, and optionally Rb2O and / or a fluoride source. In particular, the glass composition includes about 5 mol% to about 30 mol% ZnO. When present, RbO2 can be included in an amount of about 5 mol% to about 30 mol%. The glass composition can include about 50 mol% B2O3.
[0041] Glass compositions according to the present disclosure may include B2O3, SrO, and optionally ZnO and / or a fluoride source. In particular, the glass composition includes about 5 mol% to about 30 mol% SrO. When present, ZnO may be included in an amount of about 5 mol% to about 30 mol%. The glass composition may include about 50 mol% B2O3.
[0042] As noted above, the present disclosure also provides a glass composition comprising about 5 mol % to about 10 mol % fluoride provided as CaF, SnF, NaF, KF, or any combination thereof; and about 90 mol % to about 95 mol % of a combination of BO, NaO, MgO, and CaO, wherein boron, magnesium, any combination of Na and K, and any combination of Ca and Sn in the glass composition are present in an elemental ratio of about 20:4:6:3, respectively.
[0043] One specific example of such a glass composition includes about 50 mol% B2O3, about 15 mol% Na2O, about 20 mol% MgO, about 10 mol% CaO, and about 5 mol% CaF2, which may be referred to herein as composition "PBF1."
[0044] Another specific example of such a glass composition includes about 48 mol% BO, about 9 mol% NaO, about 19 mol% MgO, about 14 mol% CaO, and about 10 mol% NaF. This composition may be referred to herein as the composition "PBF1-Na."
[0045] Particle size distribution The glass composition of the present disclosure is a particulate material containing particles ranging in size from about 1 to about 50 μm. At least some of the particles are sized to sit within or on dentinal tubules. Dentinal tubules have natural variations in diameter, primarily ranging in size from about 0.5 to about 8 μm, e.g., from about 0.5 to about 5 μm. Thus, the glass composition of the present disclosure can be used for desensitization of dentin, which can temporarily relieve pain associated with sensitive teeth.
[0046] In some embodiments, at least 75% of the particles comprising the particulate material are smaller than 50 μm in size. In other embodiments, at least 85% or at least 95% of the particles are smaller than 50 μm in size. In some embodiments, at least 5% of the particles comprising the particulate material are smaller than 7 μm in size.
[0047] In certain embodiments, the particulate material is comprised of a plurality of particles, wherein at least 5% of the particles are smaller than 35 μm, at least 5% of the particles are smaller than 15 μm, and at least 5% of the particles are smaller than 7 μm.
[0048] In certain embodiments, the particulate material is comprised of a plurality of particles, at least 5% of the particles having a size between about 15 μm and about 35 μm, at least 5% of the particles having a size between about 6 μm and about 15 μm, and at least 5% of the particles having a size between about 3 μm and about 7 μm.
[0049] In some particular examples, the particulate material is comprised of a plurality of particles having a particle size distribution of about 5 μm Dx10, about 15 μm Dx50, and about 30 μm Dx90.
[0050] Decomposition Glass compositions according to the present disclosure degrade under physiological conditions, losing at least 5% by weight within 24 hours upon exposure to a buffered saline solution. In some instances, the glass compositions can lose at least 20%, at least 40%, at least 60%, or at least 80% by weight within 24 hours upon exposure to a buffered saline solution.
[0051] Dentin desensitizing composition The glass compositions according to the present disclosure can be formulated into dentin desensitizing compositions that include an anhydrous, orally compatible carrier. The dentin desensitizing compositions according to the present disclosure do not contain water, as the glass compositions deteriorate when exposed to water.
[0052] In the context of the present disclosure, "anhydrous" should be understood to mean that the dentin desensitizing composition contains so little water that the glass composition remains capable of reducing dentin sensitivity over the expected life of the product, which refers to the longest expected time from when the dentin desensitizing composition is produced to when the dentin desensitizing composition is completely used up or discarded.
[0053] The orally compatible carrier used in the dentin desensitizing composition may be an orally compatible viscous carrier such as a mouthwash, a carrier formulated to be mixed with additional ingredients to form a mouthwash, or a toothpaste, dental gel, prophylactic paste, dental varnish, adhesive, or a carrier formulated to be mixed with additional ingredients to form a toothpaste. The orally compatible viscous carrier may have a viscosity of about 100 cP at 30°C to about 150,000 cP at 30°C.
[0054] The dentin desensitizing composition may comprise a glass composition according to the present disclosure, as described above, wherein the glass composition comprises fluoride present in an amount sufficient for the desensitizing composition to comprise from about 100 ppm to about 5,000 ppm fluoride.
[0055] One example of a dentin desensitizing composition according to the present disclosure is a toothpaste that includes an abrasive, a detergent such as sodium lauryl sulfate, a fluoride source, an antimicrobial agent, a flavoring, a remineralizing agent, a sugar alcohol such as glycerol, sorbitol, or xylitol, another dentin desensitizing agent, a hydrophilic polymer such as polyethylene glycol, or any combination thereof. The glass composition may be about 0.5 to about 15% by weight of the toothpaste.
[0056] A specific example of a dentin desensitizing composition according to the present disclosure is a toothpaste comprising a glass composition according to the present disclosure, glycerin, silica, polyethylene glycol (such as PEG400), titanium dioxide, carbomer, and a sweetener (such as acesulfame potassium or saccharin sodium).
[0057] Another specific example of a dentin desensitizing composition according to the present disclosure is a toothpaste comprising a glass composition according to the present disclosure and α-carbomer, DL-limonene, glycerin, mint flavor, polyethylene glycol (e.g., PEG-8), silica, titanium dioxide, sodium lauryl sulfate, and a sweetener (e.g., acesulfame potassium or saccharin sodium).
