CNC - Center for Neuroscience and Cell Biology, University of Coimbra, UC-Biotech Building, Biocant Park, Cantanhede, Portugal.
Faculty of Science and Technology, University Nova of Lisbon (MIT-Portugal PhD Program), Caparica, Portugal.
Sci Rep. 2019 Jun 24;9(1):9086. doi: 10.1038/s41598-019-45352-3.
Biophysical cues influence many aspects of cell behavior. Stiffness of the extracellular matrix is probed by cells and transduced into biochemical signals through mechanotransduction protein networks, strongly influencing stem cell behavior. Cellular stemness is intimately related with mechanical properties of the cell, like intracellular contractility and stiffness, which in turn are influenced by the microenvironment. Pluripotency is associated with soft and low-contractility cells. Hence, we postulated that soft cell culture substrates, presumably inducing low cellular contractility and stiffness, increase the reprogramming efficiency of mesenchymal stem/stromal cells (MSCs) into induced pluripotent stem cells (iPSCs). We demonstrate that soft substrates (1.5 or 15 kPa polydimethylsiloxane - PDMS) caused modulation of several cellular features of MSCs into a phenotype closer to pluripotent stem cells (PSCs). MSCs cultured on soft substrates presented more relaxed nuclei, lower maturation of focal adhesions and F-actin assembling, more euchromatic and less heterochromatic nuclear DNA regions, and increased expression of pluripotency-related genes. These changes correlate with the reprogramming of MSCs, with a positive impact on the kinetics, robustness of colony formation and reprogramming efficiency. Additionally, substrate stiffness influences several phenotypic features of iPS cells and colonies, and data indicates that soft substrates favor full iPSC reprogramming.
生物物理线索影响细胞行为的许多方面。细胞通过力学转导蛋白网络探测细胞外基质的硬度,并将其转化为生化信号,强烈影响干细胞行为。细胞干性与细胞的力学特性密切相关,如细胞内收缩性和硬度,而这些特性又受到微环境的影响。多能性与柔软和低收缩性的细胞有关。因此,我们假设柔软的细胞培养底物,可能会诱导低细胞收缩性和硬度,从而提高间充质干细胞(MSCs)向诱导多能干细胞(iPSCs)的重编程效率。我们证明,软底物(1.5 或 15 kPa 聚二甲基硅氧烷-PDMS)引起了 MSCs 的几种细胞特征的调节,使其更接近多能干细胞(PSCs)的表型。在软底物上培养的 MSC 呈现出更松弛的核、更低成熟的焦点黏附物和 F-肌动蛋白组装、更多的常染色质和更少的异染色质核 DNA 区域,以及多能性相关基因的表达增加。这些变化与 MSC 的重编程相关,对集落形成的动力学、稳健性和重编程效率有积极影响。此外,基底硬度还影响 iPS 细胞和集落的几种表型特征,数据表明软底物有利于完全的 iPSC 重编程。