{"id":{"repo_id":"columbus-state","oai_identifier":"oai:csuepress.columbusstate.edu:theses_dissertations-1396"},"canonical_url":"https://search.dev.ndltd.org/etd/columbus-state/oai:csuepress.columbusstate.edu:theses_dissertations-1396","repository":{"repo_id":"columbus-state","name":"Columbus State University","base_url":"https://csuepress.columbusstate.edu/do/oai/"},"display":{"title":"Exploring Interactions of Phyllosphere Epiphytes with Plant Pathogenic Bacteria Pseudomonas and Xanthomonas on Tomato","abstract":"<p>Recent studies have indicated the importance of resident microflora of plants in contributing towards overall plant health. Among difference components of the plant microbiome, <em>Methylobacterium</em> and <em>Sphingomonas</em> have been recognized as common residents of the <em>phyllosphere</em> for many host plants, however their role in disease control needs to be further investigated. The purpose of this study was to conduct experiments investigating the effectiveness of <em>phyllosphere</em> <em>Methylobacterium</em> and <em>Sphingomonas</em> isolated from red clover against common tomato <em>phyllosphere</em> bacterial pathogens, <em>Pseudomonas syringae</em> pv. tomato and <em>Xanthomonas perforans</em>. Additionally, this study uses X. <em>perforans</em> wild-type and X. <em>perforans</em> type VI secretion system (T6SS) mutant strains to observe the role of type VI secretion system in infection with a potential biocontrol agent. To explain interactions among the <em>phyllosphere</em> residents, nutritional similarity, motility and direct inhibition were observed <em>in vitro</em>. Based off the literature, it was hypothesized that<em> Sphingomonas</em> would prove to be a potential biocontrol agent against P. <em>syringae pv</em>. tomato, X. <em>perforans</em> wild-type and T6SS mutant. <em>Methylobacteria</em> would not prove to be a potential biocontrol agent against P. <em>syrinage pv</em>. tomato nor X. <em>perforans</em> wild-type and mutant. Lastly, it was hypothesized that X. <em>perforans</em> wild-type would be more virulent than the X. <em>perforans</em> T6SS when competing with a potential biocontrol agent (red clover commensal).</p> <p><em>In planta</em> experiments under growth chamber conditions indicated no significant change in disease with seeds that were soaked in a mix of red clover commensals when dipped in phyllosphere pathogens P. <em>syringae pv</em>. tomato and X. <em>perforans</em> wild-type and T6SS mutant. P. syringae pv. tomato was unable to infect control tomato plants in trial two under growth chamber conditions, and was not tested further<em> in planta</em>. <em>In vitro</em> testing indicated a red clover phyllosphere commensal, <em>S. taxi</em> 55669, inhibited X. <em>perforans</em> wild-type and mutant colonies on R2a plates. Therefore, <em>S. taxi</em> 55669 was studied for disease protection further in the greenhouse with seedling dip experiments. To assess the effectiveness of <em>S. taxi</em> 55669 <em>in planta</em>, foliar disease percent and bacterial population counts were recorded on bacterial dipped seedlings coinoculated with phyllopshere pathogens <em>X.</em> <em>perforans</em> wild-type and T6SS mutant. It is not recommended that <em>S. taxi</em> 55669 serve as a potential biocontrol for P. <em>syringae pv</em>. tomato 99B799 ba ed off the neutral effect S. taxi 55669 had with <em>in vitro</em> testing. Methylobacteria observed in this study, did not show any benefits against disease against <em>P. syringae</em> pv. tomato and <em>X</em>. <em>perforans</em> wild-type and T6SS mutant. However, the results from this study indicate <em>S. taxi</em> 55669 should be studied further for plant health, and has potential as a biocontrol against <em>X. perforans. X. perforans</em> T6SS mutant was found to be less virulent in the presence of <em>S. taxi</em> 55669, than X. perforans wild-type. Based off the high NOI and