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曲率梯度驱动胚胎中极化组织的流动。

Curvature gradient drives polarized tissue flow in the embryo.

机构信息

Institut de Biologie du Développement de Marseille - UMR7288 & Turing Centre for Living Systems, Aix Marseille Université & CNRS, Marseille 13288, France.

Centre de Physique Theorique - UMR7332 & Turing Centre for Living Systems, Aix Marseille Université & CNRS, Marseille 13288, France.

出版信息

Proc Natl Acad Sci U S A. 2023 Feb 7;120(6):e2214205120. doi: 10.1073/pnas.2214205120. Epub 2023 Feb 1.

Abstract

Tissue flow during morphogenesis is commonly driven by local constriction of cell cortices, which is caused by the activation of actomyosin contractility. This can lead to long-range flows due to tissue viscosity. However, in the absence of cell-intrinsic polarized forces or polarity in forces external to the tissue, these flows must be symmetric and centered around the region of contraction. Polarized tissue flows have been previously demonstrated to arise from the coupling of such contractile flows to points of increased friction or adhesion to external structures. However, we show with experiments and modeling that the onset of polarized tissue flow in early morphogenesis occurs independent of adhesion and is instead driven by a geometric coupling of apical actomyosin contractility to tissue curvature. Particularly, the onset of polarized flow is driven by a mismatch between the position of apical myosin activation and the position of peak curvature at the posterior pole of the embryo. Our work demonstrates how genetic and geometric information inherited from the mother interact to create polarized flow during embryo morphogenesis.

摘要

在形态发生过程中,组织流通常是由细胞皮质的局部收缩驱动的,这是由肌动球蛋白收缩性的激活引起的。由于组织粘性,这可能导致远程流动。然而,在没有细胞内在极化力或组织外部力的极性的情况下,这些流动必须是对称的,并集中在收缩区域周围。以前已经证明,通过将这种收缩流与增加的摩擦力或与外部结构的附着力耦合,可以产生极化的组织流。然而,我们通过实验和建模表明,早期形态发生中极化组织流的开始独立于粘附,而是由细胞顶部肌动球蛋白收缩性与组织曲率的几何耦合驱动的。具体来说,极化流动的开始是由顶端肌球蛋白激活的位置与胚胎后极的峰值曲率的位置之间的不匹配驱动的。我们的工作表明,来自母体的遗传和几何信息如何相互作用,在胚胎形态发生过程中产生极化流。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15c3/9963527/c23e2df92d0b/pnas.2214205120fig01.jpg

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