Institute of Science and Technology Austria, Klosterneuburg, Austria.
Elife. 2024 Mar 5;12:RP91523. doi: 10.7554/eLife.91523.
Root gravitropic bending represents a fundamental aspect of terrestrial plant physiology. Gravity is perceived by sedimentation of starch-rich plastids (statoliths) to the bottom of the central root cap cells. Following gravity perception, intercellular auxin transport is redirected downwards leading to an asymmetric auxin accumulation at the lower root side causing inhibition of cell expansion, ultimately resulting in downwards bending. How gravity-induced statoliths repositioning is translated into asymmetric auxin distribution remains unclear despite PIN auxin efflux carriers and the Negative Gravitropic Response of roots (NGR) proteins polarize along statolith sedimentation, thus providing a plausible mechanism for auxin flow redirection. In this study, using a functional NGR1-GFP construct, we visualized the NGR1 localization on the statolith surface and plasma membrane (PM) domains in close proximity to the statoliths, correlating with their movements. We determined that NGR1 binding to these PM domains is indispensable for NGR1 functionality and relies on cysteine acylation and adjacent polybasic regions as well as on lipid and sterol PM composition. Detailed timing of the early events following graviperception suggested that both NGR1 repolarization and initial auxin asymmetry precede the visible PIN3 polarization. This discrepancy motivated us to unveil a rapid, NGR-dependent translocation of PIN-activating AGCVIII kinase D6PK towards lower PMs of gravity-perceiving cells, thus providing an attractive model for rapid redirection of auxin fluxes following gravistimulation.
根向重性弯曲是陆地植物生理学的一个基本方面。重力是通过富含淀粉的质体(平衡石)在中央根帽细胞底部的沉降来感知的。在感知重力之后,细胞间的生长素运输被重新定向向下,导致生长素在下根侧的不对称积累,从而抑制细胞扩展,最终导致向下弯曲。尽管 PIN 生长素外排载体和根的负向重性反应 (NGR) 蛋白沿着平衡石沉降极化,从而为生长素流的重新定向提供了一个合理的机制,但重力诱导的平衡石重新定位如何转化为不对称的生长素分布仍然不清楚。在这项研究中,我们使用功能性 NGR1-GFP 构建体,可视化了 NGR1 在平衡石表面和靠近平衡石的质膜 (PM) 域上的定位,与它们的运动相关。我们确定,NGR1 与这些 PM 域的结合对于 NGR1 功能是不可或缺的,并且依赖于半胱氨酸酰化和相邻的多碱性区域以及脂质和固醇 PM 组成。在重感知后早期事件的详细时间表明,NGR1 的重新极化和初始生长素的不对称性都先于可见的 PIN3 极化。这种差异促使我们揭示了一种快速的、依赖于 NGR 的 AGCVIII 激酶 D6PK 向感受重力的细胞下部 PM 的易位,从而为快速重定向生长素通量提供了一个有吸引力的模型。