Engineering Product Development (EPD) Pillar, Singapore University of Technology and Design, 8 Somapah Road, Singapore 487372, Singapore; Department of Biomedical Engineering, National University of Singapore, 9 Engineering Drive 1, Singapore 117576, Singapore.
Institute for Health Innovation and Technology, National University of Singapore,117599, Singapore.
Acta Biomater. 2023 Jun;163:351-364. doi: 10.1016/j.actbio.2022.10.016. Epub 2022 Oct 13.
The extracellular matrix (ECM) is pivotal in modulating tumor progression. Besides chemically stimulating tumor cells, it also offers physical support that orchestrates the sequence of events in the metastatic cascade upon dynamically modulating cell mechanosensation. Understanding this translation between matrix biophysical cues and intracellular signaling has led to rapid growth in the interdisciplinary field of cancer mechanobiology in the last decade. Substantial efforts have been made to develop novel in vitro tumor mimicking platforms to visualize and quantify the mechanical forces within the tissue that dictate tumor cell invasion and metastatic growth. This review highlights recent findings on tumor matrix biophysical cues such as fibrillar arrangement, crosslinking density, confinement, rigidity, topography, and non-linear mechanics and their implications on tumor cell behavior. We also emphasize how perturbations in these cues alter cellular mechanisms of mechanotransduction, consequently enhancing malignancy. Finally, we elucidate engineering techniques to individually emulate the mechanical properties of tumors that could help serve as toolkits for developing and testing ECM-targeted therapeutics on novel bioengineered tumor platforms. STATEMENT OF SIGNIFICANCE: Disrupted ECM mechanics is a driving force for transitioning incipient cells to life-threatening malignant variants. Understanding these ECM changes can be crucial as they may aid in developing several efficacious drugs that not only focus on inducing cytotoxic effects but also target specific matrix mechanical cues that support and enhance tumor invasiveness. Designing and implementing an optimal tumor mimic can allow us to predictively map biophysical cue-modulated cell behaviors and facilitate the design of improved lab-grown tumor models with accurately controlled structural features. This review focuses on the abnormal changes within the ECM during tumorigenesis and its implications on tumor cell-matrix mechanoreciprocity. Additionally, it accentuates engineering approaches to produce ECM features of varying levels of complexity which is critical for improving the efficiency of current engineered tumor tissue models.
细胞外基质 (ECM) 在调节肿瘤进展方面起着关键作用。除了化学刺激肿瘤细胞外,它还提供物理支持,通过动态调节细胞机械感觉来协调转移级联中的事件顺序。理解基质生物物理线索与细胞内信号之间的这种转化,导致了过去十年间癌症力学生物学这一跨学科领域的快速发展。人们做出了大量努力来开发新的体外肿瘤模拟平台,以可视化和量化组织内决定肿瘤细胞侵袭和转移生长的力学。本综述强调了肿瘤基质生物物理线索的最新发现,如纤维排列、交联密度、约束、刚性、形貌和非线性力学及其对肿瘤细胞行为的影响。我们还强调了这些线索的干扰如何改变细胞的力学转导机制,从而增强恶性程度。最后,我们阐明了单独模拟肿瘤力学特性的工程技术,这些技术可以作为在新型生物工程肿瘤平台上开发和测试 ECM 靶向治疗的工具包。
破坏的 ECM 力学是将早期细胞转变为威胁生命的恶性变体的驱动力。了解这些 ECM 变化可能很重要,因为它们可能有助于开发几种有效的药物,这些药物不仅专注于诱导细胞毒性作用,而且还针对支持和增强肿瘤侵袭性的特定基质力学线索。设计和实施最佳的肿瘤模拟可以让我们预测性地绘制生物物理线索调节的细胞行为,并促进设计具有准确控制结构特征的改进的实验室培养肿瘤模型。本综述重点介绍了肿瘤发生过程中 ECM 内的异常变化及其对肿瘤细胞-基质机械相互作用的影响。此外,它强调了产生具有不同复杂程度的 ECM 特征的工程方法,这对于提高现有工程化肿瘤组织模型的效率至关重要。