16S microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (Zea mays L.) for agricultural soil fortification

Soil microbial diversity plays an important role among the factors that affect plant growth. The present study was conducted with a focus on the isolation and characterization of native microbial strains from maize rhizosphere and the determination of their abilities for promoting plant growth and b...

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Main Authors: Reena Josephine, Jibu Thomas
Format: Article
Language:English
Published: Termedia Publishing House 2019-06-01
Series:BioTechnologia
Subjects:
iaa
Online Access:https://www.termedia.pl/16S-microbial-phylogeny-of-multifunctional-plant-growth-promoting-rhizobacteria-from-the-rhizosphere-of-maize-Zea-mays-L-for-agricultural-soil-fortification,85,36736,1,1.html
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spelling doaj-423120bfb360476eb168b65dadbe06792020-11-25T02:56:40ZengTermedia Publishing HouseBioTechnologia0860-77962353-94612019-06-01100214315410.5114/bta.2019.853243673616S microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (Zea mays L.) for agricultural soil fortificationReena JosephineJibu ThomasSoil microbial diversity plays an important role among the factors that affect plant growth. The present study was conducted with a focus on the isolation and characterization of native microbial strains from maize rhizosphere and the determination of their abilities for promoting plant growth and biocontrol in the for the fortification of agricultural soil. We isolated 156 microbial strains and qualitatively assayed their ability to synthesize ammonia, phosphate, indole acetic acid (IAA), and siderophores. Moreover, we tested their biocontrol traits, such as the synthesis of hydrolytic enzymes and antagonistic potential toward the fungal pathogen Fusarium moniliforme. Of the strains tested, 106 produced ammonia, 55 solubilized phosphate, 71 synthesized indole-3-acetic acid (IAA), 33 were positive for siderophores, 83 were able to hydrolyze cellulose, 84 were pectinase producers, and 44 strains were antagonistic to Fusarium moniliforme, a pathogen of maize. The potential strains were selected and phylogenetically characterized using 16S rRNA sequencing to study their evolutionary relatedness. Phylogenetic studies have revealed organisms of the genera Bacillus, Pseudomonas, Klebsiella, and Acinetobacter, which were previously found to be associated with the rhizosphere of maize and have varied diversity at the species level. The retrieved sequences were then submitted to the GenBank database. We found that a majority of the tested strains possessed at least one or more plant-growth-promoting features, indicating their role as potential plant-growthpromoting rhizobacteria (PGPRs). An application of these microorganisms in the field as PGPRs or biocontrol agents should be beneficial for sustainable agriculture.https://www.termedia.pl/16S-microbial-phylogeny-of-multifunctional-plant-growth-promoting-rhizobacteria-from-the-rhizosphere-of-maize-Zea-mays-L-for-agricultural-soil-fortification,85,36736,1,1.htmlfusarium iaa maize pgpr 16s rrna sequencing
collection DOAJ
language English
format Article
sources DOAJ
author Reena Josephine
Jibu Thomas
spellingShingle Reena Josephine
Jibu Thomas
16S microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (Zea mays L.) for agricultural soil fortification
BioTechnologia
fusarium
iaa
maize
pgpr
16s rrna sequencing
author_facet Reena Josephine
Jibu Thomas
author_sort Reena Josephine
title 16S microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (Zea mays L.) for agricultural soil fortification
title_short 16S microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (Zea mays L.) for agricultural soil fortification
title_full 16S microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (Zea mays L.) for agricultural soil fortification
title_fullStr 16S microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (Zea mays L.) for agricultural soil fortification
title_full_unstemmed 16S microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (Zea mays L.) for agricultural soil fortification
title_sort 16s microbial phylogeny of multifunctional plant-growth-promoting rhizobacteria from the rhizosphere of maize (zea mays l.) for agricultural soil fortification
publisher Termedia Publishing House
series BioTechnologia
issn 0860-7796
2353-9461
publishDate 2019-06-01
description Soil microbial diversity plays an important role among the factors that affect plant growth. The present study was conducted with a focus on the isolation and characterization of native microbial strains from maize rhizosphere and the determination of their abilities for promoting plant growth and biocontrol in the for the fortification of agricultural soil. We isolated 156 microbial strains and qualitatively assayed their ability to synthesize ammonia, phosphate, indole acetic acid (IAA), and siderophores. Moreover, we tested their biocontrol traits, such as the synthesis of hydrolytic enzymes and antagonistic potential toward the fungal pathogen Fusarium moniliforme. Of the strains tested, 106 produced ammonia, 55 solubilized phosphate, 71 synthesized indole-3-acetic acid (IAA), 33 were positive for siderophores, 83 were able to hydrolyze cellulose, 84 were pectinase producers, and 44 strains were antagonistic to Fusarium moniliforme, a pathogen of maize. The potential strains were selected and phylogenetically characterized using 16S rRNA sequencing to study their evolutionary relatedness. Phylogenetic studies have revealed organisms of the genera Bacillus, Pseudomonas, Klebsiella, and Acinetobacter, which were previously found to be associated with the rhizosphere of maize and have varied diversity at the species level. The retrieved sequences were then submitted to the GenBank database. We found that a majority of the tested strains possessed at least one or more plant-growth-promoting features, indicating their role as potential plant-growthpromoting rhizobacteria (PGPRs). An application of these microorganisms in the field as PGPRs or biocontrol agents should be beneficial for sustainable agriculture.
topic fusarium
iaa
maize
pgpr
16s rrna sequencing
url https://www.termedia.pl/16S-microbial-phylogeny-of-multifunctional-plant-growth-promoting-rhizobacteria-from-the-rhizosphere-of-maize-Zea-mays-L-for-agricultural-soil-fortification,85,36736,1,1.html
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AT jibuthomas 16smicrobialphylogenyofmultifunctionalplantgrowthpromotingrhizobacteriafromtherhizosphereofmaizezeamayslforagriculturalsoilfortification
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