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感受力:花粉管如何应对障碍物。

Feeling the force: how pollen tubes deal with obstacles.

机构信息

Multi-Scale Robotics Laboratory, Department of Mechanical and Process Engineering, ETH Zürich, Zürich, 8092, Switzerland.

Department of Plant and Microbial Biology and Zürich-Basel Plant Science Center, University of Zürich, Zürich, 8008, Switzerland.

出版信息

New Phytol. 2018 Oct;220(1):187-195. doi: 10.1111/nph.15260. Epub 2018 Jun 15.

Abstract

Physical forces are involved in the regulation of plant development and morphogenesis by translating mechanical stress into the modification of physiological processes, which, in turn, can affect cellular growth. Pollen tubes respond rapidly to external stimuli and provide an ideal system to study the effect of mechanical cues at the single-cell level. Here, pollen tubes were exposed to mechanical stress while monitoring the reconfiguration of their growth and recording the generated forces in real-time. We combined a lab-on-a-chip device with a microelectromechanical systems (MEMS)-based capacitive force sensor to mimic and quantify the forces that are involved in pollen tube navigation upon confronting mechanical obstacles. Several stages of obstacle avoidance were identified, including force perception, growth adjustment and penetration. We have experimentally determined the perceptive force threshold, which is the force threshold at which the pollen tube reacts to an obstacle, for Lilium longiflorum and Arabidopsis thaliana. In addition, the method we developed provides a way to calculate turgor pressure based on force and optical data. Pollen tubes sense physical barriers and actively adjust their growth behavior to overcome them. Furthermore, our system offers an ideal platform to investigate intracellular activity during force perception and growth adaption in tip growing cells.

摘要

物理力通过将机械压力转化为生理过程的改变来参与植物发育和形态发生的调控,而这反过来又可以影响细胞生长。花粉管对外部刺激迅速做出反应,为研究单细胞水平机械线索的影响提供了理想的系统。在这里,花粉管在受到机械压力的同时,其生长的重新配置被监测,并实时记录产生的力。我们将片上实验室设备与基于微机电系统(MEMS)的电容力传感器相结合,模拟和量化了花粉管在遇到机械障碍物时导航所涉及的力。确定了几个障碍物回避阶段,包括力感知、生长调整和穿透。我们已经通过实验确定了百合和拟南芥的感知力阈值,即花粉管对障碍物做出反应的力阈值。此外,我们开发的方法提供了一种根据力和光学数据计算膨压的方法。花粉管感知物理障碍,并主动调整其生长行为以克服这些障碍。此外,我们的系统为研究尖端生长细胞中力感知和生长适应期间的细胞内活性提供了理想的平台。

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