decrease in foliar disease, this study shows <em>S. taxi</em> 5669 has potential as a biocontrol for<em> X. perforans</em>. The decrease in motility and bacterial populations of <em>X. perforans</em> T6SS mutant when in the presence of <em>S. taxi</em> 55669 highlights the importance of <em>icmF3</em> in motility and ability to attack resident phyllosphere bacteria. The lack of differentiation between direct inhibition on R2a plates of <em>X. perforans</em> wildtype and T6SS mutant in the presence of <em>S. taxi</em> 55669 indicates a part of the T6SS mutant system may still be functional.</p>","abstract_html":"&lt;p&gt;Recent studies have indicated the importance of resident microflora of plants in contributing towards overall plant health. Among difference components of the plant microbiome, &lt;em&gt;Methylobacterium&lt;/em&gt; and &lt;em&gt;Sphingomonas&lt;/em&gt; have been recognized as common residents of the &lt;em&gt;phyllosphere&lt;/em&gt; for many host plants, however their role in disease control needs to be further investigated. The purpose of this study was to conduct experiments investigating the effectiveness of &lt;em&gt;phyllosphere&lt;/em&gt; &lt;em&gt;Methylobacterium&lt;/em&gt; and &lt;em&gt;Sphingomonas&lt;/em&gt; isolated from red clover against common tomato &lt;em&gt;phyllosphere&lt;/em&gt; bacterial pathogens, &lt;em&gt;Pseudomonas syringae&lt;/em&gt; pv. tomato and &lt;em&gt;Xanthomonas perforans&lt;/em&gt;. Additionally, this study uses X. &lt;em&gt;perforans&lt;/em&gt; wild-type and X. &lt;em&gt;perforans&lt;/em&gt; type VI secretion system (T6SS) mutant strains to observe the role of type VI secretion system in infection with a potential biocontrol agent. To explain interactions among the &lt;em&gt;phyllosphere&lt;/em&gt; residents, nutritional similarity, motility and direct inhibition were observed &lt;em&gt;in vitro&lt;/em&gt;. Based off the literature, it was hypothesized that&lt;em&gt; Sphingomonas&lt;/em&gt; would prove to be a potential biocontrol agent against P. &lt;em&gt;syringae pv&lt;/em&gt;. tomato, X. &lt;em&gt;perforans&lt;/em&gt; wild-type and T6SS mutant. &lt;em&gt;Methylobacteria&lt;/em&gt; would not prove to be a potential biocontrol agent against P. &lt;em&gt;syrinage pv&lt;/em&gt;. tomato nor X. &lt;em&gt;perforans&lt;/em&gt; wild-type and mutant. Lastly, it was hypothesized that X. &lt;em&gt;perforans&lt;/em&gt; wild-type would be more virulent than the X. &lt;em&gt;perforans&lt;/em&gt; T6SS when competing with a potential biocontrol agent (red clover commensal).&lt;/p&gt; &lt;p&gt;&lt;em&gt;In planta&lt;/em&gt; experiments under growth chamber conditions indicated no significant change in disease with seeds that were soaked in a mix of red clover commensals when dipped in phyllosphere pathogens P. &lt;em&gt;syringae pv&lt;/em&gt;. tomato and X. &lt;em&gt;perforans&lt;/em&gt; wild-type and T6SS mutant. P. syringae pv. tomato was unable to infect control tomato plants in trial two under growth chamber conditions, and was not tested further&lt;em&gt; in planta&lt;/em&gt;. &lt;em&gt;In vitro&lt;/em&gt; testing indicated a red clover phyllosphere commensal, &lt;em&gt;S. taxi&lt;/em&gt; 55669, inhibited X. &lt;em&gt;perforans&lt;/em&gt; wild-type and mutant colonies on R2a plates. Therefore, &lt;em&gt;S. taxi&lt;/em&gt; 55669 was studied for disease protection further in the greenhouse with seedling dip experiments. To assess the effectiveness of &lt;em&gt;S. taxi&lt;/em&gt; 55669 &lt;em&gt;in planta&lt;/em&gt;, foliar disease percent and bacterial population counts were recorded on bacterial dipped seedlings coinoculated with phyllopshere pathogens &lt;em&gt;X.