Indole-3-acetic acid (IAA) synthesis in the biocontrol strain CHA0 of Pseudomonas fluorescens: role of tryptophan side chain oxidase

Синтез индол-3-уксусной кислоты (ИУК) у биоконтрольного штамма CHA0 Pseudomonas fluorescens: роль оксидазы боковой цепи триптофана
Thomas Oberhänsli, Geneviève Défago, Dieter Haas
1991-10-01

Biocontrol of plant pathogensIndole-3-acetic acid synthesisPseudomonas fluorescens CHA0Tryptophan side chain oxidaseTryptophan transaminase
Pseudomonas fluorescens strain CHA0 is an effective biocontrol agent against soil-borne fungal plant pathogens. In this study, indole-3-acetic acid (IAA) biosynthesis in strain CHA0 was investigated. Two key enzyme activities were found to be involved: tryptophan side chain oxidase (TSO) and tryptophan transaminase. TSO was induced in the stationary growth phase. By fractionation of a cell extract of strain CHA0 on DEAE-Sepharose, two distinct peaks of constitutive tryptophan transaminase activity were detected. A pathway leading from tryptophan to IAA via indole-3-acetamide, which occurs in Pseudomonas syringae subsp. savastanoi, was not present in strain CHA0. IAA synthesis accounted for less than or equal to 1.5% of exogenous tryptophan consumed by resting cells of strain CHA0, indicating that the bulk of tryptophan was catabolized via yet another pathway involving anthranilic acid as an intermediate. Strain CHA750, a mutant lacking TSO activity, was obtained after Tn5 mutagenesis of strain CHA0. In liquid cultures (pH 6.8) supplemented with 10 mM-L-tryptophan, growing cells of strains CHA0 and CHA750 synthesized the same amount of IAA, presumably using the tryptophan transaminase pathway. In contrast, resting cells of strain CHA750 produced five times less IAA in a buffer (pH 6.0) containing 1 mM-L-tryptophan than did resting cells of the wild-type, illustrating the major contribution of TSO to IAA synthesis under these conditions. In artificial soils at pH approximately 7 or pH approximately 6, both strains had similar abilities to suppress take-all disease of wheat or black root rot of tobacco. This suggests that TSO-dependent IAA synthesis is not essential for disease suppression.
1
A TSO-deficient mutant produced fivefold less IAA than wild-type resting cells under low-pH, low-tryptophan conditions, but growing cells produced equal amounts through the transaminase pathway.
2
CHA0 lacks the indole-3-acetamide pathway from tryptophan to IAA found in Pseudomonas syringae subsp. savastanoi.
3
IAA biosynthesis in Pseudomonas fluorescens CHA0 involves tryptophan side chain oxidase (TSO) and tryptophan transaminase activities.
4
IAA synthesis represented no more than 1.5% of exogenous tryptophan consumed by resting CHA0 cells; most tryptophan was likely catabolized through an anthranilic-acid intermediate pathway.
5
TSO is induced during stationary-phase growth, whereas cell extracts contain two distinct constitutive tryptophan transaminase activities.
6
TSO-dependent IAA synthesis was not required for suppression of wheat take-all or tobacco black root rot in artificial soils at approximately pH 6 or 7.

Indole-3-acetic acid biosynthesis in the biocontrol strain CHA0 of Pseudomonas fluorescens

The roles of tryptophan side chain oxidase and tryptophan transaminase in IAA synthesis, including their condition-dependent contributions and relation to disease suppression

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1991-10-01
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Authors
Thomas Oberhänsli
Geneviève Défago
Dieter Haas
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