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Roots of the xerophyte Panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria

Bacterial communities associated with roots of Panicum turgidum, exposed to arid conditions, were investigated with a combination of cultural and metataxonomic approaches. Traditional culture-based techniques were used and 32 isolates from the irradiated roots were identified as belonging to Actinob...

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Autores principales: Guesmi, Sihem, Najjari, Afef, Pujic, Petar, Ghedira, Kais, Ouertani, Rania, Jabberi, Marwa, Cherif, Ameur, Normand, Philippe, Sghaier, Haïtham
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8847929/
https://www.ncbi.nlm.nih.gov/pubmed/35197792
http://dx.doi.org/10.1016/j.sjbs.2021.09.020
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author Guesmi, Sihem
Najjari, Afef
Pujic, Petar
Ghedira, Kais
Ouertani, Rania
Jabberi, Marwa
Cherif, Ameur
Normand, Philippe
Sghaier, Haïtham
author_facet Guesmi, Sihem
Najjari, Afef
Pujic, Petar
Ghedira, Kais
Ouertani, Rania
Jabberi, Marwa
Cherif, Ameur
Normand, Philippe
Sghaier, Haïtham
author_sort Guesmi, Sihem
collection PubMed
description Bacterial communities associated with roots of Panicum turgidum, exposed to arid conditions, were investigated with a combination of cultural and metataxonomic approaches. Traditional culture-based techniques were used and 32 isolates from the irradiated roots were identified as belonging to Actinobacteria, Bacteroidetes, Firmicutes and Proteobacteria phyla. Four actinobacterial strains were shown to be ionizing-radiation (IR)-resistant: Microbacterium sp. PT8 (4.8 kGy (kGy)), Micrococcus sp. PT11 (4.4 kGy), Kocuria rhizophila PT10 (2.9 kGy) and Promicromonospora panici PT9(T) (2.6 kGy), based on the D(10) dose necessary for a 90% reduction in colony forming units (CFU). Concerning the investigation of microbial communities in situ, metataxonomic analyses of the diversity of IR-resistant microorganisms associated with irradiated roots revealed a marked dominance of Actinobacteria (46.6%) and Proteobacteria (31.5%) compared to Bacteroidetes (4.6%) and Firmicutes (3.2%). Gamma irradiation not only changed the structure of bacterial communities, but also affected their functional properties. Comparative analyses of metabolic profiles indicated the induction of several pathways related to adaptation to oxidative stress in irradiated roots, such as DNA repair, secondary metabolites synthesis, reactive oxygen species (ROS)-mitigating enzymes, etc. P. turgidum is emblematic of desert-adapted plants. Until now, there is no other work that has focused on the microbial profile of irradiated roots of this xerophyte.
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spelling pubmed-88479292022-02-22 Roots of the xerophyte Panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria Guesmi, Sihem Najjari, Afef Pujic, Petar Ghedira, Kais Ouertani, Rania Jabberi, Marwa Cherif, Ameur Normand, Philippe Sghaier, Haïtham Saudi J Biol Sci Original Article Bacterial communities associated with roots of Panicum turgidum, exposed to arid conditions, were investigated with a combination of cultural and metataxonomic approaches. Traditional culture-based techniques were used and 32 isolates from the irradiated roots were identified as belonging to Actinobacteria, Bacteroidetes, Firmicutes and Proteobacteria phyla. Four actinobacterial strains were shown to be ionizing-radiation (IR)-resistant: Microbacterium sp. PT8 (4.8 kGy (kGy)), Micrococcus sp. PT11 (4.4 kGy), Kocuria rhizophila PT10 (2.9 kGy) and Promicromonospora panici PT9(T) (2.6 kGy), based on the D(10) dose necessary for a 90% reduction in colony forming units (CFU). Concerning the investigation of microbial communities in situ, metataxonomic analyses of the diversity of IR-resistant microorganisms associated with irradiated roots revealed a marked dominance of Actinobacteria (46.6%) and Proteobacteria (31.5%) compared to Bacteroidetes (4.6%) and Firmicutes (3.2%). Gamma irradiation not only changed the structure of bacterial communities, but also affected their functional properties. Comparative analyses of metabolic profiles indicated the induction of several pathways related to adaptation to oxidative stress in irradiated roots, such as DNA repair, secondary metabolites synthesis, reactive oxygen species (ROS)-mitigating enzymes, etc. P. turgidum is emblematic of desert-adapted plants. Until now, there is no other work that has focused on the microbial profile of irradiated roots of this xerophyte. Elsevier 2022-02 2021-09-16 /pmc/articles/PMC8847929/ /pubmed/35197792 http://dx.doi.org/10.1016/j.sjbs.2021.09.020 Text en © 2021 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
Guesmi, Sihem
Najjari, Afef
Pujic, Petar
Ghedira, Kais
Ouertani, Rania
Jabberi, Marwa
Cherif, Ameur
Normand, Philippe
Sghaier, Haïtham
Roots of the xerophyte Panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria
title Roots of the xerophyte Panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria
title_full Roots of the xerophyte Panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria
title_fullStr Roots of the xerophyte Panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria
title_full_unstemmed Roots of the xerophyte Panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria
title_short Roots of the xerophyte Panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria
title_sort roots of the xerophyte panicum turgidum host a cohort of ionizing-radiation-resistant biotechnologically-valuable bacteria
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8847929/
https://www.ncbi.nlm.nih.gov/pubmed/35197792
http://dx.doi.org/10.1016/j.sjbs.2021.09.020
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