[0058] Another example of a dentin desensitizing composition according to the present disclosure is a carrier comprising a glass composition according to the present disclosure, where the carrier is formulated to be mixed with additional ingredients to form a toothpaste.
[0059] Yet another example of a dentin desensitizing composition according to the present disclosure is a carrier formulated to be mixed with additional ingredients to form a mouthwash. Specific examples of carriers include a glass composition according to the present disclosure and: absolute alcohol, cetylpyridinium chloride, chlorhexidine, essential oils, benzoic acid, poloxamer, sodium benzoate, flavoring agents, coloring agents, or any combination thereof. Additional ingredients that are mixed / mixed with the carrier to form a mouthwash include water, peroxide, cetylpyridinium chloride, chlorhexidine, essential oils, alcohol, benzoic acid, poloxamer, sodium benzoate, flavoring agents, coloring agents, or any combination thereof. The carrier and additional ingredients may be held in separate compartments and mixed together before the mixture is used as a mouthwash. The separate compartments may be in the form of a multi-chambered bottle, such as a branched bottle.
[0060] Another example of a dentin desensitizing composition according to the present disclosure is a prophylactic paste (also called a "prophy paste") comprising a glass composition according to the present disclosure. Specific examples of contemplated saprophytic pastes include a glass composition according to the present disclosure and: pumice, glycerin, diatomaceous earth (preferably finely divided), sodium silicate, methyl salicylate, monosodium phosphate, sodium carboxymethylcellulose, a sweetener (e.g., acesulfame potassium or sodium saccharin), a flavoring, a coloring, or any combination thereof.
[0061] method Glass compositions according to the present disclosure can be synthesized by mixing appropriate molar amounts of starting reagents; loading the precursor blend into a platinum crucible (Johnson Matthey, Noble Metals, PA); placing the loaded crucible in a furnace (Carbolite, RHF1600) at room temperature; heating the furnace (e.g., at a rate of 25°C / min) to an initial dwell temperature of 600°C; holding the temperature for 60 minutes; increasing the temperature to a dwell temperature of 1,100°C; holding the temperature for 60 minutes; and quenching the glass melt between two stainless steel plates.
[0062] It should be understood that the specific ramp rates, times, and temperatures described above can be modified as long as the glass melts. A ramp rate of 10-20 degrees per minute and a dwell temperature hold can remove at least some of the bubbles from the glass.
[0063] The resulting quenched glasses were separately crushed / ground in a planetary micromill (Pulverisette 7, Fritsch, Germany) and sieved through an ASTM E-11 compliant sieve (Cole Palmer, USA) to obtain particles <25 μm. The glasses could be stored under vacuum in glass scintillation vials.
[0064] The resulting glass composition includes oxides, while the starting reagents can include oxides, carbonates, or both. For example, the starting reagents can include boron oxide, rubidium carbonate, lithium carbonate, and calcium fluoride. Rubidium carbonate and lithium carbonate decompose in the furnace, releasing CO and producing the corresponding oxides.
[0065] Particle size was measured using a Malvern Mastersizer (MS) 3000 laser diffraction particle size analyzer. The glass powders were separately suspended in deionized water to a 5-8% opacity. The suspensions were measured using both a blue laser (λ = 470 nm) and a red laser (λ = 632.8 nm), with five measurements (n = 5).
[0066] Fluoride release is measured by placing 0.1 g of the glass composition in 10 ml of TRIS-buffered saline (BioUltra, Sigma Aldrich, Canada) in a 15 ml Falcon tube. The solution is stirred at 120 rpm and maintained at 37°C for the desired release period, e.g., 1, 3, 6, 12, or 24 hours. Upon completion, the liquid portion is decanted and filtered using a 0.22 μm filter (Sarstedt Syringe Filter, Canada) into a new, clean 15 ml Falcon tube, which is capped and stored at 4°C until the amount of fluoride is quantified. The concentration of released fluoride is quantified using an Accumet® AB250 pH / ion-selective electrode meter (Accumet®) equipped with a fluoride electrode combination. Standard solutions are prepared using a fluoride analytical standard specific to the ion-selective electrode (NaF, 0.1 MF, Sigma Aldrich, Canada), and calibration curing is collected prior to analysis. Liquid extracts derived from the extraction of each composition were prepared for ion analysis according to the electrode manufacturer's instructions. Ion concentrations are reported as the mean of n=3±SD.
[0067] In the context of this disclosure, the mass loss of a glass composition is relative to a solid glass cylinder 6 mm long and 4 mm in diameter. The glass cylinder is prepared by producing molten glass as described above, pouring the molten glass into a stainless steel mold (6 mm long and 4 mm in diameter), and quenching it between two stainless steel plates. Excess glass on the cylinder is carefully etched away with a speedy sharpening tool, and the remaining excess glass is removed using a grinding / polishing wheel with 240-grit sandpaper, applying pressure to the mold / glass on the wheel. Glass cylinders with uneven edges, bubbles, and chips are removed.
[0068] The mass loss of a given glass composition is measured using three cylinders. The length and diameter of each cylinder are measured and recorded three times (at different measurement positions) and reported as the mean ± SD. The mass of each cylinder is measured separately (Sartorius Cubis, Model MSU-224S 100DI, Cole Palmer). The three cylinders are placed in separate 50 mL Falcon tubes, each containing 20 mL of TRIS-buffered saline (BioUltra, Sigma-Aldrich, Canada). The tubes are then placed in a shaking incubator (Thermos Scientific, MaxQ 4000) at 37 °C and agitated at 120 rpm for 24 hours. After 24 hours, the cylinders are filtered from the solution, washed with cold distilled water, and dried overnight in a 37 °C oven. After drying, the length, diameter, and mass are measured.
