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通过三维聚己内酯 - 胶原基质中源自成纤维细胞的细胞外囊泡进行免疫调节

Immunomodulation Through Fibroblast-Derived Extracellular Vesicles (EVs) Within 3D Polycaprolactone-Collagen Matrix.

作者信息

Tasnim Afsara, Jacho Diego, Rabino Agustin, Benalcazar Jose, Garcia-Mata Rafael, Lapitsky Yakov, Yildirim-Ayan Eda

机构信息

Department of Bioengineering, University of Toledo, Toledo, OH 43606, USA.

Department of Biological Sciences, University of Toledo, Toledo, OH 43606, USA.

出版信息

Biomimetics (Basel). 2025 Jul 22;10(8):484. doi: 10.3390/biomimetics10080484.

Abstract

Extracellular vesicles (EVs) have emerged as promising acellular tools for modulating immune responses for tissue engineering applications. This study explores the potential of human fibroblast-derived EVs delivered within a three-dimensional (3D) injectable scaffold composed of polycaprolactone (PCL) nanofibers and collagen (PNCOL) to reprogram macrophage behavior and support scaffold integrity under inflammatory conditions. EVs were successfully isolated from human fibroblasts using ultracentrifugation and characterized for purity, size distribution and surface markers (CD63 and CD9). Macrophage-laden PNCOL scaffolds were prepared under three conditions: macrophage-only (MP), fibroblast co-encapsulated (F-MP), and EV-encapsulated (EV-MP) groups. Structural integrity was assessed via scanning electron microscopy and Masson's trichrome staining, while immunomodulatory effects were evaluated through metabolic assays, gene expression profiling, and immunohistochemistry for macrophage polarization markers (CD80, CD206). When co-encapsulated with pro-inflammatory (M1) macrophages in PNCOL scaffolds, fibroblast-derived EVs preserved scaffold structure and significantly enhanced macrophage metabolic activity compared to the control (MP) and other experimental group (F-MP). The gene expression and immunohistochemistry data demonstrated substantial upregulation of anti-inflammatory markers (, , and ) and surface protein CD206, indicating a phenotypic shift toward M2-like macrophages for EV-encapsulated scaffolds relative to the other groups. The findings of this study demonstrate that fibroblast-derived EVs integrated into injectable PCL-collagen scaffolds offer a viable, cell-free approach to modulate inflammation, preserve scaffold structure, and support regenerative healing. This strategy holds significant promise for advancing immuno-instructive platforms in regenerative medicine, particularly in settings where conventional cell therapies face limitations in survival, cost, or safety.

摘要

细胞外囊泡(EVs)已成为用于组织工程应用中调节免疫反应的有前景的无细胞工具。本研究探讨了在由聚己内酯(PCL)纳米纤维和胶原蛋白(PNCOL)组成的三维(3D)可注射支架中递送的人成纤维细胞衍生的EVs在炎症条件下重新编程巨噬细胞行为并维持支架完整性的潜力。使用超速离心法成功从人成纤维细胞中分离出EVs,并对其纯度、大小分布和表面标志物(CD63和CD9)进行了表征。在三种条件下制备了负载巨噬细胞的PNCOL支架:仅巨噬细胞(MP)组、共封装成纤维细胞(F-MP)组和封装EVs(EV-MP)组。通过扫描电子显微镜和Masson三色染色评估结构完整性,同时通过代谢测定、基因表达谱分析以及针对巨噬细胞极化标志物(CD80、CD206)的免疫组织化学评估免疫调节作用。当与促炎性(M1)巨噬细胞共封装在PNCOL支架中时,与对照组(MP)和其他实验组(F-MP)相比,成纤维细胞衍生的EVs保留了支架结构并显著增强了巨噬细胞的代谢活性。基因表达和免疫组织化学数据表明抗炎标志物( 、 和 )以及表面蛋白CD206显著上调,表明相对于其他组,封装EVs的支架中巨噬细胞向M2样表型转变。本研究结果表明,整合到可注射PCL-胶原蛋白支架中的成纤维细胞衍生的EVs提供了一种可行的无细胞方法来调节炎症、维持支架结构并支持再生愈合。该策略在推进再生医学中的免疫指导平台方面具有重大前景,特别是在传统细胞疗法在生存、成本或安全性方面面临限制的情况下。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f9e3/12383760/2b3a5ac2685f/biomimetics-10-00484-g001.jpg

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