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细胞与组织纳米力学:从早期发育到癌变

Cell and Tissue Nanomechanics: From Early Development to Carcinogenesis.

作者信息

Shmelev Mikhail E, Titov Sergei I, Belousov Andrei S, Farniev Vladislav M, Zhmenia Valeriia M, Lanskikh Daria V, Penkova Alina O, Kumeiko Vadim V

机构信息

Institute of Life Sciences and Biomedicine, Far Eastern Federal University, 690922 Vladivostok, Russia.

A.V. Zhirmunsky National Scientific Center of Marine Biology, Far Eastern Branch, Russian Academy of Sciences, 690041 Vladivostok, Russia.

出版信息

Biomedicines. 2022 Feb 1;10(2):345. doi: 10.3390/biomedicines10020345.

Abstract

Cell and tissue nanomechanics, being inspired by progress in high-resolution physical mapping, has recently burst into biomedical research, discovering not only new characteristics of normal and diseased tissues, but also unveiling previously unknown mechanisms of pathological processes. Some parallels can be drawn between early development and carcinogenesis. Early embryogenesis, up to the blastocyst stage, requires a soft microenvironment and internal mechanical signals induced by the contractility of the cortical actomyosin cytoskeleton, stimulating quick cell divisions. During further development from the blastocyst implantation to placenta formation, decidua stiffness is increased ten-fold when compared to non-pregnant endometrium. Organogenesis is mediated by mechanosignaling inspired by intercellular junction formation with the involvement of mechanotransduction from the extracellular matrix (ECM). Carcinogenesis dramatically changes the mechanical properties of cells and their microenvironment, generally reproducing the structural properties and molecular organization of embryonic tissues, but with a higher stiffness of the ECM and higher cellular softness and fluidity. These changes are associated with the complete rearrangement of the entire tissue skeleton involving the ECM, cytoskeleton, and the nuclear scaffold, all integrated with each other in a joint network. The important changes occur in the cancer stem-cell niche responsible for tumor promotion and metastatic growth. We expect that the promising concept based on the natural selection of cancer cells fixing the most invasive phenotypes and genotypes by reciprocal regulation through ECM-mediated nanomechanical feedback loop can be exploited to create new therapeutic strategies for cancer treatment.

摘要

细胞和组织纳米力学受高分辨率物理图谱研究进展的启发,最近在生物医学研究中迅速兴起,不仅发现了正常组织和病变组织的新特征,还揭示了以前未知的病理过程机制。早期发育和癌症发生之间存在一些相似之处。早期胚胎发育,直至囊胚阶段,需要一个柔软的微环境以及由皮质肌动球蛋白细胞骨架收缩性诱导的内部机械信号,以刺激细胞快速分裂。从囊胚着床到胎盘形成的进一步发育过程中,与未孕子宫内膜相比,蜕膜硬度增加了十倍。器官发生由机械信号传导介导,这种信号传导受细胞间连接形成的启发,并涉及细胞外基质(ECM)的机械转导。癌症发生极大地改变了细胞及其微环境的力学性质,通常重现胚胎组织的结构特性和分子组织,但细胞外基质硬度更高,细胞柔软度和流动性也更高。这些变化与整个组织骨架的完全重排有关,该骨架涉及细胞外基质、细胞骨架和核支架,它们在一个联合网络中相互整合。重要变化发生在负责肿瘤促进和转移生长的癌症干细胞生态位中。我们期望基于癌细胞自然选择的有前景概念能够得以利用,该概念通过细胞外基质介导的纳米力学反馈回路进行相互调节,固定最具侵袭性的表型和基因型,从而为癌症治疗创造新的治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/60f7/8961777/d3008db5938a/biomedicines-10-00345-g001.jpg

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