[0069] The abrasion of a composition is determined by measuring the gloss and surface roughness of the resin composite or enamel surface after brushing with the composition. ESPE Filtek Supreme Ultra Universal Restorative, shade A2B (3M, St. Paul, Minnesota, USA) is cured in a 12.7 mm diameter, 2 mm thick metal split mold. Mylar sheets are placed on the top and bottom of the mold, and glass plates are used to press the flat part of the composite and squeeze out excess material. A broadband, multi-wave LED light curing unit (Valo Grand, Ultradent Products, South Jordan, Utah, USA) is placed directly on the specimen and cured for 20 seconds at standard settings. Excess material is removed by hand before the specimen is attached to the brush.
[0070] The specimens were stored at 37°C in the dark for a minimum of 24 hours before use. The surfaces of the enamel specimens were prepared by polishing with various levels of grit to create a flat, smooth surface. Low-grit sandpaper (P800C, Klingspor, Haiger, Germany) was used to create an initial flat surface, followed by polishing with larger amounts of grit. The final polishing step was performed on a cloth pad with 3 μm and then 0.3 μm alumina oxide powder slurries (Buehler Ltd., Lake Bluff, IL, USA). Each polishing step was performed for approximately 1 minute under manual pressure.
[0071] A custom-made brushing machine (Ultradent, South Jordan, USA) simulates tooth brushing for 10 specimens simultaneously. The toothbrush (GMM Brand 459PC, Sunstar, Guelph, Ontario, Canada) is equipped with a toothbrush that applies a constant load of 176 g during brushing. The toothbrush is replaced after 10,000 brush cycles. The specimens are covered with a minimum of 3 mm of a 5:8 weight ratio toothpaste slurry with distilled water during brushing. The specimens are rotated to a different position every 2,500 brush cycles (ensuring that the same toothpaste is brushed each time the specimen is moved). 20,000 brush cycles represent approximately two years of brushing. The toothpaste iterations and positions within the machine are randomized (for each substrate material) by a random number generator, while a minimum of two iterations of the same toothpaste are manually ensured during each run to ensure toothbrush rotation.
[0072] The gloss of the composite and enamel surfaces was measured using a glossmeter (Novo-Curve G, Rhopoint Instruments, Hastings, UK). Gloss was measured at three random points and an average value was created for the surface. Glossmeter calibration was verified daily using traceable calibration tiles of high and low reflectance. Gloss was measured at 0, 5,000, 10,000, 15,000, and 20,000 brush cycles, and a new toothpaste slurry was used after each gloss measurement.
[0073] The average surface roughness was also measured before brushing and after 20,000 brushing cycles. An atomic force microscope (nGauge, ICSPI Corporation, Rev. 1.0, Waterroo, Ontario, Canada) was used to measure the average roughness at three different locations to form the average surface. A 25 × 25 μm area was scanned at a speed of 1200 μs / pixel. Analysis was performed using Gwyddion (http: / / gwyddion.net) software. [Example]
[0074] All glass compositions listed in Table 1 were synthesized by weighing out quantitative amounts of analytical-grade reagents (boron oxide, rubidium carbonate, lithium carbonate, and calcium fluoride) (Sigma-Aldrich, Canada). To ensure homogeneity, each formulation was mixed for 60 minutes. Each precursor blend was placed and packed into a 50 mL platinum crucible (Johnson Matthery, Noble Metals, Pennsylvania). The packed crucible was then placed into a furnace (Carbolite, RHF 1600) at room temperature. The furnace was heated (25°C / min) to an initial residence temperature of 600°C and held for 60 minutes. The temperature was then increased (20°C / min) to a final residence temperature of 1,100°C and held for 60 minutes. Upon removal, each glass melt was quenched between two stainless steel plates. The resulting quenched glasses were separately crushed / ground in a planetary micromill (Pulverisette 7, Fritsch, Germany) and sieved through an ASTM E-11 compliant sieve (Cole Palmer, USA) to obtain particles <25 μm.
[0075] [Table 1]
[0076] The particle size distributions for the exemplary glasses in Table 1 are shown in Table 2.
[0077] [Table 2]
[0078] Here, it should be understood that "Dx(#)" refers to the #% of particles that are smaller in size than the noted value. For example, BCF100 has a Dx(10) of 5.16 microns, which means that 10% of the particles are less than 5.16 microns in size.
[0079] The exemplary glass particles in Table 1 were evaluated for fluoride release in buffered saline solution over 12 and 24 hours using the method described above. The ppm values of fluoride released are shown in Table 3.
[0080] [Table 3]
[0081] BCF201 was incorporated into two toothpastes to test the abrasive effect of the glass particles and compare it to the abrasive effect of Sensodyne™ Whitening Restorative and Protect™ toothpaste ("Sensodyne") and Colgate™ Optic White™ toothpaste ("Colgate Optic"). Exemplary glasses were formulated in either (a) Colgate™ Enamel Health Sensitivity Relief™ (Colgate-Palmolive, Toronto, ON, Canada) ("Colgate EN") or (b) Gel 7HT (Germiphene, Brantford, ON, Canada) ("Gel"), a neutral pH fluoride gel toothpaste that does not contain any abrasive materials.
