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递送富含miRNA-29的细胞外囊泡修饰成肌细胞的丝胶蛋白贴片(SPEED)可增强严重骨骼肌损伤后的再生和功能修复。

Silk sericin patches delivering miRNA-29-enriched extracellular vesicles-decorated myoblasts (SPEED) enhances regeneration and functional repair after severe skeletal muscle injury.

作者信息

Song Yu, Li Miaomiao, Lei Shijun, Hao Lu, Lv Qiying, Liu Miaodeng, Wang Guobin, Wang Zheng, Fu Xiaobing, Wang Lin

机构信息

Research Center for Tissue Engineering and Regenerative Medicine, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430022, China.

Research Center for Tissue Engineering and Regenerative Medicine, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430022, China; Department of Clinical Laboratory, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430022, China.

出版信息

Biomaterials. 2022 Aug;287:121630. doi: 10.1016/j.biomaterials.2022.121630. Epub 2022 Jun 10.

Abstract

Severe skeletal muscle injuries usually lead to a series of poor recovery issues, such as massive myofibers loss, scar tissue formation, significant muscle function impairment, etc. Here, a silk sericin patch delivering miRNA-29-enriched extracellular vesicles-decorated myoblasts (SPEED) is designed for the rapid regeneration and functional repair after severe skeletal muscle injury. Specifically, miR29-enriched extracellular vesicles (miR29-EVs) are prepared and used to deliver miR29 into primary myoblasts, which promote the myotube formation of myoblasts and increase the expression of myogenic genes while inhibiting the expression of fibrotic genes. Our results indicate that miR29-EVs promote the integration of primary myoblasts and host muscle in a severe mouse tibialis anterior (TA) muscle injury model. Moreover, implantation of SPEED drastically stimulates skeletal muscle regeneration, inhibits fibrosis of injured muscles, and leads to significant improvement of muscle contraction forces and motor ability of mice about 3 weeks after treatment. Subsequently, we further evaluate the transcriptomes of TA muscles and find that SPEED can significantly ameliorate energy metabolism and muscular microenvironment of TA muscles on day 9 after implantation. Additionally, bioinformatic analysis and comprehensive molecular biology studies also reveal that the down-regulation of CDC20-MEF2C signaling axis may participate in the muscle repair process. Together, SPEED may serve as an effective alternative for the rapid repair of severe skeletal muscle injuries in the future.

摘要

严重的骨骼肌损伤通常会导致一系列恢复不佳的问题,如大量肌纤维损失、瘢痕组织形成、显著的肌肉功能受损等。在此,设计了一种载有富含miRNA-29的细胞外囊泡修饰的成肌细胞的丝胶蛋白贴片(SPEED),用于严重骨骼肌损伤后的快速再生和功能修复。具体而言,制备富含miR29的细胞外囊泡(miR29-EVs)并将其用于将miR29递送至原代成肌细胞,这促进了成肌细胞的肌管形成并增加了生肌基因的表达,同时抑制了纤维化基因的表达。我们的结果表明,在严重的小鼠胫前肌(TA)损伤模型中,miR29-EVs促进原代成肌细胞与宿主肌肉的整合。此外,植入SPEED可极大地刺激骨骼肌再生,抑制受伤肌肉的纤维化,并在治疗后约3周使小鼠的肌肉收缩力和运动能力得到显著改善。随后,我们进一步评估了TA肌肉的转录组,发现植入后第9天,SPEED可显著改善TA肌肉的能量代谢和肌肉微环境。此外,生物信息学分析和综合分子生物学研究还表明,CDC20-MEF2C信号轴的下调可能参与了肌肉修复过程。总之,SPEED未来可能成为快速修复严重骨骼肌损伤的有效替代方法。

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