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Vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific T cells

Mycobacterium tuberculosis (Mtb) infection elicits both protein and lipid antigen-specific T cell responses. However, the incorporation of lipid antigens into subunit vaccine strategies and formulations has been underexplored, and the characteristics of vaccine-induced Mtb lipid-specific memory T ce...

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Autores principales: Morgun, Eva, Zhu, Jennifer, Almunif, Sultan, Bobbala, Sharan, Aguilar, Melissa S., Wang, Junzhong, Conner, Kathleen, Cui, Yongyong, Cao, Liang, Seshadri, Chetan, Scott, Evan A., Wang, Chyung-Ru
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10028924/
https://www.ncbi.nlm.nih.gov/pubmed/36945395
http://dx.doi.org/10.1101/2023.03.07.531489
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author Morgun, Eva
Zhu, Jennifer
Almunif, Sultan
Bobbala, Sharan
Aguilar, Melissa S.
Wang, Junzhong
Conner, Kathleen
Cui, Yongyong
Cao, Liang
Seshadri, Chetan
Scott, Evan A.
Wang, Chyung-Ru
author_facet Morgun, Eva
Zhu, Jennifer
Almunif, Sultan
Bobbala, Sharan
Aguilar, Melissa S.
Wang, Junzhong
Conner, Kathleen
Cui, Yongyong
Cao, Liang
Seshadri, Chetan
Scott, Evan A.
Wang, Chyung-Ru
author_sort Morgun, Eva
collection PubMed
description Mycobacterium tuberculosis (Mtb) infection elicits both protein and lipid antigen-specific T cell responses. However, the incorporation of lipid antigens into subunit vaccine strategies and formulations has been underexplored, and the characteristics of vaccine-induced Mtb lipid-specific memory T cells have remained elusive. Mycolic acid (MA), a major lipid component of the Mtb cell wall, is presented by human CD1b molecules to unconventional T cell subsets. These MA-specific CD1b-restricted T cells have been detected in the blood and disease sites of Mtb-infected individuals, suggesting that MA is a promising lipid antigen for incorporation into multicomponent subunit vaccines. In this study, we utilized the enhanced stability of bicontinuous nanospheres (BCN) to efficiently encapsulate MA for in vivo delivery to MA-specific T cells, both alone and in combination with an immunodominant Mtb protein antigen (Ag85B). Pulmonary administration of MA-loaded BCN (MA-BCN) elicited MA-specific T cell responses in humanized CD1 transgenic mice. Simultaneous delivery of MA and Ag85B within BCN activated both MA- and Ag85B-specific T cells. Notably, pulmonary vaccination with MA-Ag85B-BCN resulted in the persistence of MA, but not Ag85B, within alveolar macrophages in the lung. Vaccination of MA-BCN through intravenous or subcutaneous route, or with attenuated Mtb likewise reproduced MA persistence. Moreover, MA-specific T cells in MA-BCN-vaccinated mice differentiated into a T follicular helper-like phenotype. Overall, the BCN platform allows for the dual encapsulation and in vivo activation of lipid and protein antigen-specific T cells and leads to persistent lipid depots that could offer long-lasting immune responses.
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spelling pubmed-100289242023-03-22 Vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific T cells Morgun, Eva Zhu, Jennifer Almunif, Sultan Bobbala, Sharan Aguilar, Melissa S. Wang, Junzhong Conner, Kathleen Cui, Yongyong Cao, Liang Seshadri, Chetan Scott, Evan A. Wang, Chyung-Ru bioRxiv Article Mycobacterium tuberculosis (Mtb) infection elicits both protein and lipid antigen-specific T cell responses. However, the incorporation of lipid antigens into subunit vaccine strategies and formulations has been underexplored, and the characteristics of vaccine-induced Mtb lipid-specific memory T cells have remained elusive. Mycolic acid (MA), a major lipid component of the Mtb cell wall, is presented by human CD1b molecules to unconventional T cell subsets. These MA-specific CD1b-restricted T cells have been detected in the blood and disease sites of Mtb-infected individuals, suggesting that MA is a promising lipid antigen for incorporation into multicomponent subunit vaccines. In this study, we utilized the enhanced stability of bicontinuous nanospheres (BCN) to efficiently encapsulate MA for in vivo delivery to MA-specific T cells, both alone and in combination with an immunodominant Mtb protein antigen (Ag85B). Pulmonary administration of MA-loaded BCN (MA-BCN) elicited MA-specific T cell responses in humanized CD1 transgenic mice. Simultaneous delivery of MA and Ag85B within BCN activated both MA- and Ag85B-specific T cells. Notably, pulmonary vaccination with MA-Ag85B-BCN resulted in the persistence of MA, but not Ag85B, within alveolar macrophages in the lung. Vaccination of MA-BCN through intravenous or subcutaneous route, or with attenuated Mtb likewise reproduced MA persistence. Moreover, MA-specific T cells in MA-BCN-vaccinated mice differentiated into a T follicular helper-like phenotype. Overall, the BCN platform allows for the dual encapsulation and in vivo activation of lipid and protein antigen-specific T cells and leads to persistent lipid depots that could offer long-lasting immune responses. Cold Spring Harbor Laboratory 2023-07-13 /pmc/articles/PMC10028924/ /pubmed/36945395 http://dx.doi.org/10.1101/2023.03.07.531489 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Morgun, Eva
Zhu, Jennifer
Almunif, Sultan
Bobbala, Sharan
Aguilar, Melissa S.
Wang, Junzhong
Conner, Kathleen
Cui, Yongyong
Cao, Liang
Seshadri, Chetan
Scott, Evan A.
Wang, Chyung-Ru
Vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific T cells
title Vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific T cells
title_full Vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific T cells
title_fullStr Vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific T cells
title_full_unstemmed Vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific T cells
title_short Vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific T cells
title_sort vaccination with mycobacterial lipid loaded nanoparticle leads to lipid antigen persistence and memory differentiation of antigen-specific t cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10028924/
https://www.ncbi.nlm.nih.gov/pubmed/36945395
http://dx.