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基于形成层活动的计算模型为模拟植物的径向生长提供了一个调控框架。

Computational modeling of cambium activity provides a regulatory framework for simulating radial plant growth.

机构信息

Centre for Organismal Studies, Heidelberg University, Heidelberg, Germany.

Department of Agricultural Sciences, Università degli Studi di Napoli Federico II, Napoli, Italy.

出版信息

Elife. 2023 Mar 10;12:e66627. doi: 10.7554/eLife.66627.

Abstract

Precise organization of growing structures is a fundamental process in developmental biology. In plants, radial growth is mediated by the cambium, a stem cell niche continuously producing wood (xylem) and bast (phloem) in a strictly bidirectional manner. While this process contributes large parts to terrestrial biomass, cambium dynamics eludes direct experimental access due to obstacles in live-cell imaging. Here, we present a cell-based computational model visualizing cambium activity and integrating the function of central cambium regulators. Performing iterative comparisons of plant and model anatomies, we conclude that the receptor-like kinase PXY and its ligand CLE41 are part of a minimal framework sufficient for instructing tissue organization. By integrating tissue-specific cell wall stiffness values, we moreover probe the influence of physical constraints on tissue geometry. Our model highlights the role of intercellular communication within the cambium and shows that a limited number of factors are sufficient to create radial growth by bidirectional tissue production.

摘要

精确的生长结构组织是发育生物学的一个基本过程。在植物中,径向生长由形成层介导,形成层是一个干细胞生态位,以严格的双向方式不断产生木质部(木质部)和韧皮部(韧皮部)。虽然这一过程为陆地生物量做出了巨大贡献,但由于活体细胞成像中的障碍,形成层动力学难以进行直接的实验研究。在这里,我们提出了一个基于细胞的计算模型,可视化形成层的活性,并整合了中央形成层调节剂的功能。通过对植物和模型解剖结构的迭代比较,我们得出结论,类受体激酶 PXY 及其配体 CLE41 是一个最小框架的一部分,足以指导组织的形成。通过整合组织特异性细胞壁硬度值,我们进一步研究了物理约束对组织几何形状的影响。我们的模型突出了形成层内细胞间通讯的作用,并表明有限数量的因素足以通过双向组织产生来创造径向生长。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3bc0/10069871/7ec2995e6cc6/elife-66627-fig1.jpg

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