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应力纤维上的肌球蛋白磷酸化可预测多种乳腺癌细胞的接触导向行为。

Myosin phosphorylation on stress fibers predicts contact guidance behavior across diverse breast cancer cells.

作者信息

Wang Juan, Schneider Ian C

机构信息

Department of Chemical and Biological Engineering, Iowa State University, USA.

Department of Chemical and Biological Engineering, Iowa State University, USA; Department of Genetics, Development and Cell Biology, Iowa State University, USA.

出版信息

Biomaterials. 2017 Mar;120:81-93. doi: 10.1016/j.biomaterials.2016.11.035. Epub 2016 Nov 28.

Abstract

During cancer progression the extracellular matrix is remodeled, forming aligned collagen fibers that proceed radially from the tumor, resulting in invasion. We have recently shown that different invasive breast cancer cells respond to epitaxially grown, aligned collagen fibrils differently. This article develops insight into why these cells differ in their contact guidance fidelity. Small changes in contractility or adhesion dramatically alter directional persistence on aligned collagen fibrils, while migration speed remains constant. The directionality of highly contractile and adhesive MDA-MB-231 cells can be diminished by inhibiting Rho kinase or β1 integrin binding. Inversely, the directionality of less contractile and adhesive MTLn3 cells can be enhanced by activating contractility or integrins. Subtle, but quantifiable alterations in myosin II regulatory light chain phosphorylation on stress fibers explain the tuning of contact guidance fidelity, separate from migration per se indicating that the contractile and adhesive state of the cell in combination with collagen organization in the tumor microenvironment determine the efficiency of migration. Understanding how distinct cells respond to contact guidance cues will not only illuminate mechanisms for cancer invasion, but will also allow for the design of environments to separate specific subpopulations of cells from patient-derived tissues by leveraging differences in responses to directional migration cues.

摘要

在癌症进展过程中,细胞外基质会发生重塑,形成从肿瘤径向延伸的排列整齐的胶原纤维,从而导致侵袭。我们最近发现,不同的侵袭性乳腺癌细胞对外延生长的排列整齐的胶原纤维有不同的反应。本文深入探讨了为什么这些细胞在接触导向保真度上存在差异。收缩性或黏附性的微小变化会显著改变在排列整齐的胶原纤维上的方向持续性,而迁移速度保持不变。通过抑制Rho激酶或β1整合素结合,可以降低高收缩性和黏附性的MDA-MB-231细胞的方向性。相反,通过激活收缩性或整合素,可以增强收缩性和黏附性较低的MTLn3细胞的方向性。应力纤维上肌球蛋白II调节轻链磷酸化的细微但可量化的变化解释了接触导向保真度的调节,这与迁移本身是分开的,表明细胞的收缩和黏附状态与肿瘤微环境中的胶原组织共同决定了迁移效率。了解不同细胞如何响应接触导向线索不仅将阐明癌症侵袭的机制,还将允许通过利用对定向迁移线索的反应差异来设计环境,以从患者来源的组织中分离特定的细胞亚群。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d97f/5291342/280702f092ad/nihms839910f1.jpg

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