[0082] The results of the abrasion tests are shown in the following tables and Figures 1-10. Table 4 shows the gloss of the resin composite surface after different numbers of brushing cycles using different toothpastes. Table 5 shows the gloss of the resin composite after different numbers of brushing cycles using different toothpastes. Table 6 shows the roughness of the resin composite surface after 20,000 brushing cycles using different toothpastes. Table 7 shows the roughness of the enamel surface after 20,000 brushing cycles using different toothpastes.
[0083] [Table 4]
[0084] [Table 5]
[0085] [Table 6]
[0086] [Table 7]
[0087] Further exemplary glass compositions according to the present disclosure are shown in Table 8, along with glass compositions that are not examples of the present disclosure, showing the mol percentages of the different components.
[0088] [Table 8-1]
[0089] [Table 8-2]
[0090] The exemplary glass compositions and additional compositions shown in Table 8 were selected based on mixture design (Design Expert 8.0.4, Stat-Ease Inc.) to evaluate the effect of various ranges of ingredients on the glass composition.
[0091] Glass compositions were synthesized as described above. Briefly, sufficient analytical-grade reagents (Sigma Aldrich, Canada) were weighed out to form each of the above compositions. Individual formulations were mixed for 60 minutes to ensure uniformity. Each precursor blend was placed and packed into a 50 mL platinum crucible (Johnson Matthery, Noble Metals, Pennsylvania). The packed crucible was then placed into a furnace (Carbolite, RHF 1600) at room temperature. The furnace was heated (25°C / min) to an initial residence temperature of 600°C and held for 60 minutes. The temperature was then increased (20°C / min) to a final residence temperature of 1,100°C and held for 60 minutes. Upon removal, each glass melt was quenched between two stainless steel plates.
[0092] The following compositions are specific examples of compositions that formed glasses under the quench conditions described above, and such conditions represent one option for standard quench conditions suitable for manufacturing scale processes.
[0093] [Table 9]
[0094] The resulting quenched glasses for the exemplary compositions listed in Table 9 had the following bulk properties:
[0095] [Table 10]
[0096] The resulting quenched glasses for the exemplary compositions listed in Table 9 were separately crushed / ground in a planetary micromill (Pulverisette 7, Fritsch, Germany) and sieved through an ASTM E-11 compliant sieve (Cole Palmer, USA) to obtain particles of <25 μm.
[0097] The particle size distributions of the exemplary glasses listed in Table 9 are shown in Table 11. BCF315, BCF326 decomposed too quickly in deionized water to obtain accurate particle size measurements.
[0098] [Table 11]
[0099] Exemplary glass particles listed in Table 9 were evaluated for mass loss and fluoride release in buffered saline solution at 1, 4, and 24 hours. Samples were prepared in 15 mL Erlenmeyer test tubes (n=3), weighed, and recorded. 0.1 grams of each glass powder (<25 microns) was weighed separately and placed in 10 mL TRIS-buffered saline (BioUltra, Sigma-Aldrich, Canada) in a pre-weighed 15 mL Falcon tube. The tubes were sealed with parafilm and then placed in a shaking incubator at 37°C and agitated at 120 rpm for four separate time periods: 5 minutes, 30 minutes, 1 hour, 3 hours, 24 hours, and 48 hours. After the designated times, the tubes were removed from the incubator, and the solutions were immediately centrifuged (Eppendorf, Centrifuge 5702) at 3.0 RCF / 4.4 RPM for 15 minutes. The supernatant was decanted into a fresh 15 mL Falcon tube. Additionally, samples of the 48-hour-incubated powder were resuspended in 10 mL of fresh TRIS-buffered saline by vortex mixing and incubated for an additional 8 hours (for a total incubation of 56 hours). The re-incubated powder was treated in the same manner as the other samples. The pellets were dried in their respective Falcon tubes in a 50°C oven.
[0100] Fluoride ion release was measured using an Accummet AB250 pH / ion-selective meter equipped with a fluoride electrode (Fisher Scientific). To calibrate the probe, six standard solutions were prepared using a fluoride analytical standard for ion-selective electrodes (NaF, 0.1F, Sigma-Aldrich, Canada). Standards with fluoride concentrations of 1000 ppm, 100 ppm, 10 ppm, 1 ppm, 0.1 ppm, and 0.01 ppm were synthesized using TRIS-buffered saline (BioUltra, Sigma-Aldrich, Canada) as the solvent. TISAB concentrate (4.5 mL) was added to each standard prior to calibration (according to the manufacturer's instructions). Once the probe was calibrated, the slope of the standard was checked to ensure it was within the range specified in the instructions. TISAB concentrate (1.0 mL) was added to the decanted supernatant, and its fluoride concentration was then measured using the calibrated probe. Ion concentrations are reported as mean ± SD.
[0101] The mass loss and ppm values of released fluoride are shown in Table 12. BCF314 was completely degraded in the buffered saline solution before the 1 hour time point and no further fluoride source was included.
[0102] [Table 12]
[0103] The compositions listed in Table 8 reflect the design space. The results of the tested compositions provided the following equation, which can allow for relative comparison of different compositions and / or may be useful for identifying trends associated with different components of a composition. While experimental and modeling errors prevent absolute prediction of glass properties, the equation can be used to guide and refine glass composition design. Used together, these models will help suggest which factors can be traded off in adjusting multi-component compositions within the tested composition space. In the following equation, the values of the listed components are given as percentages (rather than decimals). For example, 50 mol% B2O3 is "50" (rather than "0.5").
