{"id":{"repo_id":"usm","oai_identifier":"oai:aquila.usm.edu:masters_theses-1477"},"canonical_url":"https://search.dev.ndltd.org/etd/usm/oai:aquila.usm.edu:masters_theses-1477","repository":{"repo_id":"usm","name":"University of Southern Mississippi","base_url":"https://aquila.usm.edu/do/oai/"},"display":{"title":"Pseudomonas/Brachypodium as a Model System for Studying Rhizosphere Plant Microbe Interactions Under Water Stress","abstract":"<p>In contrast to well-studied mechanisms of drought tolerance in plants, the interactions between plants and their microbiome during water stress are still poorly understood. This missing knowledge is crucial for the exploitation of beneficial microbial communities to improve the sustainability of agriculture under changing climatic conditions. The research described here bridged this gap by focusing on the molecular interactions between beneficial rhizobacterium <em>Pseudomonas synxantha</em> 2-79 and annual grass <em>Brachypodium distachyon</em> Bd21. 2-79 exemplifies a group of rhizobacteria associated with dryland wheat, while <em>B.</em> <em>distachyon </em>originates from the Middle East and has emerged as a model for valuable biomass, food, forage, and turf crops. The experimental system was used to test the hypothesis that the adaptation of rhizobacteria to water stress is mediated by the exchange of metabolites between the host plant and its microbiota. Results revealed that <em>Brachypodium </em>root exudates contain a mixture of plant metabolites that serve as carbon and energy sources for rhizobacteria and include compounds that act as osmoprotectants and may help rhizobacteria maintain physiological activity and mutualistic interactions with their plant host in dry soils. The genome of <em>P. synxantha</em> 2-79 encodes numerous pathways involved in <em>de novo</em> synthesis and uptake of osmoprotectants and formation of biofilms for protection from desiccation. Some of these pathways are conserved across many taxa, while others are strain-specific and may contribute to the differential affinity toward plants growing in under different soil water regimens. Future studies will inactivate these pathways and test resultant mutants for rhizosphere fitness under drought stress.</p>","abstract_html":"&lt;p&gt;In contrast to well-studied mechanisms of drought tolerance in plants, the interactions between plants and their microbiome during water stress are still poorly understood. This missing knowledge is crucial for the exploitation of beneficial microbial communities to improve the sustainability of agriculture under changing climatic conditions. The research described here bridged this gap by focusing on the molecular interactions between beneficial rhizobacterium &lt;em&gt;Pseudomonas synxantha&lt;/em&gt; 2-79 and annual grass &lt;em&gt;Brachypodium distachyon&lt;/em&gt; Bd21. 2-79 exemplifies a group of rhizobacteria associated with dryland wheat, while &lt;em&gt;B.&lt;/em&gt; &lt;em&gt;distachyon &lt;/em&gt;originates from the Middle East and has emerged as a model for valuable biomass, food, forage, and turf crops. The experimental system was used to test the hypothesis that the adaptation of rhizobacteria to water stress is mediated by the exchange of metabolites between the host plant and its microbiota. Results revealed that &lt;em&gt;Brachypodium &lt;/em&gt;root exudates contain a mixture of plant metabolites that serve as carbon and energy sources for rhizobacteria and include compounds that act as osmoprotectants and may help rhizobacteria maintain physiological activity and mutualistic interactions with their plant host in dry soils. The genome of &lt;em&gt;P. synxantha&lt;/em&gt; 2-79 encodes numerous pathways involved in &lt;em&gt;de novo&lt;/em&gt; synthesis and uptake of osmoprotectants and formation of biofilms for protection from desiccation. Some of these pathways are conserved across many taxa, while others are strain-specific and may contribute to the differential affinity toward plants growing in under different soil water regimens. Future studies will inactivate these pathways and test resultant mutants for rhizosphere fitness under drought stress.