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Fabrication of Biodegradable Polymeric Nanofibers with Covalently Attached NO Donors

机译:共价连接NO供体的可生物降解聚合物纳米纤维的制备

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摘要

Many common wound healing aids are created from biodegradable polymeric materials. Often, these materials are unable to induce complete healing in wounds because of their failure to prevent infection and promote cell growth. This study reports the development of therapeutic materials aimed at overcoming these limitations through the release of a naturally occurring antimicrobial agent from a porous, polymeric fiber scaffold. The antimicrobial character was achieved through the release of nitric oxide (NO) while the porous structure was fabricated through electrospinning polymers into nanofibers. Three variations of the polymer poly(lactic-co-glycolic-co-hydroxymethyl propionic acid) (PLGH) modified to include thiol and NO groups were investigated. Fibers of the modified polymers exhibited smooth, bead free morphologies with diameters averaging between 200 and 410 nm. These fibers were deposited in a random manner to create a highly porous fibrous scaffold. The fibers were found to release NO under physiological pH and temperature and have the capacity to release 0.026 to 0.280 mmol NO g~(-1). The materials maintained their fibrous morphological structure after this exposure to aqueous conditions. The sustained morphological stability of the fiber structure coupled to their extended NO release gives these materials great potential for use in wound healing materials.
机译:许多常见的伤口愈合助剂是由可生物降解的聚合物材料制成的。通常,这些材料由于无法防止感染和促进细胞生长而无法诱导伤口完全愈合。这项研究报告了治疗材料的开发,旨在通过从多孔聚合物纤维支架中释放天然存在的抗菌剂来克服这些局限性。抗菌特性是通过释放一氧化氮(NO)来实现的,而多孔结构是通过将聚合物电纺成纳米纤维而制成的。研究了改性的聚合物聚(乳酸-乙醇酸-羟甲基丙酸)(PLGH)的三个变体,使其包含硫醇和NO基团。改性聚合物的纤维表现出光滑,无珠粒的形态,平均直径在200至410 nm之间。这些纤维以无规方式沉积以形成高度多孔的纤维支架。发现该纤维在生理pH和温度下释放NO,并且具有释放0.026至0.280mmol NO g〜(-1)的能力。在暴露于水性条件后,该材料保持其纤维形态结构。纤维结构的持续形态学稳定性以及其延长的NO释放使这些材料在伤口愈合材料中具有巨大的潜力。

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