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首页> 外文期刊>Small GTPases >Mechanical control of epithelial lumen formation.Comments Comment on: J Cell Biol. 2012 Sep 17;198(6):1011-23; PMID: 22965908
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Mechanical control of epithelial lumen formation.Comments Comment on: J Cell Biol. 2012 Sep 17;198(6):1011-23; PMID: 22965908

机译:上皮腔形成的机械控制。评论评论:J Cell Biol。 2012年9月17日; 198(6):1011-23; PMID:22965908

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摘要

Epithelial cells differentiate and polarize to build complete epithelial organs during development. The study of epithelial morphogenesis is instrumental to the understanding of disease processes where epithelial polarity is disrupted. Recently, we demonstrated that matrix-induced cell confinement controls the acquisition of three-dimensional epithelial polarity, by modulating the initiation of the apical membrane to form a central lumen (J Cell Biol 2012; 198:1011-1026). Cell confinement can be achieved by use of micropatterned culture chips that allow precise micrometric-scale control of the cell adhesion surface and its composition. Using micropattern chips, we demonstrated that polarizing epithelial cells require high confinement conditions to properly position the centrosome and the trafficking machinery toward the cell-cell contacts and to initiate lumen morphogenesis. Low confinement induces LKB1 and RhoA-mediated cell contractility, which inhibits this mechanism for lumen formation. Deactivation of Myosin-II-mediated contractility rescued normal lumen initiation in low confinement conditions. Our results indicate that a mechanotransduction pathway coordinates nuclear and centrosome positioning to initiate epithelial morphogenesis. Here we discuss the potential candidates that control this process, specifically the polarized activation of Rho and Rab-family GTPases, and also a group of recently characterized nuclear transcription factors.Registry Number/Name of Substance 0 (Laminin).
机译:上皮细胞在发育过程中分化并极化以建立完整的上皮器官。上皮形态发生的研究有助于理解上皮极性被破坏的疾病过程。最近,我们证明了基质诱导的细胞限制通过调节顶膜的形成以形成中央管腔来控制三维上皮极性的获取(J Cell Biol 2012; 198:1011-1026)。细胞的封闭可以通过使用微模式培养芯片来实现,该芯片允许对细胞粘附表面及其组成进行精确的微米级控制。使用微模式芯片,我们证明极化的上皮细胞需要高的封闭条件,以正确地将中心体和运输机制定位于细胞-细胞接触并启动管腔形态发生。低限制会诱导LKB1和RhoA介导的细胞收缩,从而抑制这种管腔形成机制。肌球蛋白II介导的收缩力的失活在低限制条件下挽救了正常的管腔启动。我们的结果表明机械转导途径协调核和中心体定位,以启动上皮形态发生。在这里,我们讨论了控制该过程的潜在候选物,特别是Rho和Rab家族GTPases的极化激活,以及一组最近表征的核转录因子。注册号/物质0(层粘连蛋白)的名称。

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