Massey Andrew, Stewart Jamie, Smith Chynna, Parvini Cameron, McCormick Moira, Do Kun, Cartagena-Rivera Alexander X
Section on Mechanobiology, National Institute of Biomedical Imaging and Bioengineering, National Institutes of Health, Bethesda, MD, USA.
These authors contributed equally: Jamie Stewart, Chynna Smith.
Nat Rev Phys. 2024 Apr;6(4):269-282. doi: 10.1038/s42254-024-00707-2. Epub 2024 Mar 19.
The mechanical properties of cells and tissues help determine their architecture, composition and function. Alterations to these properties are associated with many diseases, including cancer. Tensional, compressive, adhesive, elastic and viscous properties of individual cells and multicellular tissues are mostly regulated by reorganization of the actomyosin and microtubule cytoskeletons and extracellular glycocalyx, which in turn drive many pathophysiological processes, including cancer progression. This Review provides an in-depth collection of quantitative data on diverse mechanical properties of living human cancer cells and tissues. Additionally, the implications of mechanical property changes for cancer development are discussed. An increased knowledge of the mechanical properties of the tumour microenvironment, as collected using biomechanical approaches capable of multi-timescale and multiparametric analyses, will provide a better understanding of the complex mechanical determinants of cancer organization and progression. This information can lead to a further understanding of resistance mechanisms to chemotherapies and immunotherapies and the metastatic cascade.
细胞和组织的力学特性有助于确定其结构、组成和功能。这些特性的改变与包括癌症在内的许多疾病相关。单个细胞和多细胞组织的张力、压缩力、粘附力、弹性和粘性特性主要由肌动球蛋白和微管细胞骨架以及细胞外糖萼的重组来调节,而这反过来又驱动许多病理生理过程,包括癌症进展。本综述深入收集了关于人类活癌细胞和组织各种力学特性的定量数据。此外,还讨论了力学特性变化对癌症发展的影响。通过能够进行多时间尺度和多参数分析的生物力学方法收集到的关于肿瘤微环境力学特性的更多知识,将有助于更好地理解癌症组织和进展的复杂力学决定因素。这些信息能够进一步理解化疗和免疫疗法的耐药机制以及转移级联反应。