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在高亲和力浓度范围内,AtHAK5和AtAKT1对钾离子吸收的相对贡献。

Relative contribution of AtHAK5 and AtAKT1 to K+ uptake in the high-affinity range of concentrations.

作者信息

Rubio Francisco, Nieves-Cordones Manuel, Alemán Fernando, Martínez Vicente

机构信息

Departamento de Nutrición Vegetal, Centro de Edafología y Biología Aplicada del Segura-CSIC, Apartado de Correos 164, Murcia 30100, Spain.

出版信息

Physiol Plant. 2008 Dec;134(4):598-608. doi: 10.1111/j.1399-3054.2008.01168.x.

Abstract

The relative contribution of the high-affinity K(+) transporter AtHAK5 and the inward rectifier K(+) channel AtAKT1 to K(+) uptake in the high-affinity range of concentrations was studied in Arabidopsis thaliana ecotype Columbia (Col-0). The results obtained with wild-type lines, with T-DNA insertion in both genes and specific uptake inhibitors, show that AtHAK5 and AtAKT1 mediate the NH4+-sensitive and the Ba(2+)-sensitive components of uptake, respectively, and that they are the two major contributors to uptake in the high-affinity range of Rb(+) concentrations. Using Rb(+) as a K(+) analogue, it was shown that AtHAK5 mediates absorption at lower Rb(+) concentrations than AtAKT1 and depletes external Rb(+) to values around 1 muM. Factors such as the presence of K(+) or NH4+ during plant growth determine the relative contribution of each system. The presence of NH4+ in the growth solution inhibits the induction of AtHAK5 by K(+) starvation. In K(+)-starved plants grown without NH4+, both systems are operative, but when NH4+ is present in the growth solution, AtAKT1 is probably the only system mediating Rb(+) absorption, and the capacity of the roots to deplete Rb(+) is reduced.

摘要

在拟南芥生态型哥伦比亚(Col-0)中,研究了高亲和力钾离子转运体AtHAK5和内向整流钾离子通道AtAKT1在高浓度范围内对钾离子吸收的相对贡献。利用野生型品系、两个基因均有T-DNA插入的品系以及特异性吸收抑制剂所获得的结果表明,AtHAK5和AtAKT1分别介导了吸收过程中对铵离子敏感和对钡离子敏感的组分,并且它们是铷离子浓度高亲和力范围内吸收的两个主要贡献者。使用铷离子作为钾离子类似物,结果表明AtHAK5在比AtAKT1更低的铷离子浓度下介导吸收,并将外部铷离子浓度消耗至约1 μM。植物生长过程中钾离子或铵离子的存在等因素决定了每个系统的相对贡献。生长溶液中铵离子的存在会抑制钾离子饥饿对AtHAK5的诱导作用。在无铵离子条件下生长的钾离子饥饿植株中,两个系统均起作用,但当生长溶液中存在铵离子时,AtAKT1可能是介导铷离子吸收的唯一系统,并且根系耗尽铷离子的能力会降低。

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