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盐度诱导的HKT表达对于刺茄(Solanum scabrum Mill.)叶片中的Na(+) 排斥可能至关重要,但对茄子(Solanum melongena L.)则不然。

Salinity-induced expression of HKT may be crucial for Na(+) exclusion in the leaf blade of huckleberry (Solanum scabrum Mill.), but not of eggplant (Solanum melongena L.).

作者信息

Assaha Dekoum V M, Mekawy Ahmad Mohammad M, Ueda Akihiro, Saneoka Hirofumi

机构信息

Graduate School of Biosphere Science, Hiroshima University, Higashi-Hiroshima 739-8528 Japan.

Graduate School of Biosphere Science, Hiroshima University, Higashi-Hiroshima 739-8528 Japan.

出版信息

Biochem Biophys Res Commun. 2015 May 1;460(2):416-21. doi: 10.1016/j.bbrc.2015.03.048. Epub 2015 Mar 18.

Abstract

Reduced Na(+) accumulation in the leaf blade is an important aspect of salinity tolerance and high affinity K(+) transporters (HKTs) are known to play a significant role in the process. Huckleberry and eggplant have previously been shown to display 'excluder' and 'includer' characteristics, respectively, under salt stress, but the underlying mechanisms have not been investigated. Here, we isolated the cDNA of the HKT homologs, Solanum scabrum HKT (SsHKT) from huckleberry and Solanum melongena HKT (SmHKT) from eggplant, and analyzed their expressions in different tissues under salt stress. SsHKT expression was markedly induced in the root (28-fold) and stem (7-fold), with a corresponding increase in Na(+) accumulation of 52% and 29%, respectively. Conversely, eggplant accumulated 60% total Na(+) in the leaf blade, with a lower SmHKT expression level in the root (3-fold). Huckleberry also maintained a higher K(+)/Na(+) ratio in the leaf blade compared to eggplant, due to the reduction of its Na(+) concentration and unaltered K(+) concentration. Functional analysis demonstrated that SsHKT-mediated Na(+) influx inhibited yeast growth under Na(+) stress, and that SsHKT did not complement the growth of the K(+) uptake-deficient CY162 strain under K(+)-limiting conditions. These results suggest that the Na(+) accumulation characteristics of both plants are caused by the differential expression of HKT genes, with SsHKT exerting a greater control over the ability of Na(+) to reach the leaf blade in huckleberry, than SmHKT does in eggplant.

摘要

叶片中Na(+)积累的减少是耐盐性的一个重要方面,已知高亲和力K(+)转运蛋白(HKTs)在这一过程中发挥着重要作用。先前已证明,越橘和茄子在盐胁迫下分别表现出“排盐者”和“积盐者”的特征,但尚未对其潜在机制进行研究。在此,我们从越橘中分离出HKT同源基因茄属糙毛茄HKT(SsHKT)的cDNA,从茄子中分离出茄属茄HKT(SmHKT)的cDNA,并分析了它们在盐胁迫下不同组织中的表达情况。SsHKT的表达在根(28倍)和茎(7倍)中显著诱导,Na(+)积累相应分别增加了52%和29%。相反,茄子叶片中积累了60%的总Na(+),根中SmHKT的表达水平较低(3倍)。与茄子相比,越橘叶片中也保持了较高的K(+)/Na(+)比值,这是由于其Na(+)浓度降低而K(+)浓度未改变。功能分析表明,SsHKT介导的Na(+)内流在Na(+)胁迫下抑制酵母生长,并且在K(+)限制条件下SsHKT不能补充K(+)吸收缺陷型CY162菌株的生长。这些结果表明,两种植物的Na(+)积累特征是由HKT基因的差异表达引起的,与茄子中的SmHKT相比,SsHKT对越橘中Na(+)到达叶片的能力具有更大的控制作用。

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