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铜钴掺杂生物活性玻璃-鱼皮胶原蛋白电纺垫在全层皮肤缺损模型中引发糖尿病伤口愈合的关键事件。

Copper and cobalt doped bioactive glass-fish dermal collagen electrospun mat triggers key events of diabetic wound healing in full-thickness skin defect model.

作者信息

Jana Sonali, Datta Pradyot, Das Himanka, Jaiswal Satish, Ghosh Prabal Ranjan, Lahiri Debrupa, Kundu Biswanath, Nandi Samit Kumar

机构信息

Department of Veterinary Physiology, West Bengal University of Animal and Fishery Sciences, Kolkata, India.

Bioceramics and Coating Division, CSIR-Central Glass and Ceramic Research Institute, Kolkata, India.

出版信息

J Mech Behav Biomed Mater. 2022 Oct;134:105414. doi: 10.1016/j.jmbbm.2022.105414. Epub 2022 Aug 12.

Abstract

The wounds arising out of underlying hyperglycemic conditions such as diabetic foot ulcers demand a multifunctional tissue regeneration approach owing to several deficiencies in the healing mechanisms. Herein, four different types of electrospun microfibers by combining Rohu fish skin-derived collagen (Fcol) with a bioactive glass (BAG)/ion-doped bioactive glass, namely, Fcol/BAG, Fcol/CuBAG, Fcol/CoBAG, and Fcol/CuCoBAG was developed to accelerate wound healing through stimulation of key events such as angiogenesis and ECM re-construction under diabetic conditions. SEM analysis shows the porous and microfibrous architecture, while the EDX mapping provides evidence of the incorporation of dopants inside various inorganic-organic composite mats. The viscoelastic properties of the microfibrous mats as measured by a nano-DMA test show a higher damping factor non-uniform tan-delta value. The maximum ultimate tensile strength and toughness are recorded for fish collagen with copper doped bioactive glass microfibers while the least values are demonstrated by microfibers with cobalt dopant. In vitro results demonstrate excellent cell-cell and cell-material interactions when human dermal fibroblasts (HDFs) were cultured over the microfibers for 48 h. When these mats were applied over full-thickness diabetic wounds in the rabbit model, early wound healing is attained with Fcol/CuBAG, Fcol/CoBAG, and Fcol/CuCoBAG microfibers. Notably, these microfibers-treated wounds demonstrate a significantly (p < 0.01) higher density of blood vessels by CD-31 immunostaining than control, Duoderm, and Fcol/BAG treated wounds. Mature collagen deposition and excellent ECM remodeling are also evident in wounds treated with fish collagen/ion-doped bioactive glass microfibers suggesting their positive role in diabetic wound healing.

摘要

由于愈合机制存在多种缺陷,诸如糖尿病足溃疡等潜在高血糖状况引发的伤口需要一种多功能组织再生方法。在此,通过将印度鲃鱼皮源胶原蛋白(Fcol)与生物活性玻璃(BAG)/离子掺杂生物活性玻璃相结合,开发出了四种不同类型的电纺微纤维,即Fcol/BAG、Fcol/CuBAG、Fcol/CoBAG和Fcol/CuCoBAG,以通过刺激糖尿病条件下的关键事件(如血管生成和细胞外基质重建)来加速伤口愈合。扫描电子显微镜(SEM)分析显示出多孔和微纤维结构,而能量散射X射线光谱(EDX)映射提供了掺杂剂掺入各种无机-有机复合垫内部的证据。通过纳米动态热机械分析(nano-DMA)测试测得的微纤维垫的粘弹性特性显示出较高的阻尼因子和不均匀的损耗角正切(tan-delta)值。掺铜生物活性玻璃微纤维的鱼胶原蛋白记录到了最大极限拉伸强度和韧性,而掺钴微纤维的数值最小。体外结果表明,当人皮肤成纤维细胞(HDFs)在微纤维上培养48小时时,细胞-细胞和细胞-材料之间具有良好的相互作用。当将这些垫子应用于兔模型的全层糖尿病伤口时,Fcol/CuBAG、Fcol/CoBAG和Fcol/CuCoBAG微纤维实现了早期伤口愈合。值得注意的是,通过CD-31免疫染色,这些微纤维处理的伤口显示出血管密度明显(p < 0.01)高于对照、多聚膜敷料(Duoderm)和Fcol/BAG处理的伤口。在用鱼胶原蛋白/离子掺杂生物活性玻璃微纤维处理的伤口中,成熟胶原蛋白沉积和出色的细胞外基质重塑也很明显,表明它们在糖尿病伤口愈合中具有积极作用。

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