氧化磷酸化
重编程
细胞生物学
线粒体
伤口愈合
柠檬酸循环
成纤维细胞
新生血管
糖酵解
焊剂(冶金)
活性氧
线粒体基质
材料科学
生物
脂肪组织
细胞凋亡
组织修复
生物化学
氧化损伤
癌症
血管生成
癌症研究
氧化应激
癌细胞
细胞周期
磷酸化
化学
细胞保护
细胞外基质
生物信息学
作者
Chen Liang,Yu Cheng,Zhuoyuan Li,Zheng Ao,Xiujun Fu,Weian Zhang,Lingyan Cao,C Wang
摘要
Aging-associated wound healing deficiency causes a variety of health complications and makes both economic and psychological burdens on patients greatly, with current therapies failing to address underlying pathophysiology and aging-related impairments. Inspired by Turritopsis nutricula, we directly fabricated biomimetic skin matrix (BSM) from human adipose tissue (AT) by decellularization, then incorporated with amino-functionalized apoptotic bodies (FABs) to construct a biomimetic skin (BSM@FABs). BSM@FABs effectively displayed high fibroblast affinity while reversing cellular senescence, accelerating migration, and stimulating neovascularization in aged wounds. Mechanistically, we identified a pioneering DAZAP1 liquid-liquid phase separation (LLPS) triggered by BSM@FABs. These biomolecular condensates in the LLPS process enhanced tricarboxylic acid (TCA) cycle flux and oxidative phosphorylation (OXPHOS), concomitant with suppressed glycolysis and reduced mitochondrial reactive oxygen species, thereby resolving aging-impaired mitochondrial dysfunction. Our work introduces a novel LLPS-targeted strategy for aged wound treatment by reprogramming mitochondrial energy metabolism.
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