Literature DB >> 11986758

Gibberellin Biosynthesis in Plants and Fungi: A Case of Convergent Evolution?

Peter Hedden1, Andrew L. Phillips, Maria Cecilia Rojas, Esther Carrera, Bettina Tudzynski.   

Abstract

As well as being phytohormones, gibberellins (GAs) are present in some fungi and bacteria. Indeed, GAs were first discovered in the fungus Gibberella fujikuroi, from which gibberellic acid (GA3) and other GAs are produced commercially. Although higher plants and the fungus produce structurally identical GAs, there are important differences in the pathways and enzymes involved. This has become particularly apparent with the identification of almost all of the genes for GA-biosynthesis in Arabidopsis thaliana and G. fujikuroi, following the sequencing of the Arabidopsis genome and the detection of a GA-biosynthesis gene cluster in the fungus. For example, 3b-hydroxylation occurs early in the pathway in G. fujikuroi and is catalyzed by a cytochrome P450 monooxygenase, whereas it is usually the final step in plants and is catalyzed by 2-oxoglutarate-dependent dioxygenases. Similarly, 20-oxidation is catalyzed by dioxygenases in plants and a cytochrome P450 in the fungus. Even where cytochrome P450s have equivalent functions in plants and Gibberella, they are unrelated in terms of amino acid sequence. These profound differences indicate that higher plants and fungi have evolved their complex biosynthetic pathways to GAs independently and not by horizontal gene transfer.

Entities:  

Year:  2001        PMID: 11986758     DOI: 10.1007/s003440010037

Source DB:  PubMed          Journal:  J Plant Growth Regul        ISSN: 0721-7595            Impact factor:   4.169


  59 in total

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Authors:  Reuben J Peters
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2.  Regulation of the early GA biosynthesis pathway in pea.

Authors:  Sandra E Davidson; Stephen M Swain; James B Reid
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4.  The evolution of gene collectives: How natural selection drives chemical innovation.

Authors:  Michael A Fischbach; Christopher T Walsh; Jon Clardy
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Review 5.  Molecular basis and evolutionary pattern of GA-GID1-DELLA regulatory module.

Authors:  Yijun Wang; Dexiang Deng
Journal:  Mol Genet Genomics       Date:  2013-12-10       Impact factor: 3.291

6.  Functional conservation of the capacity for ent-kaurene biosynthesis and an associated operon in certain rhizobia.

Authors:  David M Hershey; Xuan Lu; Jiachen Zi; Reuben J Peters
Journal:  J Bacteriol       Date:  2013-10-18       Impact factor: 3.490

7.  Repression of gibberellin biosynthesis or signaling produces striking alterations in poplar growth, morphology, and flowering.

Authors:  Christine Zawaski; Mahita Kadmiel; Jim Pickens; Cathleen Ma; Steven Strauss; Victor Busov
Journal:  Planta       Date:  2011-07-27       Impact factor: 4.116

8.  The embryo MADS domain protein AGAMOUS-Like 15 directly regulates expression of a gene encoding an enzyme involved in gibberellin metabolism.

Authors:  Huai Wang; Leonardo V Caruso; A Bruce Downie; Sharyn E Perry
Journal:  Plant Cell       Date:  2004-04-14       Impact factor: 11.277

9.  Isolation and characterization of the gibberellin biosynthetic gene cluster in Sphaceloma manihoticola.

Authors:  Christiane Bömke; Maria Cecilia Rojas; Fan Gong; Peter Hedden; Bettina Tudzynski
Journal:  Appl Environ Microbiol       Date:  2008-06-20       Impact factor: 4.792

10.  An overview of gibberellin metabolism enzyme genes and their related mutants in rice.

Authors:  Tomoaki Sakamoto; Koutarou Miura; Hironori Itoh; Tomoko Tatsumi; Miyako Ueguchi-Tanaka; Kanako Ishiyama; Masatomo Kobayashi; Ganesh K Agrawal; Shin Takeda; Kiyomi Abe; Akio Miyao; Hirohiko Hirochika; Hidemi Kitano; Motoyuki Ashikari; Makoto Matsuoka
Journal:  Plant Physiol       Date:  2004-04-09       Impact factor: 8.340

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