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Whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain Q2H1 in potato plants

INTRODUCTION: Endophytes are non-pathogenic inhabitants of healthy plant tissues and have been found to promote plant growth and health. The endophytic bacterial strain Q2H1 was isolated from the roots of the potato and was identified to exhibit growth-promoting effects in potato plants. METHODS: Wh...

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Autores principales: Wang, Yuhu, Zhao, Qianqian, Sun, Zhenqi, Li, Yahui, He, Hongtao, Zhang, Yuanyu, Yang, Xiangdong, Wang, Dong, Dong, Baozhu, Zhou, Hongyou, Zhao, Mingmin, Zheng, Hongli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9751815/
https://www.ncbi.nlm.nih.gov/pubmed/36532474
http://dx.doi.org/10.3389/fmicb.2022.1035901
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author Wang, Yuhu
Zhao, Qianqian
Sun, Zhenqi
Li, Yahui
He, Hongtao
Zhang, Yuanyu
Yang, Xiangdong
Wang, Dong
Dong, Baozhu
Zhou, Hongyou
Zhao, Mingmin
Zheng, Hongli
author_facet Wang, Yuhu
Zhao, Qianqian
Sun, Zhenqi
Li, Yahui
He, Hongtao
Zhang, Yuanyu
Yang, Xiangdong
Wang, Dong
Dong, Baozhu
Zhou, Hongyou
Zhao, Mingmin
Zheng, Hongli
author_sort Wang, Yuhu
collection PubMed
description INTRODUCTION: Endophytes are non-pathogenic inhabitants of healthy plant tissues and have been found to promote plant growth and health. The endophytic bacterial strain Q2H1 was isolated from the roots of the potato and was identified to exhibit growth-promoting effects in potato plants. METHODS: Whole-genome sequencing was performed to reveal the mechanism underlying its growth-promoting effect. The obtained sequencing data of approximately 5.65 MB encompassed 5,533 coding sequences. Of note, nine secondary metabolite gene clusters, including siderophore gene clusters, closely associated with plant growth promotion (PGP) were predicted by antiSMASH software. Comparative genomic analysis revealed that Q2H1 belongs to the genus Peribacillus. By gene function annotation, those genes related to plant growth-promoting activities, including indole-3-acetic acid (IAA) synthesis in tryptophan metabolism, siderophore biosynthetic activity, phosphate solubilization, nitrogen fixation, and related genes, were summarized. IAA (14.4 μg/ml) was presumptively produced by Q2H1 using the Salkowski colorimetric method. A total of five genes, namely, phoU, pstB, pstA1, pstC, and pstS, were annotated for phosphate solubilization, which is associated with the ability of the Q2H1 strain to solubilize phosphate under in vitro conditions. RESULTS: It is revealed that genes in the Q2H1 genome associated with nitrogen fixation belonged to three groups, namely, nitrogen fixation (nifU, sufU, salA, and nifS), nitrogen metabolism (nirA, nrtB, and nasA), and glutamate synthesis (glnA, gltB, gltD, and gudB), supported by evidence that Q2H1 grew on medium without nitrogen. We have also identified a siderophore gene cluster located on the chromosome of Q2H1, including seven genes (viz., rbsR, rhbf, rhbE, rhbD, rhbC, rhbA, ddc, and an unknown gene). In the in vitro assay, a prominent brown circle around the colony was produced on the chrome azurol S medium at 48 and 72 h post-inoculation, indicating that the siderophore gene cluster in Q2H1 harbored the ability to produce siderophores. CONCLUSION: In summary, these findings implied that identifying strain-specific genes for their metabolic pathways in bacterial endophytes may reveal a variety of significant functions of plant growth-promoting mechanisms.
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spelling pubmed-97518152022-12-16 Whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain Q2H1 in potato plants Wang, Yuhu Zhao, Qianqian Sun, Zhenqi Li, Yahui He, Hongtao Zhang, Yuanyu Yang, Xiangdong Wang, Dong Dong, Baozhu Zhou, Hongyou Zhao, Mingmin Zheng, Hongli Front Microbiol Microbiology INTRODUCTION: Endophytes are non-pathogenic inhabitants of healthy plant tissues and have been found to promote plant growth and health. The endophytic bacterial strain Q2H1 was isolated from the roots of the potato and was identified to exhibit growth-promoting effects in potato plants. METHODS: Whole-genome sequencing was performed to reveal the mechanism underlying its growth-promoting effect. The obtained sequencing data of approximately 5.65 MB encompassed 5,533 coding sequences. Of note, nine secondary metabolite gene clusters, including siderophore gene clusters, closely associated with plant growth promotion (PGP) were predicted by antiSMASH software. Comparative genomic analysis revealed that Q2H1 belongs to the genus Peribacillus. By gene function annotation, those genes related to plant growth-promoting activities, including indole-3-acetic acid (IAA) synthesis in tryptophan metabolism, siderophore biosynthetic activity, phosphate solubilization, nitrogen fixation, and related genes, were summarized. IAA (14.4 μg/ml) was presumptively produced by Q2H1 using the Salkowski colorimetric method. A total of five genes, namely, phoU, pstB, pstA1, pstC, and pstS, were annotated for phosphate solubilization, which is associated with the ability of the Q2H1 strain to solubilize phosphate under in vitro conditions. RESULTS: It is revealed that genes in the Q2H1 genome associated with nitrogen fixation belonged to three groups, namely, nitrogen fixation (nifU, sufU, salA, and nifS), nitrogen metabolism (nirA, nrtB, and nasA), and glutamate synthesis (glnA, gltB, gltD, and gudB), supported by evidence that Q2H1 grew on medium without nitrogen. We have also identified a siderophore gene cluster located on the chromosome of Q2H1, including seven genes (viz., rbsR, rhbf, rhbE, rhbD, rhbC, rhbA, ddc, and an unknown gene). In the in vitro assay, a prominent brown circle around the colony was produced on the chrome azurol S medium at 48 and 72 h post-inoculation, indicating that the siderophore gene cluster in Q2H1 harbored the ability to produce siderophores. CONCLUSION: In summary, these findings implied that identifying strain-specific genes for their metabolic pathways in bacterial endophytes may reveal a variety of significant functions of plant growth-promoting mechanisms. Frontiers Media S.A. 2022-12-01 /pmc/articles/PMC9751815/ /pubmed/36532474 http://dx.doi.org/10.3389/fmicb.2022.1035901 Text en Copyright © 2022 Wang, Zhao, Sun, Li, He, Zhang, Yang, Wang, Dong, Zhou, Zhao and Zheng. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Wang, Yuhu
Zhao, Qianqian
Sun, Zhenqi
Li, Yahui
He, Hongtao
Zhang, Yuanyu
Yang, Xiangdong
Wang, Dong
Dong, Baozhu
Zhou, Hongyou
Zhao, Mingmin
Zheng, Hongli
Whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain Q2H1 in potato plants
title Whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain Q2H1 in potato plants
title_full Whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain Q2H1 in potato plants
title_fullStr Whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain Q2H1 in potato plants
title_full_unstemmed Whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain Q2H1 in potato plants
title_short Whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain Q2H1 in potato plants
title_sort whole-genome analysis revealed the growth-promoting mechanism of endophytic bacterial strain q2h1 in potato plants
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9751815/
https://www.ncbi.nlm.nih.gov/pubmed/36532474
http://dx.doi.org/10.3389/fmicb.2022.1035901
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