Minocycline-loaded calcium polyphosphate glass microspheres as a potential drug-delivery agent for the treatment of periodontitis

I. Gibson, A. Momeni, M. Filiaggi
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引用次数: 14

Abstract

Background: Periodontitis is an inflammatory disease with a bacterial etiology that affects the supporting structures of the teeth and is a major cause of tooth loss. The objective of this study was to investigate the drug loading and in vitro release of minocycline from novel calcium polyphosphate microspheres intended for use in treating periodontitis. Methods: Calcium polyphosphate coacervate, produced by a precipitation reaction of calcium chloride and sodium polyphosphate solutions, was loaded with minocycline and subsequently used to produce microspheres by an emulsion/solvent extraction technique. Microspheres classified by size were subjected to a 7-day elution in a Tris-buffer solution under dynamic conditions. The physicochemical characteristics of the drug-loaded microspheres were investigated using scanning electron microscopy, particle size analysis, Phosphorus-31 Nuclear Magnetic Resonance spectroscopy, and Inductively Coupled Plasma Optical Emission Spectroscopy. Drug loading and release were determined using ultraviolet -visible (UV/VIS) spectrophotometry. Results: Minocycline-loaded calcium polyphosphate microspheres of varying size were successfully produced, with small and large microspheres having volume mean diameters of 22 ± 1 µm and 193 ± 5 µm, respectively. Polyphosphate chain length and calcium to phosphorus mole ratio remained stable throughout microsphere production. Drug loading was 1.64 ± 0.16, 1.35 ± 0.55, and 0.84 ± 0.14 weight% for the coacervate and large and small microspheres, respectively, corresponding to mean encapsulation efficiencies of 81.7 ± 12.2 % and 50.9 ± 3.9 % for the large and small microspheres. Sustained drug release was observed in vitro over a clinically relevant 7-day period, with small and large microspheres exhibiting similar elution profiles. Antibiotic release generally followed microsphere degradation as measured by Ca and P ion release. Conclusions: This study demonstrated successful drug loading of calcium polyphosphate microspheres with minocycline. Furthermore, in vitro sustained release of minocycline over a 7-day period was observed, suggesting potential utility of this approach for treating periodontitis.
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二甲胺四环素负载的聚磷酸钙玻璃微球作为治疗牙周炎的潜在药物递送剂
背景:牙周炎是一种细菌性病因的炎症性疾病,影响牙齿的支撑结构,是导致牙齿脱落的主要原因。本研究的目的是研究用于治疗牙周炎的新型聚磷酸钙微球中米诺环素的载药量和体外释放。方法:将氯化钙和聚磷酸钠溶液沉淀反应制备的聚磷酸钙凝聚层与米诺环素负载,然后通过乳液/溶剂萃取技术制备微球。在动态条件下,在Tris缓冲溶液中对按大小分类的微球进行7天洗脱。利用扫描电子显微镜、粒度分析、磷-31核磁共振光谱和电感耦合等离子体发射光谱对载药微球的物理化学特性进行了研究。采用紫外-可见分光光度法测定药物的载药量和释放度。结果:成功制备了不同大小的米诺环素负载聚磷酸钙微球,其中小微球和大微球的体积平均直径分别为22±1µm和193±5µm。聚磷酸盐链长和钙磷摩尔比在整个微球生产过程中保持稳定。凝聚层和大小微球的载药量分别为1.64±0.16、1.35±0.55和0.84±0.14重量%,对应于大小微球的平均包封率分别为81.7±12.2%和50.9±3.9%。在体外观察到药物在临床相关的7天内持续释放,大小微球表现出相似的洗脱特征。通过Ca和P离子释放测定,抗生素释放通常遵循微球降解。结论:本研究证明了米诺环素复合聚磷酸钙微球的载药成功。此外,观察到米诺环素在7天内的体外持续释放,这表明这种方法在治疗牙周炎方面具有潜在的实用性。
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来源期刊
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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12 months
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