Key Laboratory of Ministry of Education for Genetic Breeding and Multiple Utilization of Crops, Fujian Agriculture and Forestry University, Fuzhou 350002, China.
School of Life Sciences and State Key Laboratory of Agrobiotechnology, The Chinese University of Hong Kong, Hong Kong.
J Exp Bot. 2017 Mar 1;68(7):1731-1741. doi: 10.1093/jxb/erx040.
Phosphorus deficiency in soil is one of the major limiting factors for plant growth. Plasma membrane H+-ATPase (PM H+-ATPase) plays an important role in the plant response to low-phosphorus stress (LP). However, few details are known regarding the action of PM H+-ATPase in mediating root proton (H+) flux and root growth under LP. In this study, we investigated the involvement and function of different Arabidopsis PM H+-ATPase genes in root H+ flux in response to LP. First, we examined the expressions of all Arabidopsis PM H+-ATPase gene family members (AHA1-AHA11) under LP. Expression of AHA2 and AHA7 in roots was enhanced under this condition. When the two genes were deficient in their respective Arabidopsis mutant plants, root growth and responses of the mutants to LP were highly inhibited compared with the wild-type plant. AHA2-deficient plants exhibited reduced primary root elongation and lower H+ efflux in the root elongation zone. AHA7-deficient plants exhibited reduced root hair density and lower H+ efflux in the root hair zone. The modulation of H+ efflux by AHA2 or AHA7 was affected by the action of 14-3-3 proteins and/or auxin regulatory pathways in the context of root growth and response to LP. Our results suggest that under LP conditions, AHA2 acts mainly to modulate primary root elongation by mediating H+ efflux in the root elongation zone, whereas AHA7 plays an important role in root hair formation by mediating H+ efflux in the root hair zone.
土壤中的磷缺乏是植物生长的主要限制因素之一。质膜 H+-ATPase(PM H+-ATPase)在植物对低磷胁迫(LP)的响应中起着重要作用。然而,关于 PM H+-ATPase在介导根质子(H+)流和 LP 下根生长中的作用,人们知之甚少。在这项研究中,我们研究了不同拟南芥 PM H+-ATPase 基因在 LP 下响应中根 H+流的参与和功能。首先,我们检查了所有拟南芥 PM H+-ATPase 基因家族成员(AHA1-AHA11)在 LP 下的表达情况。AHA2 和 AHA7 在根中的表达在这种条件下增强。当这两个基因在各自的拟南芥突变体植物中缺失时,与野生型植物相比,根生长和突变体对 LP 的反应受到高度抑制。AHA2 缺陷型植物表现出初级主根伸长减少和根伸长区 H+外排减少。AHA7 缺陷型植物表现出根毛密度降低和根毛区 H+外排减少。在根生长和对 LP 的响应中,AHA2 或 AHA7 对 H+外排的调节受 14-3-3 蛋白和/或生长素调节途径的作用影响。我们的研究结果表明,在 LP 条件下,AHA2 主要通过调节根伸长区的 H+外排来调节初级主根伸长,而 AHA7 通过调节根毛区的 H+外排在根毛形成中起着重要作用。