Synthetic injectable and porous hydrogels for the formation of skeletal muscle fibers: Novel perspectives for the acellular repair of substantial volumetric muscle loss.

IF 6.7 1区 工程技术 Q1 CELL & TISSUE ENGINEERING
Journal of Tissue Engineering Pub Date : 2024-11-04 eCollection Date: 2024-01-01 DOI:10.1177/20417314241283148
Louise Griveau, Marion Bouvet, Emilie Christin, Cloé Paret, Lauriane Lecoq, Sylvie Radix, Thomas Laumonier, Jerome Sohier, Vincent Gache
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Abstract

In severe skeletal muscle damage, muscle tissue regeneration process has to face the loss of resident muscle stem cells (MuSCs) and the lack of connective tissue necessary to guide the regeneration process. Biocompatible and standardized 3D structures that can be injected to the muscle injury site, conforming to the defect shape while actively guiding the repair process, holds great promise for skeletal muscle tissue regeneration. In this study, we explore the use of an injectable and porous lysine dendrimer/polyethylene glycol (DGL/PEG) hydrogel as an acellular support for skeletal muscle regeneration. We adjusted the DGL/PEG composition to achieve a stiffness conducive to the attachment and proliferation of murine immortalized myoblasts and human primary muscle stems cells, sustaining the formation and maturation of muscle fibers in vitro. We then evaluated the potential of one selected "myogenic-porous hydrogel" as a supportive structure for muscle repair in a large tibialis anterior muscle defect in rats. This injectable and porous formulation filled the defect, promoting rapid cellularization with the presence of endothelial cells, macrophages, and myoblasts, thereby supporting neo-myogenesis more specifically at the interface between the wound edges and the hydrogel. The selected porous DGL/PEG hydrogel acted as a guiding scaffold at the periphery of the defect, facilitating the formation and anchorage of aligned muscle fibers 21 days after injury. Overall, our results indicate DGL/PEG porous injectable hydrogel potential to create a pro-regenerative environment for muscle cells after large skeletal muscle injuries, paving the way for acellular treatment in regenerative muscle medicine.

用于形成骨骼肌纤维的可注射多孔合成水凝胶:无细胞修复大量肌肉损失的新视角。
在严重骨骼肌损伤中,肌肉组织再生过程必须面对常驻肌肉干细胞(MuSCs)的丧失和缺乏引导再生过程所需的结缔组织的问题。生物相容性和标准化的三维结构可注射到肌肉损伤部位,在符合缺损形状的同时积极引导修复过程,这为骨骼肌组织再生带来了巨大希望。在本研究中,我们探索了一种可注射的多孔赖氨酸树枝状聚合物/聚乙二醇(DGL/PEG)水凝胶作为骨骼肌再生的细胞支持物。我们调整了 DGL/PEG 的成分,使其硬度有利于小鼠永生肌母细胞和人类原生肌肉干细胞的附着和增殖,维持体外肌纤维的形成和成熟。然后,我们评估了一种选定的 "生肌多孔水凝胶 "作为大鼠胫骨前肌大面积缺损的肌肉修复支撑结构的潜力。这种可注射的多孔配方填充了缺损处,促进了内皮细胞、巨噬细胞和成肌细胞的快速细胞化,从而支持了伤口边缘和水凝胶界面处的新肌肉生成。选定的多孔 DGL/PEG 水凝胶在缺损外围起着引导支架的作用,有利于损伤 21 天后排列整齐的肌纤维的形成和固定。总之,我们的研究结果表明,DGL/PEG 多孔注射水凝胶有可能在骨骼肌大面积损伤后为肌肉细胞创造有利于再生的环境,为再生肌肉医学中的细胞治疗铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Tissue Engineering
Journal of Tissue Engineering Engineering-Biomedical Engineering
CiteScore
11.60
自引率
4.90%
发文量
52
审稿时长
12 weeks
期刊介绍: The Journal of Tissue Engineering (JTE) is a peer-reviewed, open-access journal dedicated to scientific research in the field of tissue engineering and its clinical applications. Our journal encompasses a wide range of interests, from the fundamental aspects of stem cells and progenitor cells, including their expansion to viable numbers, to an in-depth understanding of their differentiation processes. Join us in exploring the latest advancements in tissue engineering and its clinical translation.
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