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自组装纳米纤维海洋胶原蛋白基质加速全层伤口愈合。

Self-Assembled Nanofibrous Marine Collagen Matrix Accelerates Healing of Full-Thickness Wounds.

机构信息

School of Chemical and Biomedical Engineering, Nanyang Technological University, Singapore 637457, Singapore.

Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou 325011, Zhejiang, People's Republic of China.

出版信息

ACS Appl Bio Mater. 2021 Sep 20;4(9):7044-7058. doi: 10.1021/acsabm.1c00685. Epub 2021 Sep 9.

Abstract

There is an urgent clinical need for wound dressings to treat skin injuries, particularly full-thickness wounds caused by acute and chronic wounds. Marine collagen has emerged as an attractive and safer alternative due to its biocompatibility, diversity, and sustainability. It has minimum risk of zoonotic diseases and less religious constraints as compared to mammalian collagen. In this study, we reported the development of a self-assembled nanofibrous barramundi () collagen matrix (Nano-BCM), which showed good biocompatibility for full-thickness wound-healing applications. The collagen was extracted and purified from barramundi scales and skin. Thereafter, the physicochemical properties of collagen were systematically evaluated. The process to extract barramundi skin collagen (BC) gave an excellent 45% yield and superior purity (∼100%). More importantly, BC demonstrated structural integrity, native triple helix structure, and good thermal stability. BC demonstrated its efficacy in promoting human primary dermal fibroblast (HDF) and immortalized human keratinocytes (HaCaT) proliferation and migration. Nano-BCM has been prepared via self-assembly of collagen molecules in physiological conditions, which resembled the native extracellular matrix (ECM). The clinical therapeutic efficacy of the Nano-BCM was further evaluated in a full-thickness splinted skin wound mice model. In comparison to a clinically used wound dressing (DuoDerm), the Nano-BCM demonstrated significantly accelerated wound closure and re-epithelization. Moreover, Nano-BCM nanofibrous architecture and its ability to facilitate early inflammatory response significantly promoted angiogenesis and differentiated myofibroblast, leading to enhanced wound healing. Consequently, Nano-BCM demonstrates great potential as an economical and effective nonmammalian substitute to achieve skin regeneration.

摘要

目前,临床上急需能够治疗皮肤损伤,尤其是急性和慢性伤口全层损伤的伤口敷料。由于其良好的生物相容性、多样性和可持续性,海洋胶原蛋白已成为一种有吸引力且更安全的替代品。与哺乳动物胶原蛋白相比,它具有较低的人畜共患病风险和较少的宗教限制。在本研究中,我们报道了一种自组装的巴沙鱼()胶原蛋白纳米纤维基质(Nano-BCM)的开发,该基质显示出良好的生物相容性,可用于全层伤口愈合应用。胶原蛋白是从巴沙鱼鳞片和皮肤中提取和纯化的。此后,系统评估了胶原蛋白的理化性质。从巴沙鱼皮中提取胶原蛋白(BC)的过程得率高达 45%,纯度极高(约 100%)。更重要的是,BC 表现出结构完整性、天然三螺旋结构和良好的热稳定性。BC 证明其在促进人原代真皮成纤维细胞(HDF)和永生化人角质形成细胞(HaCaT)增殖和迁移方面的功效。Nano-BCM 是通过胶原蛋白分子在生理条件下自组装制备的,类似于天然细胞外基质(ECM)。进一步在全层夹板皮肤伤口小鼠模型中评估了 Nano-BCM 的临床治疗效果。与临床使用的伤口敷料(DuoDerm)相比,Nano-BCM 显著加速了伤口闭合和再上皮化。此外,Nano-BCM 的纳米纤维结构及其促进早期炎症反应的能力显著促进了血管生成和分化的肌成纤维细胞,从而增强了伤口愈合。因此,Nano-BCM 作为一种经济有效的非哺乳动物替代品,具有很大的潜力来实现皮肤再生。

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