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表皮细胞与拓扑学难题。

Pavement cells and the topology puzzle.

作者信息

Carter Ross, Sánchez-Corrales Yara E, Hartley Matthew, Grieneisen Verônica A, Marée Athanasius F M

机构信息

Computational and Systems Biology, John Innes Centre, Norwich NR4 7UH, UK.

Computational and Systems Biology, John Innes Centre, Norwich NR4 7UH, UK

出版信息

Development. 2017 Dec 1;144(23):4386-4397. doi: 10.1242/dev.157073. Epub 2017 Oct 30.

DOI:10.1242/dev.157073
PMID:29084800
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5769637/
Abstract

D'Arcy Thompson emphasised the importance of surface tension as a potential driving force in establishing cell shape and topology within tissues. Leaf epidermal pavement cells grow into jigsaw-piece shapes, highly deviating from such classical forms. We investigate the topology of developing leaves composed solely of pavement cells. Image analysis of around 50,000 cells reveals a clear and unique topological signature, deviating from previously studied epidermal tissues. This topological distribution is established early during leaf development, already before the typical pavement cell shapes emerge, with topological homeostasis maintained throughout growth and unaltered between division and maturation zones. Simulating graph models, we identify a heuristic cellular division rule that reproduces the observed topology. Our parsimonious model predicts how and when cells effectively place their division plane with respect to their neighbours. We verify the predicted dynamics through tracking of 800 mitotic events, and conclude that the distinct topology is not a direct consequence of the jigsaw piece-like shape of the cells, but rather owes itself to a strongly life history-driven process, with limited impact from cell-surface mechanics.

摘要

达西·汤普森强调了表面张力作为在组织内建立细胞形状和拓扑结构的潜在驱动力的重要性。叶片表皮铺路细胞生长成拼图形状,与这种经典形式有很大偏差。我们研究仅由铺路细胞组成的发育中叶片的拓扑结构。对约50000个细胞的图像分析揭示了一种清晰且独特的拓扑特征,与先前研究的表皮组织不同。这种拓扑分布在叶片发育早期就已建立,甚至在典型的铺路细胞形状出现之前,并且在整个生长过程中保持拓扑稳态,在分裂区和成熟区之间没有变化。通过模拟图模型,我们确定了一种启发式的细胞分裂规则,该规则再现了观察到的拓扑结构。我们简约的模型预测了细胞如何以及何时相对于其邻居有效地放置其分裂平面。我们通过跟踪800个有丝分裂事件验证了预测的动态过程,并得出结论,这种独特的拓扑结构不是细胞拼图状形状的直接结果,而是源于一个由生命历史强烈驱动的过程,细胞表面力学的影响有限。

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