Rhizobium determinants of rhizosphere persistence and root colonization

Bacterial persistence in the rhizosphere and colonization of root niches are critical for the establishment of many beneficial plant–bacteria interactions including those between Rhizobium leguminosarum and its host legumes. Despite this, most studies on R. leguminosarum have focused on its symbioti...

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Hauptverfasser: Knights, HE, Ramachandran, VK, Jorrin, B, Ledermann, R, Parsons, JD, Aroney, STN, Poole, PS
Format: Journal article
Sprache:English
Veröffentlicht: Oxford University Press 2024
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author Knights, HE
Ramachandran, VK
Jorrin, B
Ledermann, R
Parsons, JD
Aroney, STN
Poole, PS
author_facet Knights, HE
Ramachandran, VK
Jorrin, B
Ledermann, R
Parsons, JD
Aroney, STN
Poole, PS
author_sort Knights, HE
collection OXFORD
description Bacterial persistence in the rhizosphere and colonization of root niches are critical for the establishment of many beneficial plant–bacteria interactions including those between Rhizobium leguminosarum and its host legumes. Despite this, most studies on R. leguminosarum have focused on its symbiotic lifestyle as an endosymbiont in root nodules. Here, we use random barcode transposon sequencing to assay gene contributions of R. leguminosarum during competitive growth in the rhizosphere and colonization of various plant species. This facilitated the identification of 189 genes commonly required for growth in diverse plant rhizospheres, mutation of 111 of which also affected subsequent root colonization (rhizosphere progressive), and a further 119 genes necessary for colonization. Common determinants reveal a need to synthesize essential compounds (amino acids, ribonucleotides, and cofactors), adapt metabolic function, respond to external stimuli, and withstand various stresses (such as changes in osmolarity). Additionally, chemotaxis and flagella-mediated motility are prerequisites for root colonization. Many genes showed plant-specific dependencies highlighting significant adaptation to different plant species. This work provides a greater understanding of factors promoting rhizosphere fitness and root colonization in plant-beneficial bacteria, facilitating their exploitation for agricultural benefit.
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spelling oxford-uuid:0a997d48-ff9b-4174-9fcb-0287cc4c53472024-10-16T09:11:48ZRhizobium determinants of rhizosphere persistence and root colonizationJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:0a997d48-ff9b-4174-9fcb-0287cc4c5347EnglishJisc Publications RouterOxford University Press2024Knights, HERamachandran, VKJorrin, BLedermann, RParsons, JDAroney, STNPoole, PSBacterial persistence in the rhizosphere and colonization of root niches are critical for the establishment of many beneficial plant–bacteria interactions including those between Rhizobium leguminosarum and its host legumes. Despite this, most studies on R. leguminosarum have focused on its symbiotic lifestyle as an endosymbiont in root nodules. Here, we use random barcode transposon sequencing to assay gene contributions of R. leguminosarum during competitive growth in the rhizosphere and colonization of various plant species. This facilitated the identification of 189 genes commonly required for growth in diverse plant rhizospheres, mutation of 111 of which also affected subsequent root colonization (rhizosphere progressive), and a further 119 genes necessary for colonization. Common determinants reveal a need to synthesize essential compounds (amino acids, ribonucleotides, and cofactors), adapt metabolic function, respond to external stimuli, and withstand various stresses (such as changes in osmolarity). Additionally, chemotaxis and flagella-mediated motility are prerequisites for root colonization. Many genes showed plant-specific dependencies highlighting significant adaptation to different plant species. This work provides a greater understanding of factors promoting rhizosphere fitness and root colonization in plant-beneficial bacteria, facilitating their exploitation for agricultural benefit.
spellingShingle Knights, HE
Ramachandran, VK
Jorrin, B
Ledermann, R
Parsons, JD
Aroney, STN
Poole, PS
Rhizobium determinants of rhizosphere persistence and root colonization
title Rhizobium determinants of rhizosphere persistence and root colonization
title_full Rhizobium determinants of rhizosphere persistence and root colonization
title_fullStr Rhizobium determinants of rhizosphere persistence and root colonization
title_full_unstemmed Rhizobium determinants of rhizosphere persistence and root colonization
title_short Rhizobium determinants of rhizosphere persistence and root colonization
title_sort rhizobium determinants of rhizosphere persistence and root colonization
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