[PDF][PDF] Azospirillum brasilense indole-3-acetic acid biosynthesis: evidence for a non-tryptophan dependent pathway

E Prinsen, A Costacurta, K Michiels… - Molecular Plant …, 1993 - apsnet.org
E Prinsen, A Costacurta, K Michiels, J Vanderleyden, H Van Onckelen
Molecular Plant Microbe Interactions, 1993apsnet.org
Bacteria of the nitrogen-fixing genus Azospirillum live in association with roots of many
plants. Bacterial phytohormone synthesis is proposed to influence the host plant root
proliferation. Analysis of tryptophan (Trp), indole-3-acetamide (IAM), and indole-3-acetic
acid (IAA) synthesis of the mutant Azospirillum brasilense strain SpM7918 showed an
indoleacetamide accumulation concomitant with reduced indoleacetic acid synthesis. The
IAA deficiency, and IAM accumulation could be reversed with a specific cosmid from an A …
Bacteria of the nitrogen-fixing genus Azospirillum live in association with roots of many plants. Bacterial phytohormone synthesis is proposed to influence the host plant root proliferation. Analysis of tryptophan (Trp), indole-3-acetamide (IAM), and indole-3-acetic acid (IAA) synthesis of the mutant Azospirillum brasilense strain SpM7918 showed an indoleacetamide accumulation concomitant with reduced indoleacetic acid synthesis. The IAA deficiency, and IAM accumulation could be reversed with a specific cosmid from an A. brasilense Sp245 library. The identity of the indoleacetic acid and indoleacetamide produced was confirmed by HPLC with on-line mass spectrometry. Specific radioactivities of tryptophan, indoleacetamide, and indoleacetic acid formed during" H-IAM and" H-Trp feeding experiments revealed multiple IAA biosynthetic pathways in Azospirillum: the indoleacetamide pathway, a second tryptophan-dependent, and a tryptophan-independent pathway, the latter being predominant in case no tryptophan was supplied to the medium. This report is the first to demonstrate tryptophan-independent indoleacetic acid synthesis in bacteria.
The American Phytopathological Society
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