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纳米纤维水凝胶的各向异性结构通过免疫-血管生成-神经生成微环境的三元协同作用加速糖尿病伤口愈合。

Anisotropic structure of nanofiber hydrogel accelerates diabetic wound healing via triadic synergy of immune-angiogenic-neurogenic microenvironments.

作者信息

Kim Kunkoo, Yang Jia, Li Chengli, Yang Chun-Yi, Hu Peilun, Liu Yaosai, Huang Yin-Yuan, Sun Xiaohan, Chi Ming, Huang Chenyu, Sun Xiaodan, Zhao Lingyun, Wang Xiumei

机构信息

State Key Laboratory of New Ceramics and Fine Processing, Key Laboratory of Advanced Materials, School of Materials Science and Engineering, Tsinghua University, 100084, Beijing, China.

Beijing Tsinghua Changgung Hospital, School of Clinical Medicine, Tsinghua University, 102218, Beijing, China.

出版信息

Bioact Mater. 2025 Jan 11;47:64-82. doi: 10.1016/j.bioactmat.2025.01.004. eCollection 2025 May.

Abstract

Wound healing in chronic diabetic patients remains challenging due to the multiple types of cellular dysfunction and the impairment of multidimensional microenvironments. The physical signals of structural anisotropy offer significant potential for orchestrating multicellular regulation through physical contact and cellular mechanosensing pathways, irrespective of cell type. In this study, we developed a highly oriented anisotropic nanofiber hydrogel designed to provide directional guidance for cellular extension and cytoskeletal organization, thereby achieving pronounced multicellular modulation, including shape-induced polarization of macrophages, morphogenetic maturation of Schwann cells, oriented extracellular matrix (ECM) deposition by fibroblasts, and enhanced vascularization by endothelial cells. Additionally, we incorporated a VEGF-mimicking peptide to further reinforce angiogenesis, a pivotal phase that interlocks with immune regulation, neurogenesis, and tissue regeneration, ultimately contributing to optimized inter-microenvironmental crosstalk. studies validated that the anisotropic bioactive nanofiber hydrogel effectively accelerated diabetic wound healing by harnessing the triadic synergy of the immune-angiogenic-neurogenic microenvironments. Our findings highlight the promising potential of combining physical and bioactive signals for the modulation of various cell types and the refinement of the multidimensional microenvironment, offering a novel strategy for diabetic wound healing.

摘要

由于多种类型的细胞功能障碍和多维微环境的损害,慢性糖尿病患者的伤口愈合仍然具有挑战性。结构各向异性的物理信号具有通过物理接触和细胞机械传感途径协调多细胞调节的巨大潜力,而与细胞类型无关。在本研究中,我们开发了一种高度取向的各向异性纳米纤维水凝胶,旨在为细胞延伸和细胞骨架组织提供定向引导,从而实现显著的多细胞调节,包括巨噬细胞的形状诱导极化、雪旺细胞的形态发生成熟、成纤维细胞的定向细胞外基质(ECM)沉积以及内皮细胞的血管生成增强。此外,我们加入了一种模拟VEGF的肽以进一步加强血管生成,这是一个与免疫调节、神经发生和组织再生相互关联的关键阶段,最终有助于优化微环境间的串扰。研究证实,各向异性生物活性纳米纤维水凝胶通过利用免疫 - 血管生成 - 神经源性微环境的三联协同作用有效地加速了糖尿病伤口愈合。我们的研究结果突出了结合物理和生物活性信号来调节各种细胞类型和优化多维微环境的潜在前景,为糖尿病伤口愈合提供了一种新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7036/11772153/7cd663c0ce3e/ga1.jpg

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