Max Bergmann Center of Biomaterials Dresden, Leibniz Institute for Polymer Research Dresden, Hohe Str. 6, 01069, Dresden, Germany.
Center for Molecular and Cellular Bioengineering (CMCB), BIOTEC, TU Dresden, 01307, Dresden, Germany.
Adv Healthc Mater. 2023 Jun;12(14):e2202514. doi: 10.1002/adhm.202202514. Epub 2023 Mar 27.
Cancer progression is associated with extensive remodeling of the tumor microenvironment (TME), resulting in alterations of biochemical and biophysical cues that affect both cancer and stromal cells. In particular, the mechanical characteristics of the TME extracellular matrix undergo significant changes. Bioengineered polymer hydrogels can be instrumental to systematically explore how mechanically changed microenvironments impact cancer cell behavior, including proliferation, survival, drug resistance, and invasion. This article reviews studies that have explored the impact of different mechanical cues of the cells' 3D microenvironment on cancer cell behavior using hydrogel-based in vitro models. In particular, advanced engineering strategies are highlighted for tailored hydrogel matrices recapitulating the TME's micrometer- and sub-micrometer-scale architectural and mechanical features, while accounting for its intrinsically heterogenic and dynamic nature. It is anticipated that such precision hydrogel systems will further the understanding of cancer mechanobiology.
癌症的进展与肿瘤微环境(TME)的广泛重构有关,导致生化和生物物理线索发生改变,影响癌症细胞和基质细胞。特别是,TME 细胞外基质的机械特性发生了显著变化。生物工程聚合物水凝胶可用于系统地研究力学改变的微环境如何影响癌症细胞的行为,包括增殖、存活、耐药性和侵袭。本文综述了利用基于水凝胶的体外模型研究细胞 3D 微环境的不同力学线索对癌症细胞行为影响的研究。特别是,强调了先进的工程策略,用于定制水凝胶基质,再现 TME 的微米和亚微米级结构和机械特征,同时考虑到其内在的异质性和动态特性。预计这种精密水凝胶系统将进一步加深对癌症力学生物学的理解。