Dipartimento di Scienza Applicata e Tecnologia, Politecnico di Torino, C.so Duca degli Abruzzi 24, Turin 10129, Italy.
PolitoBIOMed Lab, Politecnico di Torino, C.so Duca degli Abruzzi 24, Turin 10129, Italy.
ACS Appl Bio Mater. 2021 Mar 15;4(3):2233-2250. doi: 10.1021/acsabm.0c01472. Epub 2021 Feb 26.
It is widely accepted that three-dimensional cell culture systems simulate physiological conditions better than traditional 2D systems. Although extracellular matrix components strongly modulate cell behavior, several studies underlined the importance of mechanosensing in the control of different cell functions such as growth, proliferation, differentiation, and migration. Human tissues are characterized by different degrees of stiffness, and various pathologies (e.g., tumor or fibrosis) cause changes in the mechanical properties through the alteration of the extracellular matrix structure. Additionally, these modifications have an impact on disease progression and on therapy response. Hence, the development of platforms whose stiffness could be modulated may improve our knowledge of cell behavior under different mechanical stress stimuli. In this review, we have analyzed the mechanical diversity of healthy and diseased tissues, and we have summarized recently developed materials with a wide range of stiffness.
人们普遍认为,三维细胞培养系统比传统的 2D 系统更能模拟生理条件。尽管细胞外基质成分强烈调节细胞行为,但有几项研究强调了机械感知在控制不同细胞功能(如生长、增殖、分化和迁移)中的重要性。人体组织具有不同程度的硬度,并且各种病理状况(例如肿瘤或纤维化)通过改变细胞外基质结构会引起机械性能的变化。此外,这些变化会影响疾病的进展和治疗反应。因此,开发能够调节其硬度的平台可能会增进我们对不同机械刺激下细胞行为的了解。在这篇综述中,我们分析了健康组织和患病组织的力学多样性,并总结了最近开发的具有广泛硬度范围的材料。