[0104] Glasses are generally expected to form under the quench conditions tested when the following formula is less than or equal to 1.60: (2.01×e y +0.99) / (1+e y ) Here, y=-0.086622×[B2O3]+0.14169×[Li2O]-0.565849×[ZnO]+0.192175×[Na2O]-0.461537×[CaF2]+0.036 636×[KF]+0.00365×[NaF]+0.191201×[SnF2]+0.192612×[RbO2]+0.199999×[SrO]+0.01393×[B2O3]×[ZnO] +0.012239×[B2O3]×[CaF2]-0.012412×[Li2O]×[CaF2]-0.013904×[Li2O]×[RbO2]-0.010857×[ZnO]×[CaF2 ]-0.013296×[ZnO]×[RbO2]-0.010699×[ZnO]×[SrO]+0.010128×[CaF2]×[KF]-0.012103×[CaF2]×[SrO].
[0105] The density of glass can generally be predicted using the following formula: ρ=0.018783×[B2O3]+0.026444×[Li2O]+0.046191×[ZnO]+0.033814×[Na2O]+0.0 39196×[CaF2]+0.026997×[KF]+0.029458×[NaF]+0.049441×[SnF2]+0.047057×[R b O2] + 0.054984 × [SrO] Approximately 1.3g / cm 3 to approximately 2.2 g / cm 3 Glass densities up to 1.3 and 2.2 g / cm can be particularly beneficial in non-aqueous oral care formulations. Glycerol and silica are the primary liquid and solid components of non-aqueous toothpastes, respectively. 3 It has a density of
[0106] Glass transition temperature (T g ) can generally be predicted using the following formula: T g =3.49398×[B2O3]+3.66342×[Li2O]+6.38755×[ZnO]+6.23689×[Na2O]+6.43079×[CaF2 ]+3.31695×[KF]+5.04074×[NaF]+9.88761×[SnF2]+3.29777×[RbO2]+10.51264×[SrO] It should be understood that phase-separated glasses can exhibit multiple glass transitions, the magnitude of which does not necessarily represent the volume distribution of the phases. While the above equation predicts the onset of the glass transition, if phase separation occurs, the predicted onset may not be the predominant glass transition of the composition. Thus, the predicted glass transition temperature may differ significantly from the measured predominant glass transition temperature.
[0107] The formula for the rate of mass loss after 1 hour under the test conditions is: (100×e y ) / (1+e y ) Here, y = 0.088098 × [B2O3] + 0.062481 × [Li2O] - 0.262486 × [ZnO] + 0.05542 × [Na2O] - 0.165517 × [CaF2] + 0.089171 × [KF] + 0.075875 × [NaF] + 0.10439 × [SnF2] + 0.109897 × [RbO2] - 0.089987 × [SrO] The above equation is highly predictive for identifying glass compositions that demonstrate complete dissolution within one hour under the conditions tested and may be useful for identifying other glasses that degrade within this time frame. Furthermore, while this equation does not provide accurate mass loss estimates for slower decomposing compositions, it can be useful for predicting the relative change in decomposition that is expected to occur with a change in composition. Such relative changes can be used as a guide for glass composition design.
[0108] The formula for fluoride release (ppm) after 1 hour under test conditions is: (2750×e y ) / (1+e y ) Here, y = -0.05785 × [B2O3] - 0.15837 × [Li2O] - 0.170872 × [ZnO] - 0.184773 × [Na2O] + 0.05638 × [CaF2] + 0.101381 × [KF] + 0.053886 × [NaF] - 0.307462 × [SnF2] - 0.183034 × [RbO2] - 0.184126 × [SrO] Although the above equation does not provide an accurate estimate of the amount of fluoride released for all glass compositions, the model is still useful for predicting the relative changes in fluoride release that can be expected to occur with changes in composition.
[0109] PBF1 was synthesized by mixing 11.60 g of B2O3, 5.30 g of Na2CO3, 2.69 g of MgO, 3.33 g of CaCO3, and 0.7 g of CaF2 (Sigma Aldrich, Canada). The starting materials were mixed for 60 minutes to ensure homogeneity. The blend was placed and packed into a 50 mL platinum crucible (Johnson Matthey, Noble Metals, PA). The packed crucible was then placed in a furnace (Carbolite, RHF 1600) at room temperature. The furnace was heated (25 °C / min) to an initial dwell temperature of 600 °C and held for 60 minutes. The temperature was then increased (20 °C / min) to a final dwell temperature of 1,200 °C and held for 60 minutes. Upon removal, the glass melt was quenched between two stainless steel plates. The resulting quenched glasses were separately crushed / ground in a planetary micromill (Pulverisette 7, Fritsch, Germany) and sieved through an ASTM E-11 compliant sieve (Cole Palmer, USA) to obtain particles <25 μm.
[0110] Comparative glass compositions (designated Comparative Examples (CE) 1 and 2) were similarly synthesized using 5.80 g B2O3, 23.66 g P2O5, 5.30 g Na2CO3, 1.34 g MgO, 6.67 g CaCo3, and 0.70 g CaF2, with CE1 containing about 25 mol% B2O3, about 25 mol% P2O5, about 15 mol% Na2O, about 10 mol% MgO, about 20 mol% CaO, and about 10 mol% CaF2. and 5.80 g B2O3, 23.66 g P2O5, 7.07 g Na2CO3, 1.34 g MgO, 5.00 g CaCO3, and 0.70 g CaF2, and CE2 had about 25 mol% B2O3, about 25 mol% P2O5, about 20 mol% Na2O, about 10 mol% MgO, about 15 mol% CaO, and about 5 mol% CaF2.
