Cargando…

Actinomucor elegans and Podospora bulbillosa Positively Improves Endurance to Water Deficit and Salinity Stresses in Tomato Plants

Fungal strains isolated from the rhizosphere of healthy Solanum lycopersicum were examined to mitigate symptoms of drought and salinity stresses. The fungal strains were identified as Actinomucor elegans and Podospora bulbillosa based on their DNA sequencing and morphological analysis. Additionally,...

Descripción completa

Detalles Bibliográficos
Autores principales: Kazerooni, Elham Ahmed, Maharachchikumbura, Sajeewa S. N., Al-Sadi, Abdullah Mohammed, Rashid, Umer, Kang, Sang-Mo, Lee, In-Jung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9409863/
https://www.ncbi.nlm.nih.gov/pubmed/36012774
http://dx.doi.org/10.3390/jof8080785
_version_ 1784774954765516800
author Kazerooni, Elham Ahmed
Maharachchikumbura, Sajeewa S. N.
Al-Sadi, Abdullah Mohammed
Rashid, Umer
Kang, Sang-Mo
Lee, In-Jung
author_facet Kazerooni, Elham Ahmed
Maharachchikumbura, Sajeewa S. N.
Al-Sadi, Abdullah Mohammed
Rashid, Umer
Kang, Sang-Mo
Lee, In-Jung
author_sort Kazerooni, Elham Ahmed
collection PubMed
description Fungal strains isolated from the rhizosphere of healthy Solanum lycopersicum were examined to mitigate symptoms of drought and salinity stresses. The fungal strains were identified as Actinomucor elegans and Podospora bulbillosa based on their DNA sequencing and morphological analysis. Additionally, the fungal strains were assayed for a number of plant growth promoting traits and abiotic stresses on solid media. Moreover, a greenhouse experiment was conducted and tomato seedlings were treated with 25% PEG or 1.5% NaCl for 12 days, and the impact of plant growth promoting fungi (PGPF) on tomato seedling performance under these conditions was examined. PGPF application raised the survival of the stressed tomato plants, which was evidenced by higher physiological and biochemical processes. The PGPF-inoculated plants exhibited higher chlorophyll, carotenoid, protein, amino acid, antioxidant activities, salicylic acid, glucose, fructose, and sucrose contents, and showed lower hydrogen peroxide, and lipid metabolism relative to control plants under stress. Analysis using gene expression showed enhanced expression of SlF3H gene and reduced expression of SlNCED1, SlDEAD31, SlbZIP38, and SlGRAS10 genes following PGPFs application. Overall, the outcomes of this study elucidate the function of these fungal strains and present candidates with potential implementation as biofertilizers and in promoting plant stress endurance.
format Online
Article
Text
id pubmed-9409863
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-94098632022-08-26 Actinomucor elegans and Podospora bulbillosa Positively Improves Endurance to Water Deficit and Salinity Stresses in Tomato Plants Kazerooni, Elham Ahmed Maharachchikumbura, Sajeewa S. N. Al-Sadi, Abdullah Mohammed Rashid, Umer Kang, Sang-Mo Lee, In-Jung J Fungi (Basel) Article Fungal strains isolated from the rhizosphere of healthy Solanum lycopersicum were examined to mitigate symptoms of drought and salinity stresses. The fungal strains were identified as Actinomucor elegans and Podospora bulbillosa based on their DNA sequencing and morphological analysis. Additionally, the fungal strains were assayed for a number of plant growth promoting traits and abiotic stresses on solid media. Moreover, a greenhouse experiment was conducted and tomato seedlings were treated with 25% PEG or 1.5% NaCl for 12 days, and the impact of plant growth promoting fungi (PGPF) on tomato seedling performance under these conditions was examined. PGPF application raised the survival of the stressed tomato plants, which was evidenced by higher physiological and biochemical processes. The PGPF-inoculated plants exhibited higher chlorophyll, carotenoid, protein, amino acid, antioxidant activities, salicylic acid, glucose, fructose, and sucrose contents, and showed lower hydrogen peroxide, and lipid metabolism relative to control plants under stress. Analysis using gene expression showed enhanced expression of SlF3H gene and reduced expression of SlNCED1, SlDEAD31, SlbZIP38, and SlGRAS10 genes following PGPFs application. Overall, the outcomes of this study elucidate the function of these fungal strains and present candidates with potential implementation as biofertilizers and in promoting plant stress endurance. MDPI 2022-07-27 /pmc/articles/PMC9409863/ /pubmed/36012774 http://dx.doi.org/10.3390/jof8080785 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kazerooni, Elham Ahmed
Maharachchikumbura, Sajeewa S. N.
Al-Sadi, Abdullah Mohammed
Rashid, Umer
Kang, Sang-Mo
Lee, In-Jung
Actinomucor elegans and Podospora bulbillosa Positively Improves Endurance to Water Deficit and Salinity Stresses in Tomato Plants
title Actinomucor elegans and Podospora bulbillosa Positively Improves Endurance to Water Deficit and Salinity Stresses in Tomato Plants
title_full Actinomucor elegans and Podospora bulbillosa Positively Improves Endurance to Water Deficit and Salinity Stresses in Tomato Plants
title_fullStr Actinomucor elegans and Podospora bulbillosa Positively Improves Endurance to Water Deficit and Salinity Stresses in Tomato Plants
title_full_unstemmed Actinomucor elegans and Podospora bulbillosa Positively Improves Endurance to Water Deficit and Salinity Stresses in Tomato Plants
title_short Actinomucor elegans and Podospora bulbillosa Positively Improves Endurance to Water Deficit and Salinity Stresses in Tomato Plants
title_sort actinomucor elegans and podospora bulbillosa positively improves endurance to water deficit and salinity stresses in tomato plants
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9409863/
https://www.ncbi.nlm.nih.gov/pubmed/36012774
http://dx.doi.org/10.3390/jof8080785
work_keys_str_mv AT kazeroonielhamahmed actinomucorelegansandpodosporabulbillosapositivelyimprovesendurancetowaterdeficitandsalinitystressesintomatoplants
AT maharachchikumburasajeewasn actinomucorelegansandpodosporabulbillosapositivelyimprovesendurancetowaterdeficitandsalinitystressesintomatoplants
AT alsadiabdullahmohammed actinomucorelegansandpodosporabulbillosapositivelyimprovesendurancetowaterdeficitandsalinitystressesintomatoplants
AT rashidumer actinomucorelegansandpodosporabulbillosapositivelyimprovesendurancetowaterdeficitandsalinitystressesintomatoplants
AT kangsangmo actinomucorelegansandpodosporabulbillosapositivelyimprovesendurancetowaterdeficitandsalinitystressesintomatoplants
AT leeinjung actinomucorelegansandpodosporabulbillosapositivelyimprovesendurancetowaterdeficitandsalinitystressesintomatoplants