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首页> 外文期刊>Seminars in cell and developmental biology >Mechanosensing of matrix by stem cells: From matrix heterogeneity, contractility, and the nucleus in pore-migration to cardiogenesis and muscle stem cells in vivo
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Mechanosensing of matrix by stem cells: From matrix heterogeneity, contractility, and the nucleus in pore-migration to cardiogenesis and muscle stem cells in vivo

机译:干细胞的基质机械溶解:从基质异质性,收缩性和孔隙迁移中的细胞核和肌肉干细胞在体内:斜体>斜体>

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AbstractStem cells are particularly ‘plastic’ cell types that are induced by various cues to become specialized, tissue-functional lineages by switching on the expression of specific gene programs. Matrix stiffness is among the cues that multiple stem cell types can sense and respond to. This seminar-style review focuses on mechanosensing of matrix elasticity in the differentiation or early maturation of a few illustrative stem cell types, with an intended audience of biologists and physical scientists. Contractile forces applied by a cell’s acto-myosin cytoskeleton are often resisted by the extracellular matrix and transduced through adhesions and the cytoskeleton ultimately into the nucleus to modulate gene expression. Complexity is added by matrix heterogeneity, and careful scrutiny of the evident stiffness heterogeneity in some model systems resolves some controversies concerning matrix mechanosensing. Importantly, local stiffness tends to dominate, and ‘durotaxis’ of stem cells toward stiff matrix reveals a dependence of persistent migration on myosin-II force generation and also rigid microtubules that confer directionality. Stem and progenitor cell migration in 3D can be further affected by matrix porosity as well as stiffness, with nuclear size and rigidity influencing niche retention and fate choices. Cell squeezing through rigid pores can even cause DNA damage and genomic changes that contribute to de-differentiation toward stem cell-like states. Contraction of acto-myosin is the essential function of striated muscle, which also exhibit mechanosensitive differentiation and maturation as illustratedin vivoby beating heart cells and by the regenera
机译:<![cdata [ 抽象 干细胞特别是”塑料“细胞类型,通过切换特定的表达,各种提示被各种提示引起专门的组织功能谱系。基因计划。矩阵刚度是多个干细胞类型可以感知和响应的提示之一。该研讨会审查重点介绍了几种说明性干细胞类型的分化或早期成熟的基质弹性的机械损伤,具有生物学家和物理科学家的预期观众。由细胞的acto-myosin细胞骨架施用的收缩力通常被细胞外基质抵抗并最终通过粘连和细胞骨架转导,以调节基因表达。复杂性通过矩阵异质性添加,一些模型系统中的明显刚度异质性的仔细审查解决了一些关于矩阵机械损伤的争议。重要的是,局部刚度倾向于占据主导地位,并且干细胞对僵硬基质的“杜延划线”揭示了持续迁移对肌霉素-II力产生的依赖性,以及赋予方向性的刚性微管。 3D中的茎和祖细胞迁移可以进一步受基质孔隙率以及刚度的影响,核尺寸和刚度影响利基保留和命运选择。通过刚性孔挤压的细胞甚至可以导致DNA损伤和基因组变化,从而有助于对干细胞状状态进行脱节。 Acto-myosin的收缩是条纹肌肉的基本函数,也表现出机械敏感性分化和成熟,如图所示:通过击打心细胞和雷根塔圈

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