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Osmolyte cooperation affects turgor dynamics in plants

机译:渗透剂合作影响植物的膨胀动力学

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摘要

Scientists have identified turgor-based actuation as a fundamental mechanism in plant movements. Plant cell turgor is generated by water influx due to the osmolyte concentration gradient through the cell wall and the plasma membrane behaving as an osmotic barrier. Previous studies have focused on turgor modulation with respect to potassium chloride (KCl) concentration changes, although KCl is not efficiently retained in the cell, and many other compounds, including L-glutamine (L-Gln) and D-glucose (D-Glc), are present in the cytosol. In fact, the contributions of other osmolytes to turgor dynamics remain to be elucidated. Here, we show the association of osmolytes and their consequent cooperative effects on the time-dependent turgor profile generated in a model cytosol consisting of KCl, D-Glc and L-Gln at experimentally measured plant motor/generic cell concentrations and at modified concentrations. We demonstrate the influence and association of the osmolytes using osmometry and NMR measurements. We also show, using a plant cell-inspired device we previously developed, that osmolyte complexes, rather than single osmolytes, permit to obtain higher turgor required by plant movements. We provide quantitative cues for deeper investigations of osmolyte transport for plant movement, and reveal the possibility of developing osmotic actuators exploiting a dynamically varying concentration of osmolytes.
机译:科学家已经将基于膨胀的致动确定为植物运动的基本机制。由于通过细胞壁和质膜表现为渗透屏障的渗透液浓度梯度,水的流入导致植物细胞膨胀。先前的研究集中在相对于氯化钾(KCl)浓度变化的膨胀调节,尽管KCl不能有效保留在细胞中,还有许多其他化合物,包括L-谷氨酰胺(L-Gln)和D-葡萄糖(D-Glc) )存在于细胞质中。实际上,其他渗透压对膨胀动力学的贡献仍有待阐明。在这里,我们显示了渗透压的关联及其在由KCl,D-Glc和L-Gln组成的模型细胞质中在实验测量的植物运动/遗传细胞浓度和修饰浓度下产生的随时间变化的膨胀曲线的协同作用。我们证明了渗透压的渗透率和核磁共振测量的影响和关联。我们还表明,使用我们先前开发的植物细胞启发性装置,渗透压复合物(而不是单一渗透压)可以获得植物运动所需的更高膨松度。我们提供定量线索,以更深入地研究用于植物运动的渗透液运输,并揭示开发利用渗透浓度动态变化的渗透致动器的可能性。

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