&lt;/p&gt;","abstract_has_math":false,"creators":["McWilliams, Janiece"],"institution":null,"degree_name":"Master of Science (MS)","degree_level":"Masters Thesis","degree_discipline":null,"degree_department":null,"school":null,"contributors":["Dmitri Mavrodi","Kevin Kuehn","Micheal Davis"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2018,"date_issued":"2018-12-01T08:00:00Z","date_published":"2018-12-01T08:00:00Z","updated_at":"2026-07-24T05:44:58Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://aquila.usm.edu/masters_theses/602","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Dmitri Mavrodi","Kevin Kuehn","Micheal Davis"]},{"key":"dc:creator","label":"Author","values":["McWilliams, Janiece"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.available","label":"Dc Date Available","values":["2019-12-07T08:00:00Z"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Masters Thesis"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Master of Science (MS)"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://aquila.usm.edu/masters_theses/602"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>In contrast to well-studied mechanisms of drought tolerance in plants, the interactions between plants and their microbiome during water stress are still poorly understood. This missing knowledge is crucial for the exploitation of beneficial microbial communities to improve the sustainability of agriculture under changing climatic conditions. The research described here bridged this gap by focusing on the molecular interactions between beneficial rhizobacterium <em>Pseudomonas synxantha</em> 2-79 and annual grass <em>Brachypodium distachyon</em> Bd21. 2-79 exemplifies a group of rhizobacteria associated with dryland wheat, while <em>B.</em> <em>distachyon </em>originates from the Middle East and has emerged as a model for valuable biomass, food, forage, and turf crops. The experimental system was used to test the hypothesis that the adaptation of rhizobacteria to water stress is mediated by the exchange of metabolites between the host plant and its microbiota. Results revealed that <em>Brachypodium </em>root exudates contain a mixture of plant metabolites that serve as carbon and energy sources for rhizobacteria and include compounds that act as osmoprotectants and may help rhizobacteria maintain physiological activity and mutualistic interactions with their plant host in dry soils. The genome of <em>P. synxantha</em> 2-79 encodes numerous pathways involved in <em>de novo</em> synthesis and uptake of osmoprotectants and formation of biofilms for protection from desiccation. Some of these pathways are conserved across many taxa, while others are strain-specific and may contribute to the differential affinity toward plants growing in under different soil water regimens. Future studies will inactivate these pathways and test resultant mutants for rhizosphere fitness under drought stress.</p>"]},{"key":"dc:title","label":"Title","values":["Pseudomonas/Brachypodium as a Model System for Studying Rhizosphere Plant Microbe Interactions Under Water Stress"]}]}],"canonical_facts":{"dc:contributor":["Dmitri Mavrodi","Kevin Kuehn","Micheal Davis"],"dc:creator":["McWilliams, Janiece"],"dc:date.available":["2019-12-07T08:00:00Z"],"dc:description.abstract":["<p>In contrast to well-studied mechanisms of drought tolerance in plants, the interactions between plants and their microbiome during water stress are still poorly understood. This missing knowledge is crucial for the exploitation of beneficial microbial communities to improve the sustainability of agriculture under changing climatic conditions. The research described here bridged this gap by focusing on the molecular interactions between beneficial rhizobacterium <em>Pseudomonas synxantha</em> 2-79 and annual grass <em>Brachypodium distachyon</em> Bd21. 2-79 exemplifies a group of rhizobacteria associated with dryland wheat, while <em>B.</em> <em>distachyon </em>originates from the Middle East and has emerged as a model for valuable biomass, food, forage, and turf crops. The experimental system was used to test the hypothesis that the adaptation of rhizobacteria to water stress is mediated by the exchange of metabolites between the host plant and its microbiota. Results revealed that <em>Brachypodium </em>root exudates contain a mixture of plant metabolites that serve as carbon and energy sources for rhizobacteria and include compounds that act as osmoprotectants and may help rhizobacteria maintain physiological activity and mutualistic interactions with their plant host in dry soils. The genome of <em>P. synxantha</em> 2-79 encodes numerous pathways involved in <em>de novo</em> synthesis and uptake of osmoprotectants and formation of biofilms for protection from desiccation. Some of these pathways are conserved across many taxa, while others are strain-specific and may contribute to the differential affinity toward plants growing in under different soil water regimens. Future studies will inactivate these pathways and test resultant mutants for rhizosphere fitness under drought stress.</p>"],"dc:identifier":["https://aquila.usm.edu/masters_theses/602"],"dc:title":["Pseudomonas/Brachypodium as a Model System for Studying Rhizosphere Plant Microbe Interactions Under Water Stress"],"thesis:degree_level":["Masters Thesis"],"thesis:degree_name":["Master of Science (MS)"]},"updated_at":"2026-07-24T05:44:58Z"}