The Distribution of Tryptophan-Dependent Indole-3-Acetic Acid Synthesis Pathways in Bacteria Unraveled by Large-Scale Genomic Analysis
Распределение триптофан-зависимых путей синтеза индол-3-уксусной кислоты у бактерий, выявленное с помощью крупномасштабного геномного анализа
2019-04-10
SCID: 54.1/9nmzrhhk
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bacterial genomesindole-3-acetic acidplant growth promotionroot-associated metagenomicstryptophan-dependent pathways
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Abstract (AI)
Bacterial indole-3-acetic acid (IAA), an effector molecule in microbial physiology, plays an important role in plant growth-promotion. Here, we comprehensively analyzed about 7282 prokaryotic genomes representing diverse bacterial phyla, combined with root-associated metagenomic data to unravel the distribution of tryptophan-dependent IAA synthesis pathways and to quantify the IAA synthesis-related genes in the plant root environments. We found that 82.2% of the analyzed bacterial genomes were potentially capable of synthesizing IAA from tryptophan (Trp) or intermediates. Interestingly, several phylogenetically diverse bacteria showed a preferential tendency to utilize different pathways and tryptamine and indole-3-pyruvate pathways are most prevalent in bacteria. About 45.3% of the studied genomes displayed multiple coexisting pathways, constituting complex IAA synthesis systems. Furthermore, root-associated metagenomic analyses revealed that rhizobacteria mainly synthesize IAA via indole-3-acetamide (IAM) and tryptamine (TMP) pathways and might possess stronger IAA synthesis abilities than bacteria colonizing other environments. The obtained results refurbished our understanding of bacterial IAA synthesis pathways and provided a faster and less labor-intensive alternative to physiological screening based on genome collections. The better understanding of IAA synthesis among bacterial communities could maximize the utilization of bacterial IAA to augment the crop growth and physiological function.
Key Findings
1
Analysis of approximately 7,282 prokaryotic genomes found that 82.2% were potentially capable of synthesizing IAA from tryptophan or its intermediates.
2
Large-scale genomic and metagenomic analysis provides a faster alternative to physiological screening for mapping bacterial IAA synthesis capabilities.
3
Multiple coexisting IAA synthesis pathways occurred in 45.3% of analyzed genomes, indicating complex bacterial IAA production systems.
4
Root-associated rhizobacteria mainly used indole-3-acetamide and tryptamine pathways and appeared to have stronger IAA synthesis potential than bacteria from other environments.
5
Tryptamine and indole-3-pyruvate pathways were the most prevalent tryptophan-dependent IAA synthesis routes across bacteria.
Research Object
Tryptophan-dependent indole-3-acetic acid synthesis pathways in bacteria, including root-associated bacterial communities
Research Subject
The distribution, prevalence, coexistence, and environmental variation of bacterial IAA synthesis pathways and related genes
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2019-04-10
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