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Synergistic effects of biofilm-producing PGPR strains on wheat plant colonization, growth and soil resilience under drought stress

Drought stress substantially impedes crop productivity throughout the world. Microbial based approaches have been considered a potential possibility and are under study. Based on our prior screening examination, two distinct and novel biofilm-forming PGPR strains namely Bacillus subtilis-FAB1 and Ps...

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Autores principales: Ahmad Ansari, Firoz, Ahmad, Iqbal, Pichtel, John
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10193011/
https://www.ncbi.nlm.nih.gov/pubmed/37213696
http://dx.doi.org/10.1016/j.sjbs.2023.103664
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author Ahmad Ansari, Firoz
Ahmad, Iqbal
Pichtel, John
author_facet Ahmad Ansari, Firoz
Ahmad, Iqbal
Pichtel, John
author_sort Ahmad Ansari, Firoz
collection PubMed
description Drought stress substantially impedes crop productivity throughout the world. Microbial based approaches have been considered a potential possibility and are under study. Based on our prior screening examination, two distinct and novel biofilm-forming PGPR strains namely Bacillus subtilis-FAB1 and Pseudomonas azotoformans-FAP3 are encompassed in this research. Bacterial biofilm development on glass surface, microtiter plate and seedling roots were assessed and characterized quantitatively and qualitatively by light and scanning electron microscopy. Above two isolates were further evaluated for their consistent performance by inoculating on wheat plants in a pot-soil system under water stresses. Bacterial moderate tolerance to ten-day drought was recorded on the application of individual strains with wheat plants; however, the FAB1 + FAP3 consortium expressively improved wheat survival during drought. The strains FAB1 and FAP3 displayed distinct and multifunctional plant growth stimulating attributes as well as effective roots and rhizosphere colonization in combination which could provide sustained wheat growth during drought. FAB1 and FAP3-induced alterations cooperatively conferred improved plant drought tolerance by controlling physiological traits (gs, Ci, E, iWUE and P(N)), stress indicators (SOD, CAT, GR, proline and MDA content) and also maintained physico-chemical attributes and hydrolytic enzymes including DHA, urease, ALP, protease, ACP and β glucosidase in the soil. Our findings could support future efforts to enhance plant drought tolerance by engineering the rhizobacterial biofilms and associated attributes which requires in-depth exploration and exploiting potential native strains for local agricultural application.
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spelling pubmed-101930112023-05-19 Synergistic effects of biofilm-producing PGPR strains on wheat plant colonization, growth and soil resilience under drought stress Ahmad Ansari, Firoz Ahmad, Iqbal Pichtel, John Saudi J Biol Sci Original Article Drought stress substantially impedes crop productivity throughout the world. Microbial based approaches have been considered a potential possibility and are under study. Based on our prior screening examination, two distinct and novel biofilm-forming PGPR strains namely Bacillus subtilis-FAB1 and Pseudomonas azotoformans-FAP3 are encompassed in this research. Bacterial biofilm development on glass surface, microtiter plate and seedling roots were assessed and characterized quantitatively and qualitatively by light and scanning electron microscopy. Above two isolates were further evaluated for their consistent performance by inoculating on wheat plants in a pot-soil system under water stresses. Bacterial moderate tolerance to ten-day drought was recorded on the application of individual strains with wheat plants; however, the FAB1 + FAP3 consortium expressively improved wheat survival during drought. The strains FAB1 and FAP3 displayed distinct and multifunctional plant growth stimulating attributes as well as effective roots and rhizosphere colonization in combination which could provide sustained wheat growth during drought. FAB1 and FAP3-induced alterations cooperatively conferred improved plant drought tolerance by controlling physiological traits (gs, Ci, E, iWUE and P(N)), stress indicators (SOD, CAT, GR, proline and MDA content) and also maintained physico-chemical attributes and hydrolytic enzymes including DHA, urease, ALP, protease, ACP and β glucosidase in the soil. Our findings could support future efforts to enhance plant drought tolerance by engineering the rhizobacterial biofilms and associated attributes which requires in-depth exploration and exploiting potential native strains for local agricultural application. Elsevier 2023-06 2023-04-28 /pmc/articles/PMC10193011/ /pubmed/37213696 http://dx.doi.org/10.1016/j.sjbs.2023.103664 Text en © 2023 Published by Elsevier B.V. on behalf of King Saud University. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Ahmad Ansari, Firoz
Ahmad, Iqbal
Pichtel, John
Synergistic effects of biofilm-producing PGPR strains on wheat plant colonization, growth and soil resilience under drought stress
title Synergistic effects of biofilm-producing PGPR strains on wheat plant colonization, growth and soil resilience under drought stress
title_full Synergistic effects of biofilm-producing PGPR strains on wheat plant colonization, growth and soil resilience under drought stress
title_fullStr Synergistic effects of biofilm-producing PGPR strains on wheat plant colonization, growth and soil resilience under drought stress
title_full_unstemmed Synergistic effects of biofilm-producing PGPR strains on wheat plant colonization, growth and soil resilience under drought stress
title_short Synergistic effects of biofilm-producing PGPR strains on wheat plant colonization, growth and soil resilience under drought stress
title_sort synergistic effects of biofilm-producing pgpr strains on wheat plant colonization, growth and soil resilience under drought stress
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10193011/
https://www.ncbi.nlm.nih.gov/pubmed/37213696
http://dx.doi.org/10.1016/j.sjbs.2023.103664
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