Macrophage-derived extracellular vesicles transfer mitochondria to adipocytes and promote adipocyte-myofibroblast transition in epidural fibrosis.

IF 6.4 1区 医学 Q1 CELL & TISSUE ENGINEERING
Feng Hua, Jinpeng Sun, Mohan Shi, Rui Mei, Zeyuan Song, Jun Liu, Mingshun Zhang
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引用次数: 0

Abstract

Epidural fibrosis post laminectomy is the leading cause of failed back surgery syndrome. Little is known about the role and mechanisms of adipose tissues in epidural fibrosis. Here, we found that obese patients were more likely to develop epidural fibrosis after spine surgery. Similarly, obesity led to more progressive epidural fibrosis in a mouse model of laminectomy. Adipocyte-myofibroblast transition (AMT) occurs in epidural scarring. Mechanistically, large extracellular vesicles (EVs) from M2-type macrophages transfer mitochondria into adipocytes and promote AMT by activating the TGF-β and PAI-1 pathways. Blocking the PAI-1 pathway significantly attenuated the transition of adipocytes into myofibroblasts. We conclude that large EVs from macrophages transfer mitochondria to promote AMT in epidural fibrosis.

巨噬细胞衍生的细胞外囊泡将线粒体转移到脂肪细胞,并促进硬膜外纤维化中脂肪细胞-肌成纤维细胞的转化。
椎板切除术后硬膜外纤维化是失败的背部手术综合征的主要原因。脂肪组织在硬膜外纤维化中的作用和机制尚不清楚。在这里,我们发现肥胖患者在脊柱手术后更容易发生硬膜外纤维化。同样,在椎板切除术小鼠模型中,肥胖导致更进行性硬膜外纤维化。脂肪细胞-肌成纤维细胞转化(AMT)发生在硬膜外瘢痕。机制上,来自m2型巨噬细胞的大细胞外囊泡(EVs)通过激活TGF-β和PAI-1途径将线粒体转移到脂肪细胞并促进AMT。阻断PAI-1通路可显著减弱脂肪细胞向肌成纤维细胞的转变。我们得出结论,巨噬细胞的大EVs转移线粒体,促进硬膜外纤维化的AMT。
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
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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