A tilapia skin-derived gelatin hydrogel combined with the adipose-derived stromal vascular fraction for full-thickness wound healing†

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Yanan Luo, Manfei Fu, Ziyi Zhou, Xiaopei Zhang, Qingxia Guo, Yawen Wang, Weina Zhang, Yuanfei Wang, Zhenyu Chen and Tong Wu
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Abstract

Biomaterials are widely used in regenerative medicine to repair full-thickness skin defect wounds. The adipose-derived stromal vascular fraction (SVF) shows pro-regenerative properties, however, the ex vivo biological activity of SVF is suppressed due to the lack of an external scaffold. Tilapia skin, as a sustained and recyclable biomaterial with low immunogenicity, was applied in the preparation of a hydrogel. The mixture of tilapia skin-derived gelatin and methacrylic anhydride as a scaffold facilitated the paracrine function of SVF and exerted a synergistic effect with SVF to promote wound healing. In this study, 30% (w/v) SVF was added to methacrylate-functionalized tilapia skin gelatin and subsequently exposed to UV irradiation to form a three-dimensional nano-scaffolding composite hydrogel (FG-SVF-3). The effects of paracrine growth factors, neovascularization, and collagen production on wound healing were extensively discussed. FG-SVF-3 displayed a pronounced wound healing ability via in vivo wound models. The FG-SVF-3 hydrogel enhanced the biocompatibility and the expression of EGF, bFGF, and VEGF. FG-SVF-3, as a promising wound dressing, exhibited superior ability to accelerate wound healing, skin regeneration, and wound closure.

Abstract Image

Abstract Image

罗非鱼皮衍生明胶水凝胶与脂肪衍生基质血管部分相结合,用于全厚伤口愈合
生物材料被广泛应用于再生医学领域,以修复全厚皮肤缺损伤口。脂肪源性基质血管组分(SVF)具有促进再生的特性,但由于缺乏外部支架,SVF的体内外生物活性受到抑制。罗非鱼皮是一种免疫原性低、可持续回收利用的生物材料,被用于制备水凝胶。罗非鱼皮衍生明胶和甲基丙烯酸酐的混合物作为支架促进了 SVF 的旁分泌功能,并与 SVF 发挥协同作用,促进伤口愈合。在这项研究中,30%(w/v)的 SVF 被添加到甲基丙烯酸酯功能化的罗非鱼皮明胶中,随后在紫外线照射下形成三维纳米支架复合水凝胶(FG-SVF-3)。研究人员广泛讨论了旁分泌型生长因子、新生血管和胶原蛋白生成对伤口愈合的影响。通过体内伤口模型,FG-SVF-3 显示出明显的伤口愈合能力。FG-SVF-3 水凝胶增强了生物相容性以及 EGF、bFGF 和 VEGF 的表达。FG-SVF-3 作为一种有前途的伤口敷料,在加速伤口愈合、皮肤再生和伤口闭合方面表现出卓越的能力。
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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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