[0111] The density of glass powder is 1cm 3 Measurements were taken using an AccuPyc 1340 helium pycnometer (Micromerix, USA) equipped with an insert. Prior to use, the volume was adjusted to 0.718512 cm3 The pycnometer was calibrated using a standard of 1000 kJ / cm². For glass analysis, the insert was filled with approximately 0.5-0.7 grams of glass powder. Three samples of each glass were measured, and each measurement is the average of 10 readings.
[0112] The density of PBF1 is 2.5951±0.0072g / cm 3 The density of CE1 was measured as 2.7079±0.0021g / cm 3 The CE2 density was measured as 2.6749±0.0013 g / cm 3 was measured.
[0113] Fluoride release and mass loss were measured for PBF1, CE1, and CE2. Samples were prepared in 15 mL Erlenmeyer tubes (n=3), weighed, and recorded. 0.1 grams of each glass powder (<25 microns) was weighed separately and placed in 10 mL TRIS-buffered saline (BioUltra, Sigma-Aldrich, Canada) in a pre-weighed 15 mL Falcon tube. The tubes were sealed with parafilm and placed in a shaking incubator at 37°C and agitated at 120 rpm for four separate time periods: 5 minutes, 30 minutes, 1 hour, 3 hours, 24 hours, and 48 hours. After the designated times, the tubes were removed from the incubator, and the solutions were immediately centrifuged (Eppendorf, Centrifuge 5702) at 3.0 RCF / 4.4 RPM for 15 minutes. The supernatant was decanted into a fresh 15 mL Falcon tube. Additionally, samples of the 48-hour-incubated powder were resuspended in 10 mL of fresh TRIS-buffered saline by vortex mixing and incubated for an additional 8 hours (for a total incubation of 56 hours). The re-incubated powder was treated in the same manner as the other samples. The pellets were dried in their respective Falcon tubes in a 50°C oven.
[0114] Fluoride ion release was measured using an Accummet AB250 pH / ion-selective meter equipped with a fluoride electrode (Fisher Scientific). To calibrate the probe, six standard solutions were prepared using a fluoride analytical standard for ion-selective electrodes (NaF, 0.1F, Sigma-Aldrich, Canada). The sodium fluoride concentrations of the standards were synthesized as follows: 1000 ppm, 100 ppm, 10 ppm, 1 ppm, 0.01 ppm, and 0.001 ppm, respectively, using TRIS-buffered saline (BioUltra, Sigma-Aldrich, Canada) as the solvent. TISAB concentrate (4.5 mL) was added to each standard prior to calibration (according to the manufacturer's instructions). Once the probe was calibrated, the slope of the standard was checked to ensure it was within the range specified in the instructions. TISAB concentrate (1.0 mL) was added to the decanted supernatant, and the fluoride concentration was then measured using the calibrated probe. Ion concentrations are reported as mean ± SD.
[0115] The amount of fluoride ions released by PBF1 was measured as 89±2 ppm at 5 minutes, 94±3 ppm at 30 minutes, 105±5 ppm at 1 hour, and 94±7 ppm at 3 hours. No measurable fluoride ions were released by CE1 or CE2.
[0116] Mass loss was calculated by comparing the mass of the dried sample after exposure to TRIS-buffered saline with the initial mass of the sample. The mass loss of PBF1 was 42.0 ± 2.1% after 5 min, 47.3 ± 2.7% after 30 min, 51.5 ± 4.3% after 1 h, 41.7 ± 5.7% after 3 h, 70.1 ± 6.8% after 24 h, and 100% after 48 h.
[0117] The particle size of seven different samples of PBF1 was measured using a Malvern Mastersizer 3000 model laser diffraction particle size analyzer. Glass particles were separately suspended in distilled water to obtain 2-5% opacity. Prior to analysis, the glass powder was stored in a vacuum desiccator and removed for analysis, 3 x 5 times, lasting approximately 20 seconds each. The suspensions were measured using both blue (λ = 470 nm) and red (λ = 632.8 nm) lasers (n = 5).
[0118] [Table 13]
[0119] Apatite formation in simulated body fluid was confirmed in PBF1 but not in CE1 or CE2. The simulated body fluid was synthesized according to the method and instructions published by Kokubo and Takadama (Kokubo, T. and Takadama, H. Biomaterials (2006) 27:15, pp 2907-2915).
[0120] A 1 L batch of SBF was prepared in a 1000 mL Nalgene bottle (FEP bottle). The prepared SBF was stored at room temperature for 24 hours immediately after synthesis to ensure stability before experimental use. SBF was stored in a tightly capped Nalgene bottle at 6°C if not needed immediately (maximum of 30 days for experimental use).
[0121] According to the TCO4 method (published in Mason, ALB, Kim, TB, Valliant, EM et al. J Mater Sci: Mater Med (2015) 26:115), 0.75 g of glass powder of each glass composition (n=3) synthesized above was immersed in 50 mL of SBF in a polyethylene container. The container was then placed in an incubator orbital shaker at 37 °C and agitated at 120 rpm for three time periods: 30 min, 3 h, and 12 h. After the elapsed time, each sample was vacuum filtered through Whatman 42 or 5 grade filter paper (particle retention 2.5 μm) to recover the solid material from the solution. The solid was immediately washed with distilled water and acetone to stop further reaction.
