3D Mechanical Confinement Directs Muscle Stem Cell Fate and Function

IF 2.6 3区 生物学 Q3 MATERIALS SCIENCE, BIOMATERIALS
GaYoung Park, Josh A. Grey, Foteini Mourkioti, Woojin M. Han
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Abstract

Muscle stem cells (MuSCs) play a crucial role in skeletal muscle regeneration, residing in a niche that undergoes dimensional and mechanical changes throughout the regeneration process. This study investigates how 3D confinement and stiffness encountered by MuSCs during the later stages of regeneration regulate their function, including stemness, activation, proliferation, and differentiation. An asymmetric 3D hydrogel bilayer platform is engineered with tunable physical constraints to mimic the regenerating MuSC niche. These results demonstrate that increased 3D confinement maintains Pax7 expression, reduces MuSC activation and proliferation, inhibits differentiation, and is associated with smaller nuclear size and decreased H4K16ac levels, suggesting that mechanical confinement modulates both nuclear architecture and epigenetic regulation. MuSCs in unconfined 2D environments exhibit larger nuclei and higher H4K16ac expression compared to those in more confined 3D conditions, leading to progressive activation, expansion, and myogenic commitment. This study highlights the importance of 3D mechanical cues in MuSC fate regulation, with 3D confinement acting as a mechanical brake on myogenic commitment, offering novel insights into the mechano-epigenetic mechanisms that govern MuSC behavior during muscle regeneration.

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3D机械约束指导肌肉干细胞的命运和功能。
肌肉干细胞(MuSCs)在骨骼肌再生中起着至关重要的作用,在整个再生过程中,它存在于一个经历尺寸和机械变化的生态位中。本研究探讨了musc在再生后期遇到的三维约束和刚度如何调节其功能,包括干性、活化、增殖和分化。不对称的3D水凝胶双层平台具有可调节的物理约束,以模拟再生的MuSC生态位。这些结果表明,增加3D约束可以维持Pax7的表达,降低MuSC的激活和增殖,抑制分化,并与较小的核尺寸和降低的H4K16ac水平相关,这表明机械约束可以调节核结构和表观遗传调控。与受限的3D环境相比,无受限的2D环境中的MuSCs表现出更大的细胞核和更高的H4K16ac表达,导致进行性激活、扩张和肌原性。这项研究强调了3D机械线索在MuSC命运调节中的重要性,3D限制作为肌肉生成承诺的机械制动器,为肌肉再生过程中控制MuSC行为的机械-表观遗传机制提供了新的见解。
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
Advanced biology
Advanced biology Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
6.60
自引率
0.00%
发文量
130
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