Plant Transport and Signalling Lab, ARC Centre of Excellence in Plant Energy Biology and School of Agriculture, Food and Wine, University of Adelaide, Waite Research Institute, Glen Osmond, South Australia, Australia.
College of Science and Engineering, Flinders University, Bedford Park, South Australia, Australia.
Plant Cell Environ. 2020 Oct;43(10):2443-2459. doi: 10.1111/pce.13845. Epub 2020 Aug 20.
Malate exudation through wheat (Triticum aestivum L) aluminium-activated malate transporter 1 (TaALMT1) confers Al tolerance at low pH, but is also activated by alkaline pH, and is regulated by and facilitates significant transport of gamma-aminobutyric acid (GABA, a zwitterionic buffer). Therefore, TaALMT1 may facilitate acidification of an alkaline rhizosphere by promoting exudation of both malate and GABA. Here, the performance of wheat near isogenic lines ET8 (Al -tolerant, high TaALMT1 expression) and ES8 (Al -sensitive, low TaALMT1 expression) are compared. Root growth (at 5 weeks) was higher for ET8 than ES8 at pH 9. ET8 roots exuded more malate and GABA at high pH and acidified the rhizosphere more rapidly. GABA and malate exudation was enhanced at high pH by the addition of aluminate in both ET8 and transgenic barley expressing TaALMT1. Xenopus laevis oocytes expressing TaALMT1 acidified an alkaline media more rapidly than controls corresponding to higher GABA efflux. TaALMT1 expression did not change under alkaline conditions but key genes involved in GABA turnover changed in accordance with a high rate of GABA synthesis. We propose that TaALMT1 plays a role in alkaline tolerance by exuding malate and GABA, possibly coupled to proton efflux.
小麦苹果酸转运蛋白 1(TaALMT1)通过将苹果酸外排到细胞外来赋予其在低 pH 条件下的耐铝性,但同时也被碱性 pH 激活,并且受其调控,还促进了γ-氨基丁酸(GABA,一种两性离子缓冲剂)的大量转运。因此,TaALMT1 可能通过促进苹果酸和 GABA 的同时外排来酸化碱性根际。在此,对小麦近等基因系 ET8(耐铝,高 TaALMT1 表达)和 ES8(铝敏感,低 TaALMT1 表达)的表现进行了比较。在 pH 值为 9 时,ET8 的根生长(5 周)高于 ES8。ET8 的根系在高 pH 条件下分泌更多的苹果酸和 GABA,并且更快地酸化根际。在 ET8 和表达 TaALMT1 的转基因大麦中,高 pH 条件下添加铝酸盐会增强 GABA 和苹果酸的外排。表达 TaALMT1 的非洲爪蟾卵母细胞比对照更快地酸化碱性培养基,相应地 GABA 外排速率更高。TaALMT1 的表达在碱性条件下没有变化,但与 GABA 合成速率高相关的 GABA 周转关键基因发生了变化。我们提出,TaALMT1 通过外排苹果酸和 GABA 来发挥其在耐碱性方面的作用,可能与质子外排偶联。