细胞尺度孔隙减少异物反应和促进神经支配肌纤维形成后,体积肌肉损失。

IF 6.4 1区 医学 Q1 CELL & TISSUE ENGINEERING
Areli Rodriguez Ayala, George Christ, Donald Griffin
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引用次数: 0

摘要

体积性肌肉损失(VML)由严重的创伤性损伤导致不可逆转的收缩组织损失和永久性的功能缺陷。这些损伤由于过度炎症而抵抗内源性愈合和临床治疗,导致纤维化、肌纤维失神经支配和再生受损。利用啮齿动物胫骨前肌VML模型,本研究证明微孔退火颗粒(MAP)水凝胶支架作为生物材料平台可改善肌肉再生。与大体积(纳米多孔)水凝胶支架不同,MAP支架通过防止异物反应、减缓植入物降解和促进再生巨噬细胞极化来增强整合。在MAP支架降解之前,细胞迁移和血管生成发生在整个植入物中,在支架内形成肌肉纤维和神经肌肉连接。这些结构随着植入物的降解而继续发展,这表明MAP水凝胶支架为VML损伤提供了一种有希望的治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cell-scale porosity minimizes foreign body reaction and promotes innervated myofiber formation after volumetric muscle loss.

Volumetric muscle loss (VML) from severe traumatic injuries results in irreversible loss of contractile tissue and permanent functional deficits. These injuries resist endogenous healing and clinical treatment due to excessive inflammation, leading to fibrosis, muscle fiber denervation, and impaired regeneration. Using a rodent tibialis anterior VML model, this study demonstrates microporous annealed particle (MAP) hydrogel scaffolds as a biomaterial platform for improved muscle regeneration. Unlike bulk (nanoporous) hydrogel scaffolds, MAP scaffolds enhance integration by preventing a foreign body reaction, slowing implant degradation, and promoting regenerative macrophage polarization. Cell migration and angiogenesis occur throughout the implant before MAP scaffold degradation, with muscle fibers and neuromuscular junctions forming within the scaffolds. These structures continue developing as the implant degrades, suggesting MAP hydrogel scaffolds offer a promising therapeutic approach for VML injuries.

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来源期刊
npj Regenerative Medicine
npj Regenerative Medicine Engineering-Biomedical Engineering
CiteScore
10.00
自引率
1.40%
发文量
71
审稿时长
12 weeks
期刊介绍: Regenerative Medicine, an innovative online-only journal, aims to advance research in the field of repairing and regenerating damaged tissues and organs within the human body. As a part of the prestigious Nature Partner Journals series and in partnership with ARMI, this high-quality, open access journal serves as a platform for scientists to explore effective therapies that harness the body's natural regenerative capabilities. With a focus on understanding the fundamental mechanisms of tissue damage and regeneration, npj Regenerative Medicine actively encourages studies that bridge the gap between basic research and clinical tissue repair strategies.
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