[0122] The filtered samples were dried in a vacuum desiccator for further analysis. Imaging of each sample was performed using a Hitachi S-4700 FEG (Hitachi, Chula Vista, CA) scanning electron microscope operated at 3 kV and 15 mA at 1000x and 10,000x magnification. Samples were mounted on stubs using double-sided carbon tape and sputter coated with gold-palladium for 70 seconds (Leica EM ACE200, Wetzlar, Germany). Scanning electron microscope images of PBF1 at 30 min, 3 h, and 12 h are shown in Figures 11-14.
[0123] PBF1 also developed an application protocol to assess dentin tubule occlusion through statistical analysis of SEM images graded by two raters according to a categorical occlusion scale. Sections of human dentin (approximately 1-1.5 mm thick) were prepared from the crowns of caries-free, unreserved molars perpendicular to the long axis of the root using a diamond disc saw. Each section was etched with 10% citric acid for 2 minutes, followed by a 60-second rinse in water, sonication for 2 minutes, and a further 60-second rinse in water. Each section was placed in a 25 mm diameter mold and covered with a 3 mm deep layer of acrylic resin. Once the resin had hardened, the dentin surface was polished sequentially with 800- and 2500-grit paper to a mirror finish. After rinsing with deionized water, the surface was etched, sonicated, and rinsed again. The integrity, tubule density, and patency of the specimens were again examined under a light microscope and then by SEM.
[0124] One dentin sample was assigned to each treatment group. The dentin samples were treated with (i) an unformed mixture of exemplary glass particles, (ii) a test toothpaste containing an exemplary mixture of glass particles, or (iii) a control toothpaste without additional glass particles. The unformed mixture was applied for 10 seconds using a non-powdered nitrile-gloved finger. The test and control toothpastes were applied to the sample for 10 seconds using an electric toothbrush. The toothpaste was allowed to sit for 30 seconds and then rinsed until all visible paste was removed. This was repeated for a total of four applications of toothpaste.
[0125] Dentin samples were dried in an oven at 37°C for 1 hour, coated with gold, and visualized using a Phenom ProX scanning electron microscope. Five 3000x images were taken of different sections of each sample, where the tubules were perpendicular to the surface. Each 3000x photomicrograph was examined by two single-blind assessors for the extent of dentinal tubule obliteration based on a 5-point categorical scale. Grading was defined as follows: 1. Occlusion (100% occlusion) 2. Nearly blocked (75% blocked) 3. Equivalent (50% occlusion) 4. Nearly non-obstructed (25% obstruction) 5. Non-occlusion (0% occlusion)
[0126] The mean score for each image was calculated from the scores of the two raters. Standard deviations were calculated, but formal statistical comparisons were not performed because only one dentin specimen was used per treatment group.
[0127] Seven different treatment arms were tested, as outlined in Table 14.
[0128] [Table 14]
[0129] Each sample treatment group was tested on dentin specimens as described above, and five SEM photomicrographs of each specimen were taken at ×3000. Each photomicrograph was categorically rated by two raters. The mean scores for each photomicrograph and the five photomicrographs per specimen were combined to determine the group mean score and standard deviation (see Table 15).
[0130] [Table 15]
[0131] The baseline mean score of 4.90 for Treatment Group 1 indicates that virtually all dentinal tubules were unobstructed. The mean score of 1.50 for the shapeless PBF1 rubbed directly into the dentin specimen indicates nearly complete tubule obliteration.
[0132] Treatment groups 5, 6, and 7 (control groups lacking PBF1 or other glass compositions according to the present disclosure) had mean obstruction scores of 3.2 to 3.6. Treatment groups 3 and 4 (commercial toothpaste formulated with 5% or 15% PBF1 w / w) had lower mean obstruction scores, indicating a higher degree of tubular obstruction. The degree of obstruction with the commercial toothpaste Sensodyne™ Complete Protection increased from approximately 30% obstruction (score of 3.6) to approximately 50% obstruction (score of 2.5) with the addition of 15% w / w PBF1.
[0133] PBF1 was further evaluated for dentin tubule occlusion using a 5% w / w PBF1 sodium lauryl sulfate (SLS) paste. For this evaluation, PBF1 and control toothpastes were applied to three different dentin samples from each treatment group. Each sample was brushed once with the treated toothpaste for 2 minutes. Specifically, each dentin sample was brushed with 0.25 g of the treated toothpaste for 120 seconds, followed by a 30-second rinse with DI water. The 5% PBF1-SLS paste resulted in a mean occlusion score of 2.7 ± 0.84. The SLS paste without PBF1 resulted in a mean occlusion score of 3.80 ± 1.03. A control test using Sensodyne™ Repair & Protect resulted in a mean occlusion score of 3.90 ± 0.66.
[0134] PBF1-Na was prepared according to the protocol described above. Briefly, the glass was synthesized by weighting 11.05 g of B2O3, 3.36 g of Na2CO3, 2.56 g of MgO, 4.77 g of CaCO3, and 1.33 g of NaF (Sigma-Aldrich, Canada). The starting materials were mixed for 60 minutes to ensure homogeneity. The blend was placed and packed into a 50 mL platinum crucible (Johnson Matthey, Noble Metals, Pennsylvania). The packed crucible was then placed in a furnace (Carbolite, RHF 1400) at room temperature. The furnace was heated (25 °C / min) to an initial residence temperature of 600 °C and held for 60 minutes. The temperature was then increased (20 °C / min) to a final residence temperature of 1,200 °C and held for 60 minutes. Upon removal, the glass melt was quenched between two stainless steel plates. The resulting quenched glasses were separately crushed / ground in a planetary micromill (Pulverisette 6, Fritsch, Germany) and sieved through an ASTM E-11 compliant sieve (Cole Palmer, USA) to obtain particles <25 μm.
