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仿生胶原支架负载过表达 bFGF 的人骨髓间充质干细胞通过 HIF-1 信号通路调控新生血管化加速糖尿病皮肤创面愈合。

Bioinspired Collagen Scaffold Loaded with bFGF-Overexpressing Human Mesenchymal Stromal Cells Accelerating Diabetic Skin Wound Healing via HIF-1 Signal Pathway Regulated Neovascularization.

机构信息

Clinical Stem Cell Center, The Affiliated Drum Tower Hospital of Nanjing University Medical School, 321 Zhongshan Road, Nanjing 210008, China.

School of Life Science, Nanjing University, Nanjing 210008, Jiangsu Province, China.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 4;16(35):45989-46004. doi: 10.1021/acsami.4c08174. Epub 2024 Aug 21.

Abstract

The healing of severe chronic skin wounds in chronic diabetic patients is still a huge clinical challenge due to complex regeneration processes and control signals. Therefore, a single approach is difficult in obtaining satisfactory therapeutic efficacy for severe diabetic skin wounds. In this study, we adopted a composite strategy for diabetic skin wound healing. First, we fabricated a collagen-based biomimetic skin scaffold. The human basic fibroblast growth factor (bFGF) gene was electrically transduced into human umbilical cord mesenchymal stromal cells (UC-MSCs), and the stable bFGF-overexpressing UC-MSCs (bFGF-MSCs) clones were screened out. Then, an inspired collagen scaffold loaded with bFGF-MSCs was applied to treat full-thickness skin incision wounds in a streptozotocin-induced diabetic rat model. The mechanism of skin damage repair in diabetes mellitus was investigated using RNA-Seq and Western blot assays. The bioinspired collagen scaffold demonstrated good biocompatibility for skin-regeneration-associated cells such as human fibroblast (HFs) and endothelial cells (ECs). The bioinspired collagen scaffold loaded with bFGF-MSCs accelerated the diabetic full-thickness incision wound healing including cell proliferation enhancement, collagen deposition, and re-epithelialization, compared with other treatments. We also showed that the inspired skin scaffold could enhance the tube formation of ECs and the early angiogenesis process of the wound tissue . Further findings revealed enhanced angiogenic potential in ECs stimulated by bFGF-MSCs, evidenced by increased AKT phosphorylation and elevated HIF-1α and HIF-1β levels, indicating the activation of HIF-1 pathways in diabetic wound healing. Based on the superior biocompatibility and bioactivity, the novel bioinspired skin healing materials composed of the collagen scaffold and bFGF-MSCs will be promising for healing diabetic skin wounds and even other refractory tissue regenerations. The bioinspired collagen scaffold loaded with bFGF-MSCs could accelerate diabetic wound healing via neovascularization by activating HIF-1 pathways.

摘要

由于复杂的再生过程和控制信号,慢性糖尿病患者严重慢性皮肤伤口的愈合仍然是一个巨大的临床挑战。因此,单一方法很难获得对严重糖尿病皮肤伤口的满意治疗效果。在这项研究中,我们采用了一种复合策略来治疗糖尿病皮肤伤口愈合。首先,我们制备了一种基于胶原蛋白的仿生皮肤支架。将人碱性成纤维细胞生长因子(bFGF)基因电转导到人脐带间充质基质细胞(UC-MSCs)中,并筛选出稳定过表达 bFGF 的 UC-MSCs(bFGF-MSCs)克隆。然后,将灵感来源于胶原蛋白支架负载 bFGF-MSCs 应用于链脲佐菌素诱导的糖尿病大鼠模型的全层皮肤切口伤口治疗。使用 RNA-Seq 和 Western blot 检测来研究糖尿病皮肤损伤修复的机制。仿生胶原蛋白支架对与皮肤再生相关的细胞(如人成纤维细胞(HFs)和内皮细胞(ECs))具有良好的生物相容性。与其他治疗方法相比,负载 bFGF-MSCs 的仿生胶原蛋白支架加速了糖尿病全层切口伤口愈合,包括细胞增殖增强、胶原沉积和再上皮化。我们还表明,灵感来源于皮肤支架可以增强 ECs 的管状形成和伤口组织的早期血管生成过程。进一步的研究结果表明,bFGF-MSCs 刺激的 ECs 具有增强的血管生成潜力,证据是 AKT 磷酸化增加和 HIF-1α 和 HIF-1β 水平升高,表明 HIF-1 通路在糖尿病伤口愈合中的激活。基于优异的生物相容性和生物活性,由胶原蛋白支架和 bFGF-MSCs 组成的新型仿生皮肤愈合材料将有望用于治疗糖尿病皮肤伤口,甚至其他难治性组织再生。负载 bFGF-MSCs 的仿生胶原蛋白支架可通过激活 HIF-1 通路促进糖尿病伤口愈合的血管新生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/58be/11378764/1e365f42999c/am4c08174_0001.jpg

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