&lt;/em&gt; &lt;em&gt;perforans&lt;/em&gt; wild-type and T6SS mutant. It is not recommended that &lt;em&gt;S. taxi&lt;/em&gt; 55669 serve as a potential biocontrol for P. &lt;em&gt;syringae pv&lt;/em&gt;. tomato 99B799 ba ed off the neutral effect S. taxi 55669 had with &lt;em&gt;in vitro&lt;/em&gt; testing. Methylobacteria observed in this study, did not show any benefits against disease against &lt;em&gt;P. syringae&lt;/em&gt; pv. tomato and &lt;em&gt;X&lt;/em&gt;. &lt;em&gt;perforans&lt;/em&gt; wild-type and T6SS mutant. However, the results from this study indicate &lt;em&gt;S. taxi&lt;/em&gt; 55669 should be studied further for plant health, and has potential as a biocontrol against &lt;em&gt;X. perforans. X. perforans&lt;/em&gt; T6SS mutant was found to be less virulent in the presence of &lt;em&gt;S. taxi&lt;/em&gt; 55669, than X. perforans wild-type. Based off the high NOI and decrease in foliar disease, this study shows &lt;em&gt;S. taxi&lt;/em&gt; 5669 has potential as a biocontrol for&lt;em&gt; X. perforans&lt;/em&gt;. The decrease in motility and bacterial populations of &lt;em&gt;X. perforans&lt;/em&gt; T6SS mutant when in the presence of &lt;em&gt;S. taxi&lt;/em&gt; 55669 highlights the importance of &lt;em&gt;icmF3&lt;/em&gt; in motility and ability to attack resident phyllosphere bacteria. The lack of differentiation between direct inhibition on R2a plates of &lt;em&gt;X. perforans&lt;/em&gt; wildtype and T6SS mutant in the presence of &lt;em&gt;S. taxi&lt;/em&gt; 55669 indicates a part of the T6SS mutant system may still be functional.&lt;/p&gt;","abstract_has_math":false,"creators":["Turner, Ashley D"],"institution":null,"degree_name":"Biology","degree_level":"Thesis","degree_discipline":"Biology","degree_department":null,"school":null,"contributors":["Dr. John Davis","Dr. Neha Potnis","Dr. Lauren King"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2020,"date_issued":"2020-05-01T07:00:00Z","date_published":"2020-05-01T07:00:00Z","updated_at":"2026-07-24T01:45:01Z","subjects":["Plant Pathology","Plant Microbiology","Biological Control","Methylobacterium","Sphingomonas","Biology","Botany","Plant Sciences"],"languages":["English"],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://csuepress.columbusstate.edu/theses_dissertations/395","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Dr. John Davis","Dr. Neha Potnis","Dr. Lauren King"]},{"key":"dc:creator","label":"Author","values":["Turner, Ashley D"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.available","label":"Dc Date Available","values":["2020-06-26T07:00:00Z"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Biology"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Thesis"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Biology"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Plant Pathology","Plant Microbiology","Biological Control","Methylobacterium","Sphingomonas","Biology","Botany","Plant Sciences"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["English"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://csuepress.columbusstate.edu/theses_dissertations/395"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>Recent studies have indicated the importance of resident microflora of plants in contributing towards overall plant health. Among difference components of the plant microbiome, <em>Methylobacterium</em> and <em>Sphingomonas</em> have been recognized as common residents of the <em>phyllosphere</em> for many host plants, however their role in disease control needs to be further investigated. The purpose of this study was to conduct experiments investigating the effectiveness of <em>phyllosphere</em> <em>Methylobacterium</em> and <em>Sphingomonas</em> isolated from red clover against common tomato <em>phyllosphere</em> bacterial pathogens, <em>Pseudomonas syringae</em> pv. tomato and <em>Xanthomonas perforans</em>. Additionally, this study uses X. <em>perforans</em> wild-type and X. <em>perforans</em> type VI secretion system (T6SS) mutant strains to observe the role of type VI secretion system in infection with a potential biocontrol agent. To explain interactions among the <em>phyllosphere</em> residents, nutritional similarity, motility