[0135] The particle sizes of ten different samples of PBF1-Na were measured as described above.
[0136] [Table 16]
[0137] The density, % crystallinity, and glass transition temperature of the 10 samples were also measured as described above.
[0138] [Table 17]
[0139] Mass loss and fluoride release after 24 hours for 10 different samples were also measured as above.
[0140] [Table 18]
[0141] In the foregoing description, for purposes of explanation, numerous details are set forth in order to provide a thorough understanding of the embodiments. However, it will be apparent to those skilled in the art that these specific details are not required. Thus, what has been described is merely illustrative of applications of the described embodiments, and many modifications and variations are possible in light of the above teachings.
[0142] It will be understood that the foregoing description provides examples, and that modifications and variations may be made to the particular examples by those skilled in the art. Accordingly, the claims should not be limited by the specific examples described herein, but should instead be construed in a manner consistent with the specification as a whole.
Claims
1. About 50 mol % to about 95 mol % B 2 O 3 ; About 5 mol % to about 50 mol % of CaO, MgO, and K 2 O and Na 2 O, and optionally ZnO and / or SrO; 0 mol% CuO; less than 0.1 mol% BaO; and Less than 0.1 mol% P 2 O 5 A glass composition comprising: The glass composition is at least a four-component system.
2. The glass composition of claim 1, wherein B 2 O 3 is present in an amount of about 50 mol % to about 80 mol %.
3. The glass composition of claim 1, wherein ZnO is present in an amount of about 5 mol% to about 30 mol%.
4. The glass composition of claim 1, wherein SrO is present in an amount of about 5 mol% to about 30 mol%.
5. The glass composition of claim 1, wherein ZnO is present in an amount of about 5 mol% to about 30 mol% and SrO is present in an amount of about 5 mol% to about 30 mol%.
6. The glass composition contains 0 mol % CuO, 0 mol % BaO, and 0 mol % P. 2 O 5 The glass composition according to claim 1 , comprising:
7. 7. The glass composition of claim 1, wherein the glass composition is a particulate material comprising particles having a size of about 1 to about 50 μm, with at least 75% of the particles being smaller than 50 μm in size.
8. 7. The glass composition of claim 1, wherein the glass composition is a particulate material comprising particles having a size of about 1 to about 50 μm, with at least 85% of the particles being smaller than 50 μm in size.
9. 7. The glass composition of claim 1, wherein the glass composition is a particulate material comprising particles having a size of about 1 to about 50 μm, with at least 95% of the particles being smaller than 50 μm in size.
10. the glass composition is a particulate material comprising particles having a size of about 1 to about 50 μm; At least 5% of the particles are smaller than 35 μm in size; At least 5% of the particles are smaller than 15 μm in size; and A glass composition according to any one of claims 1 to 6, wherein at least 5% of the particles have a size smaller than 7 µm.
11. the glass composition is a particulate material comprising particles having a size of about 1 to about 50 μm; at least 5% of the particles are between about 15 μm and about 35 μm in size; At least 5% of the particles are between about 6 μm and about 15 μm in size; and The glass composition according to any one of claims 1 to 6, wherein at least 5% of the particles have a size of from about 3 µm to about 7 µm.
12. the glass composition is a particulate material comprising particles having a size of about 1 to about 50 μm; Approximately 10% of the particles are smaller than 5 μm in size; Approximately 50% of the particles are smaller than 15 μm in size; and The glass composition according to any one of claims 1 to 6, wherein about 90% of the particles are smaller than 30 μm in size.
13. (i) a glass composition according to any one of claims 7 to 12; and (ii) an anhydrous, orally compatible carrier A dentin desensitizing composition comprising:
14. 14. The dentin desensitizing composition of claim 13, wherein the orally compatible carrier is a mouthwash.
15. 14. The dentin desensitizing composition of claim 13, wherein the orally compatible carrier is formulated for mixing with a mouthwash.
16. 14. The dentin desensitizing composition of claim 13, wherein the orally compatible carrier is an orally compatible viscous carrier.
17. 17. The dentin desensitizing composition of claim 16, wherein the orally compatible viscous carrier has a viscosity of about 100 cP at 30°C to about 150,000 cP at 30°C.
18. 17. The dentin desensitizing composition of claim 16, wherein the orally compatible viscous carrier is a toothpaste, a dental gel, a prophylactic paste, a dental varnish, or an adhesive.
19. About 5 mol% to about 10 mol% CaF 2 , SnF 2 fluoride provided as NaF, KF, or any combination thereof; about 90 mol % to about 95 mol % of B 2 O 3 , Na 2 A combination of O, MgO, and CaO, wherein the glass composition contains boron, magnesium, Na and any combination of K, and Ca and any combination of Sn in an element ratio of about 20: about 4: about 6: about 3, respectively. Glass containing.
20. Approximately 50 mol% B 2 O 3 , Approximately 15 mol% Na 2 O. about 20 mol% MgO, about 10 mol% CaO, and Approximately 5 mol% of NaF, KF, and CaF 2 , SnF 2 or any combination thereof 20. The glass of claim 19, comprising:
21. Approximately 5 mol% CaF 2 21. The glass of claim 20, comprising:
22. 20. The glass of claim 19 comprising about 10 mol% NaF.
Citation Information
Patent Citations
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CN103936281A
Glass composition and cement employing it
JP1980075936A
Material for spraying glass
JP1990208236A
Laminated layer ceramics capacitor
JP1998172856A
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JP2000095544A