Malandrino Andrea, Kamm Roger D, Moeendarbary Emad
Department of Mechanical Engineering and Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.
Institute for Bioengineering of Catalonia, Barcelona 08028, Spain.
ACS Biomater Sci Eng. 2018 Feb 12;4(2):294-301. doi: 10.1021/acsbiomaterials.7b00041. Epub 2017 May 16.
In addition to a multitude of genetic and biochemical alterations, abnormal morphological, structural, and mechanical changes in cells and their extracellular environment are key features of tumor invasion and metastasis. Furthermore, it is now evident that mechanical cues alongside biochemical signals contribute to critical steps of cancer initiation, progression, and spread. Despite its importance, it is very challenging to study mechanics of different steps of metastasis in the clinic or even in animal models. While considerable progress has been made in developing advanced in vitro models for studying genetic and biological aspects of cancer, less attention has been paid to models that can capture both biological and mechanical factors realistically. This is mainly due to lack of appropriate models and measurement tools. After introducing the central role of mechanics in cancer metastasis, we provide an outlook on the emergence of novel in vitro assays and their combination with advanced measurement technologies to probe and recapitulate mechanics in conditions more relevant to the metastatic disease.
除了大量的基因和生化改变外,细胞及其细胞外环境中异常的形态、结构和力学变化是肿瘤侵袭和转移的关键特征。此外,现在很明显,机械信号与生化信号一起促成了癌症起始、进展和扩散的关键步骤。尽管其很重要,但在临床甚至动物模型中研究转移不同步骤的力学非常具有挑战性。虽然在开发用于研究癌症基因和生物学方面的先进体外模型方面已经取得了相当大的进展,但对于能够真实捕捉生物学和力学因素的模型关注较少。这主要是由于缺乏合适的模型和测量工具。在介绍了力学在癌症转移中的核心作用之后,我们对新型体外检测方法的出现及其与先进测量技术的结合进行了展望,以便在更接近转移性疾病的条件下探测和重现力学情况。