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叶绿体包膜离子通道介导的电中性钾离子和氢离子交换影响基质pH值和光合作用。

Stromal pH and Photosynthesis Are Affected by Electroneutral K and H Exchange through Chloroplast Envelope Ion Channels.

作者信息

Wu W, Berkowitz G A

机构信息

Horticulture Department, Cook College, Rutgers-The State University of New Jersey, New Brunswick, New Jersey 08903.

出版信息

Plant Physiol. 1992 Feb;98(2):666-72. doi: 10.1104/pp.98.2.666.

Abstract

Potassium movement across the limiting membrane of the chloroplast inner envelope is known to be linked to counterex-change of protons. For this reason, K(+) efflux is known to facilitate stromal acidification and the resultant photosynthetic inhibition. However, the specific nature of the chloroplast envelope proteins that facilitate K(+) fluxes, and the biophysical mechanism which links these cation currents to H(+) counterflux, is not characterized. It was the objective of this work to elucidate the nature of the system regulating K(+) flux linked to H(+) counterflux across the chloroplast envelope. In the absence of external K(+), exposure of spinach (Spinacia oleracea) chloroplasts to the K(+) ionophore valinomycin was found to increase the rate of K(+) efflux and H(+) influx. These data were interpreted as suggesting that H(+) counterexchange must be indirectly linked to movement of K(+) across the envelope. Studies using the K(+) channel blocker tetraethylammonium indicated that K(+) likely moves, in a uniport fashion, into or out of the stroma through a monovalent cation channel in the envelope. Blockage of K(+) efflux from the stroma by exposure to tetraethylammonium was found to restrict H(+) influx, further substantiating an indirect linkage of these cation currents. Further studies comparing the effect of exogenous H(+) ionophores and K(+)/H(+) exchangers suggested that K(+) uniport through this ion channel likely is the main endogenous pathway for K(+) currents across the envelope. These experiments were also consistent with the presence of a proton channel in the envelope. Movement of H(+) through this channel was speculated to be regulated and rate limited by an electroneutral requirement for K(+) countercurrents through the separate K(+) uniport pathway. K(+) and H(+) fluxes across the chloroplast envelope were envisioned to be interrelated via this mechanism. The significant effect of cation currents across the envelope, as mediated by these channels, on photosynthetic capacity of the isolated chloroplast was also demonstrated.

摘要

已知钾离子跨叶绿体内膜限制膜的移动与质子的反向交换有关。因此,已知钾离子外流会促进基质酸化以及由此导致的光合作用抑制。然而,促进钾离子通量的叶绿体包膜蛋白的具体性质,以及将这些阳离子电流与质子反向通量联系起来的生物物理机制,尚未得到表征。这项工作的目的是阐明调节与质子反向通量相关的钾离子通量穿过叶绿体包膜的系统的性质。在没有外部钾离子的情况下,发现菠菜(Spinacia oleracea)叶绿体暴露于钾离子载体缬氨霉素会增加钾离子外流和氢离子内流的速率。这些数据被解释为表明质子反向交换必须与钾离子跨包膜的移动间接相关。使用钾离子通道阻滞剂四乙铵的研究表明,钾离子可能以单向运输的方式通过包膜中的单价阳离子通道进出基质。发现通过暴露于四乙铵来阻断钾离子从基质中的外流会限制氢离子内流,进一步证实了这些阳离子电流的间接联系。进一步比较外源氢离子载体和钾离子/氢离子交换剂作用的研究表明,通过这个离子通道的钾离子单向运输可能是钾离子穿过包膜的主要内源性途径。这些实验也与包膜中存在质子通道一致。推测氢离子通过这个通道的移动受到通过单独的钾离子单向运输途径的钾离子反向电流的电中性要求的调节和速率限制。钾离子和氢离子穿过叶绿体包膜的通量被设想通过这种机制相互关联。还证明了由这些通道介导的跨包膜的阳离子电流对分离叶绿体的光合能力有显著影响。

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