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伞藻的运输系统:低渗和高渗膨压调节。

The transport systems of Ventricaria ventricosa: hypotonic and hypertonic turgor regulation.

作者信息

Bisson M A, Beilby M J

机构信息

Department of Biological Sciences, State University of New York at Buffalo, Cooke Hall 109, Box 1300, Buffalo, NY 14260-1300, USA.

出版信息

J Membr Biol. 2002 Nov 1;190(1):43-56. doi: 10.1007/s00232-002-1022-8.

Abstract

The time course of hypertonic and hypotonic turgor regulation was studied in Ventricaria (Valonia) using pressure probe and I/V(current-voltage) analysis. Of 11 cells, 9 exhibited hypertonic turgor regulation, ranging from 100% regulation in 150 min to 14% regulation (14% recovery of the decrease in turgor) in 314 min. Some cells began regulating immediately, others took up to 90 min to begin. The resting PD (potential difference) became more positive in most cells. The I/V characteristics became more nonlinear with high resistance between -150 and -20 mV and negative conductance region near -70 mV. Prolonged (16 sec) voltage clamps to negative levels (-100 to -150 mV) showed progressively more rapid current turn-off, but subsequent I/V characteristics were not affected. Clamping to +150 mV, however, abolished the high conductance between -50 and +100 mV to yield a uniform high resistance I/V characteristic, similar to that in high [K+]o. Decreasing illumination from 2.02 micromol sec(-1) m(-2) to 0.5 micromol sec(-1)1 m(-2) had a similar effect. Two out of a total of three cells exhibited hypotonic turgor regulation. Both cells started regulating within minutes and achieved near 50% regulation within 50 min. The PD became more negative. The I/V curves exhibited high resistance between +50 and +150 mV. The characteristics were similar to those in cells exposed to low [K+]o. Prolonged voltage clamps to both negative and positive levels showed slow current increase. Decreased illumination increased the membrane resistance.

摘要

利用压力探针和I/V(电流-电压)分析研究了伞藻属(伞藻)细胞中高渗和低渗膨压调节的时间进程。在11个细胞中,9个表现出高渗膨压调节,调节范围从150分钟内的100%调节到314分钟内的14%调节(膨压下降恢复14%)。一些细胞立即开始调节,另一些细胞则需要长达90分钟才开始调节。大多数细胞的静息PD(电位差)变得更正。I/V特性在-150至-20 mV之间具有更高的电阻且在-70 mV附近具有负电导区域,从而变得更加非线性。向负电位水平(-100至-150 mV)进行长时间(16秒)电压钳制显示电流关闭逐渐加快,但随后的I/V特性不受影响。然而,钳制到+150 mV会消除-50至+100 mV之间的高电导,从而产生类似于高[K+]o中的均匀高电阻I/V特性。将光照强度从2.02微摩尔·秒-1·米-2降低到0.5微摩尔·秒-1·米-2具有类似的效果。在总共三个细胞中,有两个表现出低渗膨压调节。两个细胞均在数分钟内开始调节,并在50分钟内实现了近50%的调节。PD变得更负。I/V曲线在+50至+150 mV之间表现出高电阻。这些特性类似于暴露于低[K+]o的细胞中的特性。向负电位和正电位水平进行长时间电压钳制均显示电流缓慢增加。光照降低增加了膜电阻。

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