低pH条件下拟南芥根毛对K^+的转运

Olga Babourina, B. Hawkins, R. Lew, I. Newman, S. Shabala
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引用次数: 39

摘要

植物在低pH下改变钾离子吸收的机制需要破译。一种可能性是,K+的获取受到质膜电位(Em)的严格控制,而细胞膜电位又受到外界ph的影响。为了验证这一假设,我们使用微电极离子通量测量(MIFE)技术研究了不同外部ph、KCl浓度和钳制Em下拟南芥根毛附近的K+和H +净通量。降低溶液pH会导致H+流入、K +流出和显著的em去极化。当外部pH值在5.5-6.0范围内时,向洗浴介质中添加K +会导致显著的净K +吸收。而在外部pH低于5.0时,K+有效性与净K+吸收量呈负相关。为了解释这一明显的悖论,测量了来自根毛表面的净K +和H+通量,同时将E - m夹在静止电位(大约)的上方和下方的不同值。-180 mV)。我们的数据显示,净K +通量对箝位电压有很强的依赖性。比静息电位更负的锁紧值导致根毛对K +的吸收显著增加;在较低的负值(-20 mV和0 mV)下箝位会导致显著的净K+流出细胞。对净H +通量也观察到类似的定性结果。我们的观察结果表明,通过改变E - m可以直接控制K +通量,并且表明E - m去极化可能是在低pH下观察到的K +流出的主要原因。
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K^+ transport by Arabidopsis root hairs at low pH
Mechanisms underlying changed K + uptake by plantsat low pH need to be deciphered. One possibility is that K+ acquisition is under the strict control of plasmamembrane potential (E m ), which,in turn, is affected by external pH. To test this hypothesis, we used themicroelectrode ion flux measurement (MIFE ) technique tostudy net K + and H +fluxes near Arabidopsis root hairs at different externalpH, KCl concentrations and clamped Em . Lowering the solution pH led to strong H+ influx, K + efflux andsignificant E m depolarisation.Addition of K + to the bathing media causedsignificant net K + uptake when external pH wasover the range 5.5–6.0. At external pH below 5.0, however, correlationbetween K + availability and net K+ uptake was negative. To explain this apparentparadox, measurements of net K + and H+ fluxes from the root hair surface were performedconcurrently with E m clamped at different values above and below the restingpotential (approx. –180 mV). Our data revealed a strong dependence ofnet K + flux on the clamping voltage. Clamping atvalues more negative than the resting potential caused a significant increasein K + uptake into the root hair; clamping at lessnegative values (–20 and 0 mV) caused significant net K+ efflux from the cell. Qualitatively similarresults were observed for net H + flux. Ourobservations indicate direct control of K + flux bychanging E m , and suggest thatE m depolarisation could be themain reason for the observed K + efflux at low pH.
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