Sarhan Wessam A, Azzazy Hassan M E, El-Sherbiny Ibrahim M
Department of Chemistry, School of Sciences & Engineering, The American University in Cairo , New Cairo 11835, Egypt.
Center for Materials Science, University of Science and Technology, Zewail City of Science and Technology , 6th October City, Giza 12588, Egypt.
ACS Appl Mater Interfaces. 2016 Mar;8(10):6379-90. doi: 10.1021/acsami.6b00739. Epub 2016 Mar 7.
Two natural extracts were loaded within fabricated honey, poly(vinyl alcohol), chitosan nanofibers (HPCS) to develop biocompatible antimicrobial nanofibrous wound dressing. The dried aqueous extract of Cleome droserifolia (CE) and Allium sativum aqueous extract (AE) and their combination were loaded within the HPCS nanofibers in the HPCS-CE, HPCS-AE, and HPCS-AE/CE nanofiber mats, respectively. It was observed that the addition of AE resulted in the least fiber diameter (145 nm), whereas the addition of the AE and CE combination resulted in the least swelling ability and the highest weight loss. In vitro antibacterial testing against Staphylococcus aureus, Escherichia coli, Methicillin-resistant S. aureus (MRSA), and multidrug-resistant Pseudomonas aeruginosa was performed in comparison with the commercial dressing AquacelAg and revealed that the HPCS-AE and HPCS-AE/CE nanofiber mats allowed complete inhibition of S. aureus and the HPCS-AE/CE exhibited mild antibacterial activity against MRSA. A preliminary in vivo study revealed that the developed nanofiber mats enhanced the wound healing process as compared to the untreated control as proved by the enhanced wound closure rates in mice and by the histological examination of the wounds. Moreover, comparison with the commercial dressing Aquacel Ag, the HPCS, and HPCS-AE/CE demonstrated similar effects on the wound healing process, whereas the HPCS/AE allowed an enhanced wound closure rate. Cell culture studies proved the biocompatibility of the developed nanofiber mats in comparison with the commercial Aquacel Ag, which exhibited noticeable cytotoxicity. The developed natural nanofiber mats hold potential as promising biocompatible antibacterial wound dressing.
将两种天然提取物负载于制备好的蜂蜜、聚乙烯醇、壳聚糖纳米纤维(HPCS)中,以开发具有生物相容性的抗菌纳米纤维伤口敷料。白花菜(CE)的干燥水提取物和大蒜水提取物(AE)及其组合分别负载于HPCS-CE、HPCS-AE和HPCS-AE/CE纳米纤维垫的HPCS纳米纤维中。观察到添加AE导致纤维直径最小(145纳米),而添加AE和CE的组合导致溶胀能力最小和失重最高。与商用敷料AquacelAg相比,对金黄色葡萄球菌、大肠杆菌、耐甲氧西林金黄色葡萄球菌(MRSA)和多重耐药铜绿假单胞菌进行了体外抗菌测试,结果表明HPCS-AE和HPCS-AE/CE纳米纤维垫能完全抑制金黄色葡萄球菌,HPCS-AE/CE对MRSA表现出轻度抗菌活性。一项初步体内研究表明,与未处理的对照组相比,所开发的纳米纤维垫促进了伤口愈合过程,这在小鼠伤口闭合率提高以及伤口组织学检查中得到了证实。此外,与商用敷料Aquacel Ag、HPCS和HPCS-AE/CE相比,HPCS/AE对伤口愈合过程具有相似的效果,而HPCS/AE能提高伤口闭合率。细胞培养研究证明,与表现出明显细胞毒性的商用Aquacel Ag相比,所开发的纳米纤维垫具有生物相容性。所开发的天然纳米纤维垫有望成为有前景的生物相容性抗菌伤口敷料。