Polyamine Oxidase 5 loss-of-function mutations in Arabidopsis thaliana trigger metabolic and transcriptional reprogramming and promote salt stress tolerance.

dc.contributor.author
Zarza, Xavier
dc.contributor.author
Atanasov, Kostadin Evgeniev
dc.contributor.author
Marco Picó, Francisco
dc.contributor.author
Arbona, Vicent
dc.contributor.author
Carrasco, Pedro
dc.contributor.author
Kopka, Joachim
dc.contributor.author
Fotopoulos, Vasileios
dc.contributor.author
Munnik, Teun
dc.contributor.author
Gómez-Cadenas, Aurelio
dc.contributor.author
Fernández Tiburcio, Antonio
dc.contributor.author
Alcázar Hernández, Rubén
dc.date.issued
2016-05-04T13:51:37Z
dc.date.issued
2017-01-21T23:01:11Z
dc.date.issued
2016-01-21
dc.date.issued
2016-05-04T13:51:43Z
dc.identifier
0140-7791
dc.identifier
https://hdl.handle.net/2445/98300
dc.identifier
657899
dc.identifier
26791972
dc.description.abstract
The family of polyamine oxidases (PAO) in Arabidopsis (AtPAO1-5) mediates polyamine (PA) back-conversion, which reverses the PA biosynthetic pathway from spermine, and its structural isomer thermospermine (tSpm), into spermidine and then putrescine. Here, we have studied the involvement of PA back-conversion in Arabidopsis salinity tolerance. AtPAO5 is the Arabidopsis PAO gene member most transcriptionally induced by salt stress. Two independent loss-of-function mutants (atpao5-2 and atpao5-3) were found to exhibit constitutively higher tSpm levels, with associated increased salt tolerance. Using global transcriptional and metabolomic analyses, the underlying mechanisms were studied. Stimulation of abscisic acid and jasmonates (JA) biosynthesis, and accumulation of important compatible solutes, such as sugars, polyols and proline, as well as TCA cycle intermediates were observed in atpao5 mutants under salt stress. Expression analyses indicate that tSpm modulates the transcript levels of several target genes, including many involved in the biosynthesis and signaling of JA, some of which are already known to promote salinity tolerance. Transcriptional modulation by tSpm is isomer-dependent, thus demonstrating the specificity of this response. Overall, we conclude that tSpm triggers metabolic and transcriptional reprogramming that promotes salt stress tolerance in Arabidopsis.
dc.format
39 p.
dc.format
application/pdf
dc.format
application/pdf
dc.language
eng
dc.publisher
John Wiley & Sons
dc.relation
Versió postprint del document publicat a: http://dx.doi.org/10.1111/pce.12714
dc.relation
Plant Cell and Environment, 2016
dc.relation
http://dx.doi.org/10.1111/pce.12714
dc.rights
(c) John Wiley & Sons, 2016
dc.rights
info:eu-repo/semantics/openAccess
dc.source
Articles publicats en revistes (Biologia, Sanitat i Medi Ambient)
dc.subject
Arabidopsis thaliana
dc.subject
Poliamines
dc.subject
Metabòlits
dc.subject
Sals
dc.subject
Arabidopsis thaliana
dc.subject
Polyamines
dc.subject
Metabolites
dc.subject
Salts
dc.title
Polyamine Oxidase 5 loss-of-function mutations in Arabidopsis thaliana trigger metabolic and transcriptional reprogramming and promote salt stress tolerance.
dc.type
info:eu-repo/semantics/article
dc.type
info:eu-repo/semantics/acceptedVersion


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