基质硬化会促进线粒体在核周围聚集。

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-07-01 Epub Date: 2024-05-17 DOI:10.1091/mbc.E23-04-0139
Piyush Daga, Basil Thurakkal, Simran Rawal, Tamal Das
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引用次数: 0

摘要

来自组织微环境的机械线索,如细胞外基质的硬度,会调节细胞的形态和功能。大量研究表明,这种调节取决于细胞骨架元素的硬度重塑。相比之下,人们对细胞内细胞器(如线粒体)如何对基质硬度做出反应,以及它们的形态、功能和定位是否会发生相应变化知之甚少。在这里,我们对线粒体在软基质和硬基质上的形态、亚细胞定位、动力学和膜张力进行了广泛的定量表征。表征结果表明,虽然基质硬度会影响所有这些方面,但基质变硬最明显地导致线粒体的核周聚集增加。随后,我们确定了对基质硬度敏感的线粒体核周定位是决定这种核周聚集的关键因素。核周和外周线粒体群在软基质上的运动性不同,但令人惊讶的是,它们在硬基质上没有任何差异。最后,核周线粒体集群似乎对RUNX2的核定位至关重要,因此对人类间充质干细胞在坚硬基质上的成骨至关重要。综上所述,我们阐明了线粒体定位对基质硬度的依赖性,这可能使细胞能够适应其微环境。[媒体:见正文] [媒体:见正文] [媒体:见正文] [媒体:见正文]。
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Matrix stiffening promotes perinuclear clustering of mitochondria.

Mechanical cues from the tissue microenvironment, such as the stiffness of the extracellular matrix, modulate cellular forms and functions. As numerous studies have shown, this modulation depends on the stiffness-dependent remodeling of cytoskeletal elements. In contrast, very little is known about how the intracellular organelles such as mitochondria respond to matrix stiffness and whether their form, function, and localization change accordingly. Here, we performed an extensive quantitative characterization of mitochondrial morphology, subcellular localization, dynamics, and membrane tension on soft and stiff matrices. This characterization revealed that while matrix stiffness affected all these aspects, matrix stiffening most distinctively led to an increased perinuclear clustering of mitochondria. Subsequently, we could identify the matrix stiffness-sensitive perinuclear localization of filamin as the key factor dictating this perinuclear clustering. The perinuclear and peripheral mitochondrial populations differed in their motility on soft matrix but surprisingly they did not show any difference on stiff matrix. Finally, perinuclear mitochondrial clustering appeared to be crucial for the nuclear localization of RUNX2 and hence for priming human mesenchymal stem cells towards osteogenesis on a stiff matrix. Taken together, we elucidate a dependence of mitochondrial localization on matrix stiffness, which possibly enables a cell to adapt to its microenvironment.

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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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