and direct inhibition were observed <em>in vitro</em>. Based off the literature, it was hypothesized that<em> Sphingomonas</em> would prove to be a potential biocontrol agent against P. <em>syringae pv</em>. tomato, X. <em>perforans</em> wild-type and T6SS mutant. <em>Methylobacteria</em> would not prove to be a potential biocontrol agent against P. <em>syrinage pv</em>. tomato nor X. <em>perforans</em> wild-type and mutant. Lastly, it was hypothesized that X. <em>perforans</em> wild-type would be more virulent than the X. <em>perforans</em> T6SS when competing with a potential biocontrol agent (red clover commensal).</p> <p><em>In planta</em> experiments under growth chamber conditions indicated no significant change in disease with seeds that were soaked in a mix of red clover commensals when dipped in phyllosphere pathogens P. <em>syringae pv</em>. tomato and X. <em>perforans</em> wild-type and T6SS mutant. P. syringae pv. tomato was unable to infect control tomato plants in trial two under growth chamber conditions, and was not tested further<em> in planta</em>. <em>In vitro</em> testing indicated a red clover phyllosphere commensal, <em>S. taxi</em> 55669, inhibited X. <em>perforans</em> wild-type and mutant colonies on R2a plates. Therefore, <em>S. taxi</em> 55669 was studied for disease protection further in the greenhouse with seedling dip experiments. To assess the effectiveness of <em>S. taxi</em> 55669 <em>in planta</em>, foliar disease percent and bacterial population counts were recorded on bacterial dipped seedlings coinoculated with phyllopshere pathogens <em>X.</em> <em>perforans</em> wild-type and T6SS mutant. It is not recommended that <em>S. taxi</em> 55669 serve as a potential biocontrol for P. <em>syringae pv</em>. tomato 99B799 ba ed off the neutral effect S. taxi 55669 had with <em>in vitro</em> testing. Methylobacteria observed in this study, did not show any benefits against disease against <em>P. syringae</em> pv. tomato and <em>X</em>. <em>perforans</em> wild-type and T6SS mutant. However, the results from this study indicate <em>S. taxi</em> 55669 should be studied further for plant health, and has potential as a biocontrol against <em>X. perforans. X. perforans</em> T6SS mutant was found to be less virulent in the presence of <em>S. taxi</em> 55669, than X. perforans wild-type. Based off the high NOI and decrease in foliar disease, this study shows <em>S. taxi</em> 5669 has potential as a biocontrol for<em> X. perforans</em>. The decrease in motility and bacterial populations of <em>X. perforans</em> T6SS mutant when in the presence of <em>S. taxi</em> 55669 highlights the importance of <em>icmF3</em> in motility and ability to attack resident phyllosphere bacteria. The lack of differentiation between direct inhibition on R2a plates of <em>X. perforans</em> wildtype and T6SS mutant in the presence of <em>S. taxi</em> 55669 indicates a part of the T6SS mutant system may still be functional.</p>"]},{"key":"dc:title","label":"Title","values":["Exploring Interactions of Phyllosphere Epiphytes with Plant Pathogenic Bacteria Pseudomonas and Xanthomonas on Tomato"]}]}],"canonical_facts":{"dc:contributor":["Dr. John Davis","Dr. Neha Potnis","Dr. Lauren King"],"dc:creator":["Turner, Ashley D"],"dc:date.available":["2020-06-26T07:00:00Z"],"dc:description.abstract":["<p>Recent studies have indicated the importance of resident microflora of plants in contributing towards overall plant health. Among difference components of the plant microbiome, <em>Methylobacterium</em> and <em>Sphingomonas</em> have been recognized as common residents of the <em>phyllosphere</em> for many host plants, however their role in disease control needs to be further investigated. The purpose of this study was to conduct experiments investigating the effectiveness of <em>phyllosphere</em> <em>Methylobacterium</em> and <em>Sphingomonas</em> isolated from red clover against common tomato <em>phyllosphere</em> bacterial pathogens, <em>Pseudomonas syringae</em> pv. tomato and <em>Xanthomonas perforans</em>. Additionally, this study uses X. <em>perforans</em> wild-type and X. <em>perforans</em> type VI secretion system (T6SS) mutant strains to observe the role of type VI secretion system in infection with a potential biocontrol agent. To explain interactions among the <em>phyllosphere</em> residents, nutritional similarity, motility and direct inhibition were observed <em>in vitro</em>. Based off the literature, it was hypothesized that<em> Sphingomonas</em> would prove to be a potential biocontrol agent against P. <em>syringae pv</em>. tomato, X. <em>perforans</em> wild-type and T6SS mutant. <em>Methylobacteria</em> would not prove to be a potential biocontrol agent against P. <em>syrinage pv</em>. tomato nor X. <em>perforans</em> wild-type and mutant. Lastly, it was hypothesized that X. <em>perforans</em> wild-type would be more virulent than the X. <em>perforans</em> T6SS when competing with a potential biocontrol agent (red clover commensal).</p> <p><em>In planta</em> experiments under growth chamber conditions indicated no significant change in disease with seeds that were soaked in a mix of red clover commensals when dipped in phyllosphere pathogens P. <em>syringae pv</em>. tomato and X. <em>perforans</em> wild-type and T6SS mutant. P. syringae pv. tomato was unable to infect control tomato plants in trial two under growth chamber conditions, and was not tested further<em> in planta</em>. <em>In vitro</em> testing indicated a red clover phyllosphere commensal, <em>S. taxi</em> 55669, inhibited X. <em>perforans</em> wild-type and mutant colonies on R2a plates. Therefore, <em>S. taxi</em> 55669 was studied for disease protection further in the greenhouse with seedling dip experiments. To assess the effectiveness of <em>S. taxi</em> 55669 <em>in planta</em>, foliar disease percent and bacterial population counts were recorded on bacterial dipped seedlings coinoculated with phyllopshere pathogens <em>X.</em> <em>perforans</em> wild-type and T6SS mutant. It is not recommended that <em>S. taxi</em> 55669 serve as a potential biocontrol for P. <em>syringae pv</em>. tomato 99B799 ba ed off the neutral effect S. taxi 55669 had with <em>in vitro</em> testing. Methylobacteria observed in this study, did not show any benefits against disease against <em>P. syringae</em> pv. tomato and <em>X</em>. <em>perforans</em> wild-type and T6SS mutant. However, the results from this study indicate <em>S. taxi</em> 55669 should be studied further for plant health, and has potential as a biocontrol against <em>X. perforans. X. perforans</em> T6SS mutant was found to be less virulent in the presence of <em>S. taxi</em> 55669, than X. perforans wild-type. Based off the high NOI and decrease in foliar disease, this study shows <em>S. taxi</em> 5669 has potential as a biocontrol for<em> X. perforans</em>. The decrease in motility and bacterial populations of <em>X. perforans</em> T6SS mutant when in the presence of <em>S. taxi</em> 55669 highlights the importance of <em>icmF3</em> in motility and ability to attack resident phyllosphere bacteria. The lack of differentiation between direct inhibition on R2a plates of <em>X. perforans</em> wildtype and T6SS mutant in the presence of <em>S. taxi</em> 55669 indicates a part of the T6SS mutant system may still be functional.</p>"],"dc:identifier":["https://csuepress.columbusstate.edu/theses_dissertations/395"],"dc:language":["English"],"dc:subject":["Plant Pathology","Plant Microbiology","Biological Control","Methylobacterium","Sphingomonas","Biology","Botany","Plant Sciences"],"dc:title":["Exploring Interactions of Phyllosphere Epiphytes with Plant Pathogenic Bacteria Pseudomonas and Xanthomonas on Tomato"],"thesis:degree_discipline":["Biology"],"thesis:degree_level":["Thesis"],"thesis:degree_name":["Biology"]},"updated_at":"2026-07-24T01:45:01Z"}