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首页> 外文期刊>Artificial cells, nanomedicine, and biotechnology. >Ciprofloxacin HCl and quercetin functionalized electrospun nanofiber membrane: fabrication and its evaluation in full thickness wound healing
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Ciprofloxacin HCl and quercetin functionalized electrospun nanofiber membrane: fabrication and its evaluation in full thickness wound healing

机译:盐酸环丙沙​​星和槲皮素功能化电纺纳米纤维膜的制备及其在全层伤口愈合中的评价

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Microbial infection and oxidative damage of the fibroblast often results in prolonged and incomplete wound healing. Therefore, there is an increasing demand for a scaffold being effective to prevent any possible infection and neutralize excessively released free radicals. Herein, we designed a PCL-based nanofiber loaded with ciprofloxacin hydrochloride (CHL) and quercetin. Developed nanofiber showed the formation of smooth and continuous nanofiber with 101.59?±?29.18?nm average diameter and entrapping the drugs in amorphous form without any possible physico-chemical interaction between drugs and excipient. High entrapment efficiency (CHL: 92.04% and Que: 94.32%) and prolonged in-vitro release (for 7?days) demonstrated the capability of scaffold to suppress any probable infection and oxidative damage, which was further confirmed by in-vitro antibacterial and antioxidant activity. The biocompatibility of scaffold for direct application to wound site was evaluated through hemocompatibility and cytocompatibility assay. The wound healing efficacies of nanofiber were assessed using full thickness wound model in rats, which displayed accelerated wound healing with complete re-epithelialization and improved collagen deposition within 16?days. In-vivo wound healing finding was further corroborated by SOD, catalase, and hydroxyproline assay. The current study validates the application of ciprofloxacin HCl and quercetin functionalized nanofiber as a potential wound dressing material.
机译:微生物感染和成纤维细胞的氧化损伤通常会导致伤口愈合时间延长和不完全。因此,对有效防止任何可能的感染并中和过度释放的自由基的支架的需求不断增加。在这里,我们设计了一种基于PCL的纳米纤维,其中载有盐酸环丙沙​​星(CHL)和槲皮素。发达的纳米纤维显示出光滑,连续的纳米纤维的形成,平均直径为101.59?±?29.18?nm,并且以无定形形式截留药物,药物与赋形剂之间没有任何可能的理化相互作用。较高的包封率(CHL:92.04%和Que:94.32%)和体外释放时间延长(持续7天)证明了支架具有抑制任何可能的感染和氧化损伤的能力,这一点进一步得到了体外抗菌和抑制作用的证实。抗氧化活性。通过血液相容性和细胞相容性分析评估了直接应用于伤口部位的支架的生物相容性。使用全厚度伤口模型在大鼠中评估了纳米纤维的伤口愈合效果,该模型显示出加速的伤口愈合,完全重新上皮化以及在16天之内胶原蛋白沉积得到改善。 SOD,过氧化氢酶和羟脯氨酸测定进一步证实了体内伤口愈合的发现。当前的研究证实了盐酸环丙沙​​星和槲皮素功能化纳米纤维作为潜在的伤口敷料的应用。

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