Martinez Bridget, Yang Yongchao, Harker Donald Mario Robert, Farrar Charles, Mukundan Harshini, Nath Pulak, Mascareñas David
Engineering Institute, Los Alamos National Laboratory, Los Alamos, NM, United States.
Applied Modern Physics, Los Alamos National Laboratory, Los Alamos, NM, United States.
Front Cell Dev Biol. 2019 Oct 4;7:199. doi: 10.3389/fcell.2019.00199. eCollection 2019.
Mechanoreciprocity refers to a cell's ability to maintain tensional homeostasis in response to various types of forces. Physical forces are continually being exerted upon cells of various tissue types, even those considered static, such as the brain. Through mechanoreceptors, cells sense and subsequently respond to these stimuli. These forces and their respective cellular responses are prevalent in regulating everything from embryogenic tissue-specific differentiation, programmed cell death, and disease progression, the last of which being the subject of extensive attention. Abnormal mechanical remodeling of cells can provide clues as to the pathological status of tissues. This becomes particularly important in cancer cells, where cellular stiffness has been recently accepted as a novel biomarker for cancer metastasis. Several studies have also elucidated the importance of cell stiffness in cancer metastasis, with data highlighting that a reversal of tumor stiffness has the capacity to revert the metastatic properties of cancer. In this review, we summarize our current understanding of extracellular matrix (ECM) homeostasis, which plays a prominent role in tissue mechanics. We also describe pathological disruption of the ECM, and the subsequent implications toward cancer and cancer metastasis. In addition, we highlight the most novel approaches toward understanding the mechanisms which generate pathogenic cell stiffness and provide potential new strategies which have the capacity to advance our understanding of one of human-kinds' most clinically significant medical pathologies. These new strategies include video-based techniques for structural dynamics, which have shown great potential for identifying full-field, high-resolution modal properties, in this case, as a novel application.
机械互易性是指细胞响应各种类型的力来维持张力稳态的能力。物理力持续作用于各种组织类型的细胞,甚至包括那些被认为是静态的组织,如大脑。通过机械感受器,细胞感知并随后对这些刺激做出反应。这些力及其各自的细胞反应在调节从胚胎组织特异性分化、程序性细胞死亡到疾病进展等所有方面都很普遍,其中疾病进展是广泛关注的主题。细胞的异常机械重塑可以为组织的病理状态提供线索。这在癌细胞中尤为重要,最近细胞硬度已被公认为癌症转移的一种新型生物标志物。几项研究也阐明了细胞硬度在癌症转移中的重要性,数据表明肿瘤硬度的逆转有能力恢复癌症的转移特性。在这篇综述中,我们总结了我们目前对细胞外基质(ECM)稳态的理解,其在组织力学中起着重要作用。我们还描述了ECM的病理破坏及其对癌症和癌症转移的后续影响。此外,我们强调了理解产生致病性细胞硬度机制的最新方法,并提供了有潜力推进我们对人类最具临床意义的医学病理学之一理解的潜在新策略。这些新策略包括基于视频的结构动力学技术,在这种情况下,作为一种新应用,该技术在识别全场、高分辨率模态特性方面显示出巨大潜力。