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Trichomonas vaginalis Lipophosphoglycan Exploits Binding to Galectin-1 and -3 to Modulate Epithelial Immunity

Trichomoniasis is the most common non-viral sexually transmitted infection caused by the vaginotropic extracellular protozoan parasite Trichomonas vaginalis. The infection is recurrent, with no lasting immunity, often asymptomatic, and linked to pregnancy complications and risk of viral infection. T...

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Autores principales: Fichorova, Raina N., Yamamoto, Hidemi S., Fashemi, Titilayo, Foley, Evan, Ryan, Stanthia, Beatty, Noah, Dawood, Hassan, Hayes, Gary R., St-Pierre, Guillaume, Sato, Sachiko, Singh, Bibhuti N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4705417/
https://www.ncbi.nlm.nih.gov/pubmed/26589797
http://dx.doi.org/10.1074/jbc.M115.651497
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author Fichorova, Raina N.
Yamamoto, Hidemi S.
Fashemi, Titilayo
Foley, Evan
Ryan, Stanthia
Beatty, Noah
Dawood, Hassan
Hayes, Gary R.
St-Pierre, Guillaume
Sato, Sachiko
Singh, Bibhuti N.
author_facet Fichorova, Raina N.
Yamamoto, Hidemi S.
Fashemi, Titilayo
Foley, Evan
Ryan, Stanthia
Beatty, Noah
Dawood, Hassan
Hayes, Gary R.
St-Pierre, Guillaume
Sato, Sachiko
Singh, Bibhuti N.
author_sort Fichorova, Raina N.
collection PubMed
description Trichomoniasis is the most common non-viral sexually transmitted infection caused by the vaginotropic extracellular protozoan parasite Trichomonas vaginalis. The infection is recurrent, with no lasting immunity, often asymptomatic, and linked to pregnancy complications and risk of viral infection. The molecular mechanisms of immune evasion by the parasite are poorly understood. We demonstrate that galectin-1 and -3 are expressed by the human cervical and vaginal epithelial cells and act as pathogen-recognition receptors for the ceramide phosphoinositol glycan core (CPI-GC) of the dominant surface protozoan lipophosphoglycan (LPG). We used an in vitro model with siRNA galectin knockdown epithelial clones, recombinant galectins, clinical Trichomonas isolates, and mutant protozoan derivatives to dissect the function of galectin-1 and -3 in the context of Trichomonas infection. Galectin-1 suppressed chemokines that facilitate recruitment of phagocytes, which can eliminate extracellular protozoa (IL-8) or bridge innate to adaptive immunity (MIP-3α and RANTES (regulated on activation normal T cell expressed and secreted)). Silencing galectin-1 increased and adding exogenous galectin-1 suppressed chemokine responses to Trichomonas or CPI-GC/LPG. In contrast, silencing galectin-3 reduced IL-8 response to LPG. Live Trichomonas depleted the extracellular levels of galectin-3. Clinical isolates and mutant Trichomonas CPI-GC that had reduced affinity to galectin-3 but maintained affinity to galectin-1 suppressed chemokine expression. Thus via CPI-GC binding, Trichomonas is capable of regulating galectin bioavailability and function to the benefit of its parasitic survival. These findings suggest novel approaches to control trichomoniasis and warrant further studies of galectin-binding diversity among clinical isolates as a possible source for symptom disparity in parasitic infections.
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spelling pubmed-47054172016-01-14 Trichomonas vaginalis Lipophosphoglycan Exploits Binding to Galectin-1 and -3 to Modulate Epithelial Immunity Fichorova, Raina N. Yamamoto, Hidemi S. Fashemi, Titilayo Foley, Evan Ryan, Stanthia Beatty, Noah Dawood, Hassan Hayes, Gary R. St-Pierre, Guillaume Sato, Sachiko Singh, Bibhuti N. J Biol Chem Immunology Trichomoniasis is the most common non-viral sexually transmitted infection caused by the vaginotropic extracellular protozoan parasite Trichomonas vaginalis. The infection is recurrent, with no lasting immunity, often asymptomatic, and linked to pregnancy complications and risk of viral infection. The molecular mechanisms of immune evasion by the parasite are poorly understood. We demonstrate that galectin-1 and -3 are expressed by the human cervical and vaginal epithelial cells and act as pathogen-recognition receptors for the ceramide phosphoinositol glycan core (CPI-GC) of the dominant surface protozoan lipophosphoglycan (LPG). We used an in vitro model with siRNA galectin knockdown epithelial clones, recombinant galectins, clinical Trichomonas isolates, and mutant protozoan derivatives to dissect the function of galectin-1 and -3 in the context of Trichomonas infection. Galectin-1 suppressed chemokines that facilitate recruitment of phagocytes, which can eliminate extracellular protozoa (IL-8) or bridge innate to adaptive immunity (MIP-3α and RANTES (regulated on activation normal T cell expressed and secreted)). Silencing galectin-1 increased and adding exogenous galectin-1 suppressed chemokine responses to Trichomonas or CPI-GC/LPG. In contrast, silencing galectin-3 reduced IL-8 response to LPG. Live Trichomonas depleted the extracellular levels of galectin-3. Clinical isolates and mutant Trichomonas CPI-GC that had reduced affinity to galectin-3 but maintained affinity to galectin-1 suppressed chemokine expression. Thus via CPI-GC binding, Trichomonas is capable of regulating galectin bioavailability and function to the benefit of its parasitic survival. These findings suggest novel approaches to control trichomoniasis and warrant further studies of galectin-binding diversity among clinical isolates as a possible source for symptom disparity in parasitic infections. American Society for Biochemistry and Molecular Biology 2016-01-08 2015-11-20 /pmc/articles/PMC4705417/ /pubmed/26589797 http://dx.doi.org/10.1074/jbc.M115.651497 Text en © 2016 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version free via Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Immunology
Fichorova, Raina N.
Yamamoto, Hidemi S.
Fashemi, Titilayo
Foley, Evan
Ryan, Stanthia
Beatty, Noah
Dawood, Hassan
Hayes, Gary R.
St-Pierre, Guillaume
Sato, Sachiko
Singh, Bibhuti N.
Trichomonas vaginalis Lipophosphoglycan Exploits Binding to Galectin-1 and -3 to Modulate Epithelial Immunity
title Trichomonas vaginalis Lipophosphoglycan Exploits Binding to Galectin-1 and -3 to Modulate Epithelial Immunity
title_full Trichomonas vaginalis Lipophosphoglycan Exploits Binding to Galectin-1 and -3 to Modulate Epithelial Immunity
title_fullStr Trichomonas vaginalis Lipophosphoglycan Exploits Binding to Galectin-1 and -3 to Modulate Epithelial Immunity
title_full_unstemmed Trichomonas vaginalis Lipophosphoglycan Exploits Binding to Galectin-1 and -3 to Modulate Epithelial Immunity
title_short Trichomonas vaginalis Lipophosphoglycan Exploits Binding to Galectin-1 and -3 to Modulate Epithelial Immunity
title_sort trichomonas vaginalis lipophosphoglycan exploits binding to galectin-1 and -3 to modulate epithelial immunity
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4705417/
https://www.ncbi.nlm.nih.gov/pubmed/26589797
http://dx.doi.org/10.1074/jbc.M115.651497
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