A Defective Vacuolar Proton Pump Enhances Aluminum Tolerance by Reducing Vacuole Sequestration of Organic Acids
Author(s) -
Feng Zhang,
Xiaoyi Yan,
Xingbao Han,
RenJie Tang,
Moli Chu,
Yang Yang,
Yonghua Yang,
Fugeng Zhao,
Aigen Fu,
Sheng Luan,
Wenzhi Lan
Publication year - 2019
Publication title -
plant physiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.554
H-Index - 312
eISSN - 1532-2548
pISSN - 0032-0889
DOI - 10.1104/pp.19.00626
Subject(s) - apoplast , vacuole , atpase , mutant , arabidopsis thaliana , arabidopsis , secretion , chemistry , proton pump , v atpase , biochemistry , microbiology and biotechnology , biology , cytoplasm , enzyme , gene , cell wall
Plants cope with aluminum (Al) toxicity by secreting organic acids (OAs) into the apoplastic space, which is driven by proton (H + ) pumps. Here, we show that mutation of vacuolar H + -translocating adenosine triphosphatase (H + -ATPase) subunit a2 (VHA-a2) and VHA-a3 of the vacuolar H + -ATPase enhances Al resistance in Arabidopsis ( Arabidopsis thaliana ). vha-a2 vha-a3 mutant plants displayed less Al sensitivity with less Al accumulation in roots compared to wild-type plants when grown under excessive Al 3+ Interestingly, in response to Al 3+ exposure, plants showed decreased vacuolar H + pump activity and reduced expression of VHA-a2 and VHA-a3 , which were accompanied by increased plasma membrane H + pump (PM H + -ATPase) activity. Genetic analysis of plants with altered PM H + -ATPase activity established a correlation between Al-induced increase in PM H + -ATPase activity and enhanced Al resistance in vha-a2 vha-a3 plants. We determined that external OAs, such as malate and citrate whose secretion is driven by PM H + -ATPase, increased with PM H + -ATPase activity upon Al stress. On the other hand, elevated secretion of malate and citrate in vha-a2 vha-a3 root exudates appeared to be independent of OAs metabolism and tolerance of phosphate starvation but was likely related to impaired vacuolar sequestration. These results suggest that coordination of vacuolar H + -ATPase and PM H + -ATPase dictates the distribution of OAs into either the vacuolar lumen or the apoplastic space that, in turn, determines Al tolerance capacity in plants.
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