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Leishmania amazonensis Engages CD36 to Drive Parasitophorous Vacuole Maturation

Leishmania amastigotes manipulate the activity of macrophages to favor their own success. However, very little is known about the role of innate recognition and signaling triggered by amastigotes in this host-parasite interaction. In this work we developed a new infection model in adult Drosophila t...

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Autores principales: Okuda, Kendi, Tong, Mei, Dempsey, Brian, Moore, Kathryn J., Gazzinelli, Ricardo T., Silverman, Neal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4900624/
https://www.ncbi.nlm.nih.gov/pubmed/27280707
http://dx.doi.org/10.1371/journal.ppat.1005669
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author Okuda, Kendi
Tong, Mei
Dempsey, Brian
Moore, Kathryn J.
Gazzinelli, Ricardo T.
Silverman, Neal
author_facet Okuda, Kendi
Tong, Mei
Dempsey, Brian
Moore, Kathryn J.
Gazzinelli, Ricardo T.
Silverman, Neal
author_sort Okuda, Kendi
collection PubMed
description Leishmania amastigotes manipulate the activity of macrophages to favor their own success. However, very little is known about the role of innate recognition and signaling triggered by amastigotes in this host-parasite interaction. In this work we developed a new infection model in adult Drosophila to take advantage of its superior genetic resources to identify novel host factors limiting Leishmania amazonensis infection. The model is based on the capacity of macrophage-like cells, plasmatocytes, to phagocytose and control the proliferation of parasites injected into adult flies. Using this model, we screened a collection of RNAi-expressing flies for anti-Leishmania defense factors. Notably, we found three CD36-like scavenger receptors that were important for defending against Leishmania infection. Mechanistic studies in mouse macrophages showed that CD36 accumulates specifically at sites where the parasite contacts the parasitophorous vacuole membrane. Furthermore, CD36-deficient macrophages were defective in the formation of the large parasitophorous vacuole typical of L. amazonensis infection, a phenotype caused by inefficient fusion with late endosomes and/or lysosomes. These data identify an unprecedented role for CD36 in the biogenesis of the parasitophorous vacuole and further highlight the utility of Drosophila as a model system for dissecting innate immune responses to infection.
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spelling pubmed-49006242016-06-24 Leishmania amazonensis Engages CD36 to Drive Parasitophorous Vacuole Maturation Okuda, Kendi Tong, Mei Dempsey, Brian Moore, Kathryn J. Gazzinelli, Ricardo T. Silverman, Neal PLoS Pathog Research Article Leishmania amastigotes manipulate the activity of macrophages to favor their own success. However, very little is known about the role of innate recognition and signaling triggered by amastigotes in this host-parasite interaction. In this work we developed a new infection model in adult Drosophila to take advantage of its superior genetic resources to identify novel host factors limiting Leishmania amazonensis infection. The model is based on the capacity of macrophage-like cells, plasmatocytes, to phagocytose and control the proliferation of parasites injected into adult flies. Using this model, we screened a collection of RNAi-expressing flies for anti-Leishmania defense factors. Notably, we found three CD36-like scavenger receptors that were important for defending against Leishmania infection. Mechanistic studies in mouse macrophages showed that CD36 accumulates specifically at sites where the parasite contacts the parasitophorous vacuole membrane. Furthermore, CD36-deficient macrophages were defective in the formation of the large parasitophorous vacuole typical of L. amazonensis infection, a phenotype caused by inefficient fusion with late endosomes and/or lysosomes. These data identify an unprecedented role for CD36 in the biogenesis of the parasitophorous vacuole and further highlight the utility of Drosophila as a model system for dissecting innate immune responses to infection. Public Library of Science 2016-06-09 /pmc/articles/PMC4900624/ /pubmed/27280707 http://dx.doi.org/10.1371/journal.ppat.1005669 Text en © 2016 Okuda et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Okuda, Kendi
Tong, Mei
Dempsey, Brian
Moore, Kathryn J.
Gazzinelli, Ricardo T.
Silverman, Neal
Leishmania amazonensis Engages CD36 to Drive Parasitophorous Vacuole Maturation
title Leishmania amazonensis Engages CD36 to Drive Parasitophorous Vacuole Maturation
title_full Leishmania amazonensis Engages CD36 to Drive Parasitophorous Vacuole Maturation
title_fullStr Leishmania amazonensis Engages CD36 to Drive Parasitophorous Vacuole Maturation
title_full_unstemmed Leishmania amazonensis Engages CD36 to Drive Parasitophorous Vacuole Maturation
title_short Leishmania amazonensis Engages CD36 to Drive Parasitophorous Vacuole Maturation
title_sort leishmania amazonensis engages cd36 to drive parasitophorous vacuole maturation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4900624/
https://www.ncbi.nlm.nih.gov/pubmed/27280707
http://dx.doi.org/10.1371/journal.ppat.1005669
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