The influence of alternative pathways of respiration that utilize branched‐chain amino acids following water shortage in Arabidopsis

dc.contributor.authorPires, Marcel V.
dc.contributor.authorPereira Júnior, Adilson A.
dc.contributor.authorMedeiros, David B.
dc.contributor.authorDaloso, Danilo M.
dc.contributor.authorPham, Phuong Anh
dc.contributor.authorBarros, Kallyne A.
dc.contributor.authorEngqvist, Martin K. M.
dc.contributor.authorFlorian, Alexandra
dc.contributor.authorKrahnert, Ina
dc.contributor.authorMaurino, Veronica G.
dc.contributor.authorAraújo, Wagner L.
dc.contributor.authorFernie, Alisdair R.
dc.date.accessioned2018-05-17T14:54:13Z
dc.date.available2018-05-17T14:54:13Z
dc.date.issued2015-11-30
dc.description.abstractDuring dark‐induced senescence isovaleryl‐CoA dehydrogenase (IVDH) and D‐2‐hydroxyglutarate dehydrogenase (D‐2HGDH) act as alternate electron donors to the ubiquinol pool via the electron‐transfer flavoprotein/electron‐transfer flavoprotein:ubiquinone oxidoreductase (ETF/ETFQO) pathway. However, the role of this pathway in response to other stresses still remains unclear. Here, we demonstrated that this alternative pathway is associated with tolerance to drought in Arabidopsis. In comparison with wild type (WT) and lines overexpressing D‐2GHDH, loss‐of‐function etfqo‐1, d2hgdh‐2 and ivdh‐1 mutants displayed compromised respiration rates and were more sensitive to drought. Our results demonstrated that an operational ETF/ETFQO pathway is associated with plants' ability to withstand drought and to recover growth once water becomes replete. Drought‐induced metabolic reprogramming resulted in an increase in tricarboxylic acid (TCA) cycle intermediates and total amino acid levels, as well as decreases in protein, starch and nitrate contents. The enhanced levels of the branched‐chain amino acids in loss‐of‐function mutants appear to be related to their increased utilization as substrates for the TCA cycle under water stress. Our results thus show that mitochondrial metabolism is highly active during drought stress responses and provide support for a role of alternative respiratory pathways within this response.en
dc.formatpdfpt-BR
dc.identifier.issn13653040
dc.identifier.urihttps://doi.org/10.1111/pce.12682
dc.identifier.urihttp://www.locus.ufv.br/handle/123456789/19655
dc.language.isoengpt-BR
dc.publisherPlant, Cell and Environmentpt-BR
dc.relation.ispartofseriesv. 39, Issue 6, p. 1304-1319, June 2016pt-BR
dc.rightsOpen Accesspt-BR
dc.subjectBranched-chain amino acidspt-BR
dc.subjectDroughtpt-BR
dc.subjectETF/ ETFQO pathwaypt-BR
dc.subjectMetabolomicspt-BR
dc.subjectRespirationpt-BR
dc.subjectTricarboxylic acid cyclept-BR
dc.titleThe influence of alternative pathways of respiration that utilize branched‐chain amino acids following water shortage in Arabidopsisen
dc.typeArtigopt-BR

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