首页> 美国卫生研究院文献>Plant Physiology >Turgor Regulation in Osmotically Stressed Arabidopsis Epidermal Root Cells. Direct Support for the Role of Inorganic Ion Uptake as Revealed by Concurrent Flux and Cell Turgor Measurements
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Turgor Regulation in Osmotically Stressed Arabidopsis Epidermal Root Cells. Direct Support for the Role of Inorganic Ion Uptake as Revealed by Concurrent Flux and Cell Turgor Measurements

机译:渗透胁迫拟南芥表皮根细胞中的膨胀调节。并发通量和细胞充盈测量显示了对无机离子吸收作用的直接支持

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摘要

Hyperosmotic stress is known to significantly enhance net uptake of inorganic ions into plant cells. Direct evidence for cell turgor recovery via such a mechanism, however, is still lacking. In the present study, we performed concurrent measurements of net ion fluxes (with the noninvasive microelectrode ion flux estimation technique) and cell turgor changes (with the pressure-probe technique) to provide direct evidence that inorganic ion uptake regulates turgor in osmotically stressed Arabidopsis epidermal root cells. Immediately after onset of hyperosmotic stress (100/100 mm mannitol/sorbitol treatment), the cell turgor dropped from 0.65 to about 0.25 MPa. Turgor recovery started within 2 to 10 min after the treatment and was accompanied by a significant (30–80 nmol m−2 s−1) increase in uptake of K+, Cl, and Na+ by root cells. In most cells, almost complete (>90% of initial values) recovery of the cell turgor was observed within 40 to 50 min after stress onset. In another set of experiments, we combined the voltage-clamp and the microelectrode ion flux estimation techniques to show that this process is, in part, mediated by voltage-gated K+ transporters at the cell plasma membrane. The possible physiological significance of these findings is discussed.
机译:已知高渗胁迫会显着增强无机离子向植物细胞的净吸收。但是,仍然缺乏通过这种机制恢复细胞充盈的直接证据。在本研究中,我们同时进行了净离子通量(采用无创微电极离子通量估算技术)和细胞膨胀变化(采用压力探针技术)的测量,以提供直接证据表明无机离子的吸收可调节渗透胁迫下拟南芥表皮的膨胀。根细胞。高渗应激(100/100 mm甘露醇/山梨醇处理)发作后,细胞膨胀立即从0.65降至约0.25 MPa。处理后2至10分钟内开始恢复充血,并伴随着K -2 s -1 ) > + ,Cl -和Na + 的根细胞。在大多数细胞中,在应力发作后的40至50分钟内观察到细胞膨胀几乎完全恢复(> 90%的初始值)。在另一组实验中,我们结合了电压钳和微电极离子通量估计技术,表明该过程部分地由细胞质膜上的电压门控K + 转运蛋白介导。讨论了这些发现的可能的生理意义。

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