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PMID: 16460513 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Distinct and overlapping roles of two gibberellin 3-oxidases in Arabidopsis development.

The Plant journal : for cell and molecular biology ·Vol. 45 ·No. 5 ·2006-03-00 ·Pages 804-18

Mitchum MG, Yamaguchi S, Hanada A, Kuwahara A, Yoshioka Y, Kato T, Tabata S, Kamiya Y, Sun TP

Abstract

Gibberellin (GA) 3-oxidase, a class of 2-oxoglutarate-dependent dioxygenases, catalyzes the conversion of precursor GAs to their bioactive forms, thereby playing a direct role in determining the levels of bioactive GAs in plants. Gibberellin 3-oxidase in Arabidopsis is encoded by a multigene family consisting of at least four members, designated AtGA3ox1 to AtGA3ox4. It has yet to be investigated how each AtGA3ox gene contributes to optimizing bioactive GA levels during growth and development. Using quantitative real-time PCR analysis, we have shown that each AtGA3ox gene exhibits a unique organ-specific expression pattern, suggesting distinct developmental roles played by individual AtGA3ox members. To investigate the sites of synthesis of bioactive GA in plants, we generated transgenic Arabidopsis that carried AtGA3ox1-GUS and AtGA3ox2-GUS fusions. Comparisons of the GUS staining patterns of these plants with that of AtCPS-GUS from previous studies revealed the possible physical separation of the early and late stages of the GA pathway in roots. Phenotypic characterization and quantitative analysis of the endogenous GA content of ga3ox1 and ga3ox2 single and ga3ox1/ga3ox2 double mutants revealed distinct as well as overlapping roles of AtGA3ox1 and AtGA3ox2 in Arabidopsis development. Our results show that AtGA3ox1 and AtGA3ox2 are responsible for the synthesis of bioactive GAs during vegetative growth, but that they are dispensable for reproductive development. The stage-specific severe GA-deficient phenotypes of the ga3ox1/ga3ox2 mutant suggest that AtGA3ox3 and AtGA3ox4 are tightly regulated by developmental cues; AtGA3ox3 and AtGA3ox4 are not upregulated to compensate for GA deficiency during vegetative growth of the double mutant.

MeSH Terms
Arabidopsis/enzymology,genetics,growth & development Arabidopsis Proteins/metabolism Gene Expression Regulation, Developmental Gene Expression Regulation, Plant Mixed Function Oxygenases/metabolism Mutagenesis, Insertional Phenotype Reproduction
Chemicals
Arabidopsis Proteins Mixed Function Oxygenases gibberellin 3beta-hydroxylase
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Mitchum Melissa G
Developmental, Cell, and Molecular Biology Group, Department of Botany, Box 91000, Duke University, Durham, NC 27708-1000, USA.
Yamaguchi Shinjiro
Hanada Atsushi
Kuwahara Ayuko
Yoshioka Yasushi
Kato Tomohiko
Tabata Satoshi
Kamiya Yuji
Sun Tai-Ping
Article Info
Journal
The Plant journal : for cell and molecular biology
Abbr.
Plant J
ISSN
0960-7412
Published
2006-03-00
Pages
804-18
Language
English
Region
England
NLM ID
9207397
Subset
IM
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