Integrated Microbiome and Metabolomic Analysis Reveal Responses of Rhizosphere Bacterial Communities and Root exudate Composition to Drought and Genotype in Rice (Oryza sativa L.)

cg.contactyangl@nwafu.edu.cnen_US
cg.contributor.centerInternational Center for Agricultural Research in the Dry Areas - ICARDAen_US
cg.contributor.centerNorthwest A&F University - NWSUAFen_US
cg.contributor.crpCGIAR Research Program on Water, Land and Ecosystems - WLEen_US
cg.contributor.crpCGIAR Research Program on Livestock Agri-Food Systems - Livestocken_US
cg.contributor.funderGovernment of Chinaen_US
cg.contributor.projectChina Bilateral Program 2020 -2021-2022-2023 Implementation Fundingen_US
cg.contributor.project-lead-instituteInternational Center for Agricultural Research in the Dry Areas - ICARDAen_US
cg.coverage.countryCNen_US
cg.coverage.regionEastern Asiaen_US
cg.creator.idNangia, Vinay: 0000-0001-5148-8614en_US
cg.identifier.doihttps://dx.doi.org/10.1186/s12284-023-00636-1en_US
cg.isijournalISI Journalen_US
cg.issn1939-8425en_US
cg.journalRiceen_US
cg.subject.agrovocdroughten_US
cg.subject.agrovocriceen_US
cg.subject.agrovocroot exudatesen_US
cg.volume19en_US
dc.contributorWang, Kexinen_US
dc.contributorQin, Qunen_US
dc.contributorLi, Qien_US
dc.contributorMo, Feien_US
dc.contributorNangia, Vinayen_US
dc.contributorLiu, Yangen_US
dc.creatorLi, Gegeen_US
dc.date.accessioned2023-04-17T17:53:02Z
dc.date.available2023-04-17T17:53:02Z
dc.description.abstractBackground As climate change events become more frequent, drought is an increasing threat to agricultural production and food security. Crop rhizosphere microbiome and root exudates are critical regulators for drought adaptation, yet our understanding on the rhizosphere bacterial communities and root exudate composition as afected by drought stress is far from complete. In this study, we performed 16S rRNA gene amplicon sequencing and widely targeted metabolomic analysis of rhizosphere soil and root exudates from two contrasting rice genotypes (Nipponbare and Luodao 998) exposed to drought stress. Results A reduction in plant phenotypes was observed under drought, and the inhibition was greater for roots than for shoots. Additionally, drought exerted a negligible efect on the alpha diversity of rhizosphere bacterial communities, but obviously altered their composition. In particular, drought led to a signifcant enrichment of Actinobacteria but a decrease in Firmicutes. We also found that abscisic acid in root exudates was clearly higher under drought, whereas lower jasmonic acid and L-cystine concentrations. As for plant genotypes, variations in plant traits of the drought-tolerant genotype Luodao 998 after drought were smaller than those of Nipponbare. Interestingly, drought triggered an increase in Bacillus, as well as an upregulation of most organic acids and a downregulation of all amino acids in Luodao 998. Notably, both Procrustes analysis and Mantel test demonstrated that rhizosphere microbi ome and root exudate metabolomic profles were highly correlated. A number of diferentially abundant genera responded to drought and genotype, including Streptomyces, Bacillus and some members of Actinobacteria, were sig nifcantly associated with organic acid and amino acid contents in root exudates. Further soil incubation experiments showed that Streptomyces was regulated by abscisic acid and jasmonic acid under drought. Conclusions Our results reveal that both drought and genotype drive changes in the compositions of rice rhizos phere bacterial communities and root exudates under the greenhouse condition, and that organic acid exudation and suppression of amino acid exudation to select specifc rhizosphere bacterial communities may be an important strategy for rice to cope with drought. These fndings have important implications for improving the adaptability of rice to drought from the perspective of plant–microbe interactions.en_US
dc.formatPDFen_US
dc.identifierhttps://mel.cgiar.org/reporting/downloadmelspace/hash/94ed3c7cf2253ad91bb4ca7e3ff46717/v/bbe9e1e923b37f93f977e91fd84e6508en_US
dc.identifier.citationGege Li, Kexin Wang, Qun Qin, Qi Li, Fei Mo, Vinay Nangia, Yang Liu. (11/4/2023). Integrated Microbiome and Metabolomic Analysis Reveal Responses of Rhizosphere Bacterial Communities and Root exudate Composition to Drought and Genotype in Rice (Oryza sativa L. ). Rice, 19.en_US
dc.identifier.statusOpen accessen_US
dc.identifier.urihttps://hdl.handle.net/20.500.11766/68299
dc.languageenen_US
dc.publisherSpringerOpen (part of Springer Nature)en_US
dc.rightsCC-BY-4.0en_US
dc.sourceRice;19,(2023)en_US
dc.subjectgenotypeen_US
dc.subjectrhizosphere bacterial communitiesen_US
dc.titleIntegrated Microbiome and Metabolomic Analysis Reveal Responses of Rhizosphere Bacterial Communities and Root exudate Composition to Drought and Genotype in Rice (Oryza sativa L.)en_US
dc.typeJournal Articleen_US
dcterms.available2023-04-11en_US
mel.impact-factor5.5en_US

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