Measuring the growth force of invasive plant cells using Flexure integrated Lab-on-a-Chip (FiLoC)

Mahmood Ghanbari, M. Packirisamy, A. Geitmann
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引用次数: 16

Abstract

The pollen tube is a tip growing cell that is able to invade plant tissues in order to accomplish its function — the delivery of sperm cells to the ovule. The pistillar tissues through which the tube has to elongate represent a formidable mechanical obstacle, but it is unknown how much force the growing tube is able to exert, or how mechanical impedance affects its growth behavior. We quantified the invasive force of individual pollen tubes using a microfluidic lab-on-a-chip device featuring a microscopic cantilever. Using finite element method the maximum invasive growth force of the growing pollen tube was determined to be in the microNewton range. Real time monitoring revealed that contact with the mechanical obstacle caused a shift in the peak frequency characterizing the oscillatory behavior of the pollen tube growth rate. This suggests the presence of a feedback-based control mechanism with a mechanical regulatory component.
Flexure integrated Lab-on-a-Chip (FiLoC)测量入侵植物细胞生长力
花粉管是一种顶端生长的细胞,它能够侵入植物组织,以完成其功能——将精子细胞输送到胚珠。试管必须通过的雌蕊组织代表了一个强大的机械障碍,但尚不清楚生长管能够施加多大的力,或者机械阻抗如何影响其生长行为。我们使用具有微观悬臂的微流控芯片实验室装置量化了单个花粉管的侵入力。利用有限元法确定了生长花粉管的最大侵入生长力在微牛顿范围内。实时监测结果显示,与机械障碍物的接触引起了表征花粉管生长速度振荡行为的峰值频率的变化。这表明存在一种基于反馈的控制机制和机械调节成分。
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