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PMID: 19941624 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Physiologic responses and gene diversity indicate olive alternative oxidase as a potential source for markers involved in efficient adventitious root induction.

Physiologia plantarum ·Vol. 137 ·No. 4 ·2009-12-00 ·Pages 532-52

Santos Macedo E, Cardoso HG, Hernández A, Peixe AA, Polidoros A, Ferreira A, Cordeiro A, Arnholdt-Schmitt B

Abstract

Olive (Olea europaea L.) trees are mainly propagated by adventitious rooting of semi-hardwood cuttings. However, efficient commercial propagation of valuable olive tree cultivars or landraces by semi-hardwood cuttings can often be restricted by a low rooting capacity. We hypothesize that root induction is a plant cell reaction linked to oxidative stress and that activity of stress-induced alternative oxidase (AOX) is importantly involved in adventitious rooting. To identify AOX as a source for potential functional marker sequences that may assist tree breeding, genetic variability has to be demonstrated that can affect gene regulation. The paper presents an applied, multidisciplinary research approach demonstrating first indications of an important relationship between AOX activity and differential adventitious rooting in semi-hardwood cuttings. Root induction in the easy-to-root Portuguese cultivar 'Cobrançosa' could be significantly reduced by treatment with salicyl-hydroxamic acid, an inhibitor of AOX activity. On the contrary, treatment with H2O2 or pyruvate, both known to induce AOX activity, increased the degree of rooting. Recently, identification of several O. europaea (Oe) AOX gene sequences has been reported from our group. Here we present for the first time partial sequences of OeAOX2. To search for polymorphisms inside of OeAOX genes, partial OeAOX2 sequences from the cultivars 'Galega vulgar', 'Cobrançosa' and 'Picual' were cloned from genomic DNA and cDNA, including exon, intron and 3'-untranslated regions (3'-UTRs) sequences. The data revealed polymorphic sites in several regions of OeAOX2. The 3'-UTR was the most important source for polymorphisms showing 5.7% of variability. Variability in the exon region accounted 3.4 and 2% in the intron. Further, analysis performed at the cDNA from microshoots of 'Galega vulgar' revealed transcript length variation for the 3'-UTR of OeAOX2 ranging between 76 and 301 bp. The identified polymorphisms and 3'-UTR length variation can be explored in future studies for effects on gene regulation and a potential linkage to olive rooting phenotypes in view of marker-assisted plant selection.

MeSH Terms
3' Untranslated Regions/genetics Amino Acid Sequence Base Sequence Biomarkers/metabolism Enzyme Activators/pharmacology Enzyme Inhibitors/pharmacology Gene Expression Regulation, Plant/drug effects Genetic Variation/drug effects MicroRNAs/chemistry,genetics Mitochondrial Proteins Molecular Sequence Data Nucleic Acid Conformation Olea/drug effects,enzymology,genetics,physiology Oxidoreductases/antagonists & inhibitors,chemistry,genetics,metabolism Plant Proteins Plant Roots/drug effects,enzymology,growth & development Plant Shoots/drug effects,enzymology Polyadenylation/drug effects RNA, Messenger/genetics,metabolism Sequence Alignment
Chemicals
3' Untranslated Regions Biomarkers Enzyme Activators Enzyme Inhibitors MicroRNAs Mitochondrial Proteins Plant Proteins RNA, Messenger Oxidoreductases alternative oxidase
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Santos Macedo Elisete
ICAAM, University of Evora, 7002-554 Evora, Portugal.
Cardoso Hélia G
Hernández Alejandro
Peixe Augusto A
Polidoros Alexios
Ferreira Alexandre
Cordeiro António
Arnholdt-Schmitt Birgit
Article Info
Journal
Physiologia plantarum
Abbr.
Physiol Plant
ISSN
1399-3054
Published
2009-12-00
Pages
532-52
Language
English
Region
Denmark
NLM ID
1256322
Subset
IM
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