Agronomy Department, Key Laboratory of Crop Germplasm Resource of Zhejiang Province, Zhejiang University, Hangzhou, China.
School of Science and Health, Hawkesbury Institute for the Environment, Western Sydney University, Penrith, NSW, Australia.
Plant Cell Physiol. 2018 Oct 1;59(10):1976-1989. doi: 10.1093/pcp/pcy116.
Our previous studies showed that high salt tolerance in Tibetan wild barley accessions was associated with HvHKT1;1, a member of the high-affinity potassium transporter family. However, molecular mechanisms of HvHKT1;1 for salt tolerance and its roles in K+/Na+ homeostasis remain to be elucidated. Functional characterization of HvHKT1;1 was conducted in the present study. NaCl-induced transcripts of HvHKT1;1 were significantly higher in the roots of Tibetan wild barley XZ16 relative to other genotypes, being closely associated with its higher biomass and lower tissue Na+ content under salt stress. Heterologous expression of HvHKT1;1 in Saccharomyces cerevisiae (yeast) and Xenopus laevis oocytes showed that HvHKT1;1 had higher selectivity for Na+ over K+ and other monovalent cations. HvHKT1;1 was found to be localized at the cell plasma membrane of root stele and epidermis. Knock-down of HvHKT1;1 in barley led to higher Na+ accumulation in both roots and leaves, while overexpression of HvHKT1;1 in salt-sensitive Arabidopsis hkt1-4 and sos1-12 loss-of-function lines resulted in significantly less shoot and root Na+ accumulation. Additionally, microelectrode ion flux measurements and root elongation assay revealed that the transgenic Arabidopsis plants exhibited a remarkable capacity for regulation of Na+, K+, Ca2+ and H+ homeostasis under salt stress. These results indicate that HvHKT1;1 is critical in radial root Na+ transport, which eventually reduces shoot Na+ accumulation. Additionally, HvHKT1;1 may be indirectly involved in retention of K+ and Ca2+ in root cells, which also improves plant salt tolerance.
我们之前的研究表明,藏野生青稞品系的高耐盐性与 HvHKT1;1 有关,HvHKT1;1 是高亲和力钾转运蛋白家族的一员。然而,HvHKT1;1 耐盐的分子机制及其在 K+/Na+稳态中的作用仍有待阐明。本研究对 HvHKT1;1 进行了功能表征。在盐胁迫下,与其他基因型相比,藏野生青稞 XZ16 根系中 HvHKT1;1 的 NaCl 诱导转录本显著升高,这与其生物量较高和组织 Na+含量较低密切相关。在酿酒酵母(酵母)和非洲爪蟾卵母细胞中异源表达 HvHKT1;1 表明,HvHKT1;1 对 Na+的选择性高于 K+和其他单价阳离子。发现 HvHKT1;1 定位于根中柱和表皮的细胞质膜上。大麦中 HvHKT1;1 的敲低导致根和叶中 Na+积累增加,而在盐敏感的拟南芥 hkt1-4 和 sos1-12 功能丧失系中过表达 HvHKT1;1 导致地上部和根部 Na+积累明显减少。此外,微电极离子通量测量和根伸长测定表明,转基因拟南芥植物在盐胁迫下具有显著调节 Na+、K+、Ca2+和 H+稳态的能力。这些结果表明,HvHKT1;1 在径向根 Na+转运中起关键作用,从而减少地上部 Na+积累。此外,HvHKT1;1 可能间接参与根细胞中 K+和 Ca2+的保留,这也提高了植物的耐盐性。