基质变形和机械转导作为乳腺癌细胞在基质界面表型改变的标志物。

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Cornelia Clemens, Rosa Gehring, Philipp Riedl and Tilo Pompe
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引用次数: 0

摘要

转移细胞从原发肿瘤扩散到周围组织是癌症进展的关键事件。这一过程涉及细胞跨越将致密肿瘤组织与邻近健康组织分开的确定组织界面的迁移。先前的研究表明,细胞在胶原I基质界面上的迁移诱导了向更具侵略性的表型的转变,包括迁移方向性的改变和与迁移过程中DNA损伤增加相关的化学敏感性。因此,在转运过程中作用于细胞核的机械力被假设为触发表型转换。在这里,我们展示了基于粒子图像速度法(PIV)的活细胞分析的结果,该分析显示乳腺癌细胞在由两个不同孔径的I型胶原网络组成的尖锐基质界面上迁移。我们发现强烈的和高度局部化的胶原网络变形是由细胞力引起的,在从密集基质到开放基质的交叉界面时。此外,对于具有开关表型的细胞,确定了迁移细胞的收缩性增加。此外,对细胞核机械转导信号、emerin易位和YAP激活的研究表明,这些信号在表型改变的迁移细胞中存在失调。这些发现表明,不同孔径网络之间的基质界面通过强烈的不对称收缩力在迁移过程中机械地挑战侵袭性乳腺癌细胞,阻碍核机械转导途径,随后引发更具侵略性的表型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Matrix deformation and mechanotransduction as markers of breast cancer cell phenotype alteration at matrix interfaces†

Matrix deformation and mechanotransduction as markers of breast cancer cell phenotype alteration at matrix interfaces†

The dissemination of metastatic cells from the primary tumor into the surrounding tissue is a key event in the progression of cancer. This process involves the migration of cells across defined tissue interfaces that separate the dense tumor tissue from the adjacent healthy tissue. Prior research showed that cell transmigration across collagen I matrix interfaces induces a switch towards a more aggressive phenotype including a change in directionality of migration and chemosensitivity correlated to increased DNA damage during transmigration. Hence, mechanical forces acting at the nucleus during transmigration are hypothesized to trigger phenotype switching. Here, we present results from a particle image velocimetry (PIV) based live cell analysis of breast cancer cell transmigration across sharp matrix interfaces constituted of two collagen type I networks with different pore sizes. We found strong and highly localized collagen network deformation caused by cellular forces at the moment of crossing interfaces from dense into open matrices. Additionally, an increased contractility of transmigrated cells was determined for cells with the switch phenotype. Moreover, studies on mechanotransductive signaling at the nucleus, emerin translocation and YAP activation, indicated a misregulation of these signals for transmigrated cells with altered phenotype. These findings show that matrix interfaces between networks of different pore sizes mechanically challenge invasive breast cancer cells during transmigration by a strong asymmetry of contracting forces, impeding nuclear mechanotransduction pathways, with a subsequent trigger of more aggressive phenotypes.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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