Microtubule flexibility, microtubule-based nucleation and ROP pattern co-alignment enhance protoxylem microtubule patterning.

IF 2.5 Quantitative plant biology Pub Date : 2025-01-27 eCollection Date: 2025-01-01 DOI:10.1017/qpb.2024.17
Bas Jacobs, Marco Saltini, Jaap Molenaar, Laura Filion, Eva E Deinum
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Abstract

The development of the water transporting xylem tissue in plants involves an intricate interplay of Rho-of-Plants (ROP) proteins and cortical microtubules to generate highly functional secondary cell wall patterns, such as the ringed or spiral patterns in early-developing protoxylem. We study the requirements of protoxylem microtubule band formation with simulations in CorticalSim, extended to include finite microtubule persistence length and a novel algorithm for microtubule-based nucleation. We find that microtubule flexibility facilitates pattern formation for all realistic degrees of mismatch between array and pattern orientation. At the same time, flexibility leads to more density loss, both from collisions and the microtubule-hostile gap regions, making it harder to maintain microtubule bands. Microtubule-dependent nucleation helps to counteract this effect by gradually shifting nucleation from the gap regions to the bands as microtubules disappear from the gaps. Our results reveal mechanisms that can result in robust protoxylem band formation.

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微管的灵活性、基于微管的成核和 ROP 模式的共同对齐增强了原胚乳微管的模式化。
植物输水木质部组织的发育涉及植物rhoof - plants (ROP)蛋白和皮质微管的复杂相互作用,以产生高功能的次生细胞壁图案,如早期发育的原始木质部的环状或螺旋形图案。我们在CorticalSim中模拟研究了原始木质部微管带形成的要求,扩展到包括有限微管持续长度和微管成核的新算法。我们发现微管的灵活性有助于阵列和模式方向之间所有实际程度的不匹配的模式形成。同时,由于碰撞和对微管不利的间隙区域,柔性会导致更多的密度损失,从而使维持微管带变得更加困难。微管依赖的成核有助于抵消这种影响,当微管从间隙中消失时,逐渐将成核从间隙区域转移到带。我们的研究结果揭示了可以导致强健的原木质部带形成的机制。
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