New Jersey Center for Biomaterials, Department of Chemistry and Chemical Biology, Rutgers, The State University of New Jersey, New Brunswick, NJ 08903, USA.
Biomaterials. 2010 Aug;31(24):6336-43. doi: 10.1016/j.biomaterials.2010.04.065. Epub 2010 May 26.
Many polymers and composites have been used to prepare active wound dressings. These materials have typically exhibited potentially toxic burst release of the drugs within the first few hours followed by a much slower, potentially ineffective drug release rate thereafter. Many of these materials also degraded to produce inflammatory and cytotoxic products. To overcome these limitations, composite active wound dressings were prepared here from two fully biodegradable and tissue compatible components, silicon oxide sol-gel (xerogel) microparticles that were embedded in tyrosine-poly(ethylene glycol)-derived poly(ether carbonate) copolymer matrices. Sustained, controlled release of drugs from these composites was demonstrated in vitro using bupivacaine and mepivacaine, two water-soluble local anesthetics commonly used in clinical applications. By systematically varying independent compositional parameters of the composites, including the hydrophilic:hydrophobic balance of the tyrosine-derived monomers and poly(ethylene glycol) in the copolymers and the porosity, weight ratio and drug content of the xerogels, drug release kinetics approaching zero-order were obtained. Composites with xerogel mass fractions up to 75% and drug payloads as high as 13% by weight in the final material were fabricated without compromising the physical integrity or the controlled release kinetics. The copolymer-xerogel composites thus provided a unique solution for the sustained delivery of therapeutic agents from tissue compatible wound dressings.
许多聚合物和复合材料已被用于制备活性伤口敷料。这些材料通常表现出潜在的毒性药物突释,在最初的几个小时内,随后是一个更慢的,潜在无效的药物释放率。许多这些材料也会降解产生炎症和细胞毒性产物。为了克服这些限制,这里从两种完全可生物降解和组织相容的成分制备了复合活性伤口敷料,硅氧化物溶胶-凝胶(干凝胶)微球嵌入酪氨酸-聚(乙二醇)衍生的聚(醚碳酸酯)共聚物基质中。通过使用布比卡因和甲哌卡因两种临床应用中常用的水溶性局部麻醉剂,在体外证明了这些复合材料的药物持续、控制释放。通过系统地改变复合材料的独立组成参数,包括酪氨酸衍生单体和共聚物中的聚乙二醇的亲水性:疏水性平衡以及干凝胶的孔隙率、重量比和药物含量,获得了接近零级的药物释放动力学。制备了干凝胶质量分数高达 75%且最终材料中药物负载高达 13%的复合材料,而不会损害物理完整性或控制释放动力学。因此,共聚物-干凝胶复合材料为组织相容伤口敷料中治疗剂的持续输送提供了一种独特的解决方案。