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机械力在植物组织基质中通过微管稳定来定向细胞分裂。

Mechanical forces in plant tissue matrix orient cell divisions via microtubule stabilization.

机构信息

Institute of Science and Technology Austria (ISTA), 3400 Klosterneuburg, Austria; Department of Plant Molecular Biology (DMBV), University of Lausanne, 1015 Lausanne, Switzerland; Gregor Mendel Institute (GMI), Austrian Academy of Sciences, Vienna BioCenter, Vienna, Austria.

Institute of Science and Technology Austria (ISTA), 3400 Klosterneuburg, Austria; Instituto Universitario de Biotecnología y Biomedicina (BIOTECMED), Departamento de Bioquímica y Biología Molecular, Universitat de València, 46100 Burjassot, Spain.

出版信息

Dev Cell. 2024 May 20;59(10):1333-1344.e4. doi: 10.1016/j.devcel.2024.03.009. Epub 2024 Apr 4.

Abstract

Plant morphogenesis relies exclusively on oriented cell expansion and division. Nonetheless, the mechanism(s) determining division plane orientation remain elusive. Here, we studied tissue healing after laser-assisted wounding in roots of Arabidopsis thaliana and uncovered how mechanical forces stabilize and reorient the microtubule cytoskeleton for the orientation of cell division. We identified that root tissue functions as an interconnected cell matrix, with a radial gradient of tissue extendibility causing predictable tissue deformation after wounding. This deformation causes instant redirection of expansion in the surrounding cells and reorientation of microtubule arrays, ultimately predicting cell division orientation. Microtubules are destabilized under low tension, whereas stretching of cells, either through wounding or external aspiration, immediately induces their polymerization. The higher microtubule abundance in the stretched cell parts leads to the reorientation of microtubule arrays and, ultimately, informs cell division planes. This provides a long-sought mechanism for flexible re-arrangement of cell divisions by mechanical forces for tissue reconstruction and plant architecture.

摘要

植物形态发生完全依赖于定向的细胞扩张和分裂。尽管如此,决定分裂面方向的机制仍然难以捉摸。在这里,我们研究了拟南芥根激光辅助损伤后的组织愈合,并揭示了机械力如何稳定和重新定向微管细胞骨架,以确定细胞分裂的方向。我们发现,根组织作为一个相互连接的细胞基质,其组织延展性的径向梯度导致损伤后可预测的组织变形。这种变形导致周围细胞的扩张立即发生方向改变,并使微管阵列重新定向,最终预测细胞分裂方向。在张力较低的情况下,微管不稳定,而细胞的拉伸,无论是通过损伤还是外部抽吸,都会立即诱导微管的聚合。在拉伸的细胞部分中微管的丰度增加,导致微管阵列的重新定向,并最终告知细胞分裂面。这为通过机械力对细胞分裂进行灵活的重新排列提供了一个长期以来寻求的机制,用于组织重建和植物结构。

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