{"id":{"repo_id":"etsu","oai_identifier":"oai:dc.etsu.edu:etd-3371"},"canonical_url":"https://search.dev.ndltd.org/etd/etsu/oai:dc.etsu.edu:etd-3371","repository":{"repo_id":"etsu","name":"East Tennessee State University","base_url":"https://dc.etsu.edu/do/oai/"},"display":{"title":"Herpes Simplex Virus Glycoprotein D/Host Cell Surface Interaction Stimulates <em>Chlamydia trachomatis</em> Persistence via a Novel Pathway.","abstract":"<p>When presented with certain unfavorable environmental conditions, <em>C. trachomatis</em> reticulate bodies (RBs) enter into a viable, yet noncultivable state called persistence. Two hallmarks of persistent chlamydiae are swollen, aberrantly shaped RBs, as viewed by transmission electron microscopy and a decrease in infectious progeny. Several models of chlamydial persistence have been described, including interferon-&#947; (IFN-&#947;), IFN-&#945;, IFN-&#946;, and tumor necrosis factor-&#945;-exposure and nutrient deprivation. Previously, we established an <em>in vitro</em> co-infection model of two of the most common sexually transmitted pathogens in the United States, <em>C. trachomatis</em> and Herpes Simplex Virus-2 (HSV). Data from this tissue culture model indicate that: i) viral co-infection stimulates the formation of persistent chlamydiae and ii) productive HSV replication is not required for persistence induction. Further studies indicate that, co-infection-induced persistence is not mediated by: i) any known anti-chlamydial cytokine; ii) activation of inducible nitric oxide synthase or indoleamine 2, 3-dioxygenase; iii) inhibition of vesicular trafficking or sphingomyelin transport to the inclusion or; iv) amino acid, iron or glucose deprivation. These data demonstrate that co-infection-induced persistence is mediated by a previously undescribed, novel mechanism. During long-term co-infection with UV-inactivated HSV-2, chlamydiae recover following an initial suppression of chlamydial infectivity. These data indicate that HSV-induced persistence, like other persistence models, is reversible. Co-incubation of fixed, HSV-2-infected inducer cells with viable, <em>C. trachomatis</em> infected responder cells suppresses production of infectious chlamydial progeny and stimulates the formation of swollen, aberrantly shaped RBs. Antibody neutralization of HSV glycoprotein D (gD), which prevents viral attachment to one of four known HSV co-receptors on the host cell surface, also prevents co-infection-induced persistence, suggesting that HSV gD interaction with host cell surface receptors can provide the necessary stimulus to alter <em>C. trachomatis</em> development. Finally, exposure of <em>C. trachomatis</em> infected cells to soluble, recombinant HSV-2 gD:Fc fusion proteins decreases production of infectious EBs to a similar degree observed in co-infected cultures. Thus, we hypothesize that interaction of HSV gD with the host cell surface triggers a novel host anti-chlamydial pathway that restricts chlamydial development.</p>","abstract_html":"&lt;p&gt;When presented with certain unfavorable environmental conditions, &lt;em&gt;C. trachomatis&lt;/em&gt; reticulate bodies (RBs) enter into a viable, yet noncultivable state called persistence. Two hallmarks of persistent chlamydiae are swollen, aberrantly shaped RBs, as viewed by transmission electron microscopy and a decrease in infectious progeny. Several models of chlamydial persistence have been described, including interferon-&amp;#947; (IFN-&amp;#947;), IFN-&amp;#945;, IFN-&amp;#946;, and tumor necrosis factor-&amp;#945;-exposure and nutrient deprivation. Previously, we established an &lt;em&gt;in vitro&lt;/em&gt; co-infection model of two of the most common sexually transmitted pathogens in the United States, &lt;em&gt;C. trachomatis&lt;/em&gt; and Herpes Simplex Virus-2 (HSV). Data from this tissue culture model indicate that: i) viral co-infection stimulates the formation of persistent chlamydiae and ii) productive HSV replication is not required for persistence induction. Further studies indicate that, co-infection-induced persistence is not mediated by: i) any known anti-chlamydial cytokine; ii) activation of inducible nitric oxide synthase or indoleamine 2, 3-dioxygenase; iii) inhibition of vesicular trafficking or sphingomyelin transport to the inclusion or; iv) amino acid, iron or glucose deprivation. These data demonstrate that co-infection-induced persistence is mediated by a previously undescribed, novel mechanism. During long-term co-infection with UV-inactivated HSV-2, chlamydiae recover following an initial suppression of chlamydial infectivity. These data indicate that HSV-induced persistence, like other persistence models, is reversible. Co-incubation of fixed, HSV-2-infected inducer cells with viable, &lt;em&gt;C. trachomatis&lt;/em&gt; infected responder cells suppresses production of infectious chlamydial progeny and stimulates the formation of swollen, aberrantly shaped RBs. Antibody neutralization of HSV glycoprotein D (gD), which prevents viral attachment to one of four known HSV co-receptors on the host cell surface, also prevents co-infection-induced persistence, suggesting that HSV gD interaction with host cell surface receptors can provide the necessary stimulus to alter &lt;em&gt;C. trachomatis&lt;/em&gt; development. Finally, exposure of &lt;em&gt;C. trachomatis&lt;/em&gt; infected cells to soluble, recombinant HSV-2 gD:Fc fusion proteins decreases production of infectious EBs to a similar degree observed in co-infected cultures. Thus, we hypothesize that interaction of HSV gD with the host cell surface triggers a novel host anti-chlamydial pathway that restricts chlamydial development.&lt;/p&gt;","abstract_has_math":false,"creators":["Vanover, Jennifer"],"institution":null,"degree_name":"PhD (Doctor of Philosophy)","degree_level":"Dissertation - unrestricted","degree_discipline":"Biomedical Sciences","degree_department":null,"school":null,"contributors":[],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2008,"date_issued":"2008-12-13T08:00:00Z","date_published":"2008-12-13T08:00:00Z","updated_at":"2026-07-24T02:21:11Z","subjects":["Persistence","Co-infection","Herpes Simplex Virus","Chlamydia trachomatis","Life Sciences","Microbiology","Pathogenic Microbiology"],"languages":[],"rights":["Copyright by the authors."],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://dc.etsu.edu/etd/2019","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:creator","label":"Author","values":["Vanover, Jennifer"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.issued","label":"Date","values":["2008-12-13T08:00:00Z"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Biomedical Sciences"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Dissertation - unrestricted"]},{"key":"thesis:degree_name","label":"Degree Name","values":["PhD (Doctor of Philosophy)"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Persistence","Co-infection","Herpes Simplex Virus","Chlamydia trachomatis","Life Sciences","Microbiology","Pathogenic Microbiology"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:rights","label":"Dc Rights","values":["Copyright by the authors."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://dc.etsu.edu/context/etd/article/3371/viewcontent/VanoverJ092308f.pdf","https://dc.etsu.edu/etd/2019"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>When presented with certain unfavorable environmental conditions, <em>C. trachomatis</em> reticulate bodies (RBs) enter into a viable, yet noncultivable state called persistence. Two hallmarks of persistent chlamydiae are swollen, aberrantly shaped RBs, as viewed by transmission electron microscopy and a decrease in infectious progeny. Several models of chlamydial persistence have been described, including interferon-&#947; (IFN-&#947;), IFN-&#945;, IFN-&#946;, and tumor necrosis factor-&#945;-exposure and nutrient deprivation. Previously, we established an <em>in vitro</em> co-infection model of two of the most common sexually transmitted pathogens in the United States, <em>C. trachomatis</em> and Herpes Simplex Virus-2 (HSV). Data from this tissue culture model indicate that: i) viral co-infection stimulates the formation of persistent chlamydiae and ii) productive HSV replication is not required for persistence induction. Further studies indicate that, co-infection-induced persistence is not mediated by: i) any known anti-chlamydial cytokine; ii) activation of inducible nitric oxide synthase or indoleamine 2, 3-dioxygenase; iii) inhibition of vesicular trafficking or sphingomyelin transport to the inclusion or; iv) amino acid, iron or glucose deprivation. These data demonstrate that co-infection-induced persistence is mediated by a previously undescribed, novel mechanism. During long-term co-infection with UV-inactivated HSV-2, chlamydiae recover following an initial suppression of chlamydial infectivity. These data indicate that HSV-induced persistence, like other persistence models, is reversible. Co-incubation of fixed, HSV-2-infected inducer cells with viable, <em>C. trachomatis</em> infected responder cells suppresses production of infectious chlamydial progeny and stimulates the formation of swollen, aberrantly shaped RBs. Antibody neutralization of HSV glycoprotein D (gD), which prevents viral attachment to one of four known HSV co-receptors on the host cell surface, also prevents co-infection-induced persistence, suggesting that HSV gD interaction with host cell surface receptors can provide the necessary stimulus to alter <em>C. trachomatis</em> development. Finally, exposure of <em>C. trachomatis</em> infected cells to soluble, recombinant HSV-2 gD:Fc fusion proteins decreases production of infectious EBs to a similar degree observed in co-infected cultures. Thus, we hypothesize that interaction of HSV gD with the host cell surface triggers a novel host anti-chlamydial pathway that restricts chlamydial development.</p>"]},{"key":"dc:title","label":"Title","values":["Herpes Simplex Virus Glycoprotein D/Host Cell Surface Interaction Stimulates <em>Chlamydia trachomatis</em> Persistence via a Novel Pathway."]}]}],"canonical_facts":{"dc:creator":["Vanover, Jennifer"],"dc:date.issued":["2008-12-13T08:00:00Z"],"dc:description.abstract":["<p>When presented with certain unfavorable environmental conditions, <em>C. trachomatis</em> reticulate bodies (RBs) enter into a viable, yet noncultivable state called persistence. Two hallmarks of persistent chlamydiae are swollen, aberrantly shaped RBs, as viewed by transmission electron microscopy and a decrease in infectious progeny. Several models of chlamydial persistence have been described, including interferon-&#947; (IFN-&#947;), IFN-&#945;, IFN-&#946;, and tumor necrosis factor-&#945;-exposure and nutrient deprivation. Previously, we established an <em>in vitro</em> co-infection model of two of the most common sexually transmitted pathogens in the United States, <em>C. trachomatis</em> and Herpes Simplex Virus-2 (HSV). Data from this tissue culture model indicate that: i) viral co-infection stimulates the formation of persistent chlamydiae and ii) productive HSV replication is not required for persistence induction. Further studies indicate that, co-infection-induced persistence is not mediated by: i) any known anti-chlamydial cytokine; ii) activation of inducible nitric oxide synthase or indoleamine 2, 3-dioxygenase; iii) inhibition of vesicular trafficking or sphingomyelin transport to the inclusion or; iv) amino acid, iron or glucose deprivation. These data demonstrate that co-infection-induced persistence is mediated by a previously undescribed, novel mechanism. During long-term co-infection with UV-inactivated HSV-2, chlamydiae recover following an initial suppression of chlamydial infectivity. These data indicate that HSV-induced persistence, like other persistence models, is reversible. Co-incubation of fixed, HSV-2-infected inducer cells with viable, <em>C. trachomatis</em> infected responder cells suppresses production of infectious chlamydial progeny and stimulates the formation of swollen, aberrantly shaped RBs. Antibody neutralization of HSV glycoprotein D (gD), which prevents viral attachment to one of four known HSV co-receptors on the host cell surface, also prevents co-infection-induced persistence, suggesting that HSV gD interaction with host cell surface receptors can provide the necessary stimulus to alter <em>C. trachomatis</em> development. Finally, exposure of <em>C. trachomatis</em> infected cells to soluble, recombinant HSV-2 gD:Fc fusion proteins decreases production of infectious EBs to a similar degree observed in co-infected cultures. Thus, we hypothesize that interaction of HSV gD with the host cell surface triggers a novel host anti-chlamydial pathway that restricts chlamydial development.</p>"],"dc:identifier":["https://dc.etsu.edu/context/etd/article/3371/viewcontent/VanoverJ092308f.pdf","https://dc.etsu.edu/etd/2019"],"dc:rights":["Copyright by the authors."],"dc:subject":["Persistence","Co-infection","Herpes Simplex Virus","Chlamydia trachomatis","Life Sciences","Microbiology","Pathogenic Microbiology"],"dc:title":["Herpes Simplex Virus Glycoprotein D/Host Cell Surface Interaction Stimulates <em>Chlamydia trachomatis</em> Persistence via a Novel Pathway."],"thesis:degree_discipline":["Biomedical Sciences"],"thesis:degree_level":["Dissertation - unrestricted"],"thesis:degree_name":["PhD (Doctor of Philosophy)"]},"updated_at":"2026-07-24T02:21:11Z"}