Institute of Pathology, University Medical Centre Göttingen, Germany.
Department of Biomedical and Clinical Sciences and Department of Physics "Aldo Pontremoli", University of Milan, Italy.
Eur J Cell Biol. 2024 Jun;103(2):151417. doi: 10.1016/j.ejcb.2024.151417. Epub 2024 May 6.
Nowadays, it is an established concept that the capability to reach a specialised cell identity via differentiation, as in the case of multi- and pluripotent stem cells, is not only determined by biochemical factors, but that also physical aspects of the microenvironment play a key role; interpreted by the cell through a force-based signalling pathway called mechanotransduction. However, the intricate ties between the elements involved in mechanotransduction, such as the extracellular matrix, the glycocalyx, the cell membrane, Integrin adhesion complexes, Cadherin-mediated cell/cell adhesion, the cytoskeleton, and the nucleus, are still far from being understood in detail. Here we report what is currently known about these elements in general and their specific interplay in the context of multi- and pluripotent stem cells. We furthermore merge this overview to a more comprehensive picture, that aims to cover the whole mechanotransductive pathway from the cell/microenvironment interface to the regulation of the chromatin structure in the nucleus. Ultimately, with this review we outline the current picture of the interplay between mechanotransductive cues and epigenetic regulation and how these processes might contribute to stem cell dynamics and fate.
如今,通过分化达到特定细胞特性的能力已被广泛认可,这在多能和多能干细胞中尤为明显,这不仅取决于生化因素,细胞微环境的物理特性也起着关键作用;细胞通过一种称为机械转导的基于力的信号通路来感知这些特性。然而,机械转导中涉及的诸多因素之间的复杂联系,如细胞外基质、糖萼、细胞膜、整合素黏附复合物、钙黏蛋白介导的细胞/细胞黏附、细胞骨架和细胞核,其细节仍远未被完全理解。在这里,我们总结了目前已知的这些因素的一般信息,以及它们在多能和多能干细胞中的特定相互作用。我们还将这个概述与更全面的图片相结合,旨在涵盖从细胞/微环境界面到细胞核中染色质结构调控的整个机械转导途径。最终,通过这篇综述,我们概述了机械转导线索和表观遗传调控之间的相互作用的当前情况,以及这些过程如何有助于干细胞的动态和命运。