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Cancer Cell Migration: Integrated Roles of Matrix Mechanics and Transforming Potential

机译:癌细胞迁移:基质力学和转化潜能的综合作用

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摘要

Significant progress has been achieved toward elucidating the molecular mechanisms that underlie breast cancer progression; yet, much less is known about the associated cellular biophysical traits. To this end, we use time-lapsed confocal microscopy to investigate the interplay among cell motility, three-dimensional (3D) matrix stiffness, matrix architecture, and transforming potential in a mammary epithelial cell (MEC) cancer progression series. We use a well characterized breast cancer progression model where human-derived MCF10A MECs overexpress either ErbB2, 14-3-3ζ, or both ErbB2 and 14-3-3ζ, with empty vector as a control. Cell motility assays showed that MECs overexpressing ErbB2 alone exhibited notably high migration speeds when cultured atop two-dimensional (2D) matrices, while overexpression of 14-3-3ζ alone most suppressed migration atop 2D matrices (as compared to non-transformed MECs). Our results also suggest that co-overexpression of the 14-3-3ζ and ErbB2 proteins facilitates cell migratory capacity in 3D matrices, as reflected in cell migration speed. Additionally, 3D matrices of sufficient stiffness can significantly hinder the migratory ability of partially transformed cells, but increased 3D matrix stiffness has a lesser effect on the aggressive migratory behavior exhibited by fully transformed cells that co-overexpress both ErbB2 and 14-3-3ζ. Finally, this study shows that for MECs possessing partial or full transforming potential, those overexpressing ErbB2 alone show the greatest sensitivity of cell migration speed to matrix architecture, while those overexpressing 14-3-3ζ alone exhibit the least sensitivity to matrix architecture. Given the current knowledge of breast cancer mechanobiology, these findings overall suggest that cell motility is governed by a complex interplay between matrix mechanics and transforming potential.
机译:在阐明构成乳腺癌进展基础的分子机制方面已取得重大进展。然而,有关细胞生物物理特征的了解还很少。为此,我们使用延时共聚焦显微镜研究了乳腺上皮细胞(MEC)癌症进展系列中细胞运动性,三维(3D)基质刚度,基质结构和转化潜力之间的相互作用。我们使用特征明确的乳腺癌进展模型,其中人源性MCF10A MEC过量表达ErbB2、14-3-3ζ或ErbB2和14-3-3ζ,并以空载体作为对照。细胞运动分析表明,在二维(2D)基质上培养时,仅过表达ErbB2的MEC表现出显着的高迁移速度,而单独14-3-3ζ的过表达最能抑制2D基质上的迁移(与未转化的MEC相比)。我们的结果还表明,14-3-3ζ和ErbB2蛋白的共过量表达促进了3D基质中的细胞迁移能力,这反映在细胞迁移速度上。此外,具有足够刚度的3D矩阵可以显着阻碍部分转化的细胞的迁移能力,但是增加的3D矩阵刚度对共同过表达ErbB2和14-3-3ζ的完全转化的细胞表现出的侵略性迁移行为的影响较小。最后,这项研究表明,对于具有部分或全部转化潜能的MEC,仅过表达ErbB2的那些对细胞迁移速度对基质结构的敏感性最高,而仅过表达14-3-3ζ的那些对基质结构的敏感性最低。鉴于目前对乳腺癌力学生物学的了解,这些发现总体上表明,细胞运动受基质力学与转化潜力之间复杂相互作用的支配。

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