高度互连的反蛋白石细胞外基质支架工程用于增强缺血组织的细胞移植和血管化

Wen Li, Ya Bai, Shan Gao, Pan Xu, Guowei Feng, Lichen Wang, Guanwei Fan, Hongjun Wang, Deling Kong, Jun Zhang, Meifeng Zhu
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摘要

细胞移植在治疗疾病和损伤方面的治疗效果往往受到细胞保留、存活和植入能力低的限制。细胞外基质(ECM)衍生的支架能够控制细胞反应,从而为当前与细胞治疗相关的挑战提供了潜在的解决方案。然而,制备细胞移植所需的具有高度互连多孔结构的ECM支架仍然是一个技术挑战。在这里,我们开发了反蛋白石多孔细胞外基质(ioECM)支架,通过皮下植入由聚合物微球组装的牺牲模板,然后去除微球模板和细胞内容物。这种高度互联的多孔ioECM支架支持大鼠骨髓间充质干细胞(BMSCs)的锚定、增殖、活力、抗凋亡和旁分泌活性,进一步促进内皮细胞迁移、成管和增殖。移植到裸鼠肢体缺血模型后,ioECM促进了满载骨髓间充质干细胞的植入,促进了相互连接的血管网络的形成,加速了血液灌注的恢复,抑制了肌肉的萎缩和纤维化。我们的研究展示了一种独特的策略,可以设计出高度多孔且相互连接良好的ECM支架,专门用于细胞移植,显著改善了细胞的存活率和血管化,这为细胞治疗和再生医学的成功提供了重要的一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineering of Highly Interconnected Inverse Opal Extracellular Matrix Scaffolds for Enhanced Cell Transplantation and Vascularization of Ischemic Tissue
The therapeutic effectiveness of cell transplantation in treatment of diseases and injuries is often limited by low cell retention, survivability, and engraftment. Extracellular matrix (ECM)-derived scaffolds are capable of controlling cell responses, thereby offering potential solutions to current challenges associated with cell therapy. However, it remains a technical challenge to produce ECM scaffolds with highly interconnected porous structure specifically required for cell transplantation. Here, we developed inverse opal porous extracellular matrix (ioECM) scaffolds through subcutaneous implantation of sacrificial templates assembled from polymer microspheres, followed by removal of the microsphere template and cellular content. Such highly interconnected porous ioECM scaffolds supported the anchorage, proliferation, viability, anti-apoptotic and paracrine activities of rat bone marrow mesenchymal stem cells (BMSCs), which further promoted endothelial cell migration, tube formation and proliferation. Upon transplantation into nude mouse critical limb ischemic model, ioECM promoted the engraftment of laden BMSCs, facilitated interconnected vascular network formation with accelerated recovery of blood perfusion and inhibited muscle atrophy and fibrosis. Our study demonstrates a unique strategy to engineer highly porous yet well-interconnected ECM scaffolds specifically for cell transplantation with marked improvement of survivability and vascularization, which offers an essential step toward the success of cell therapy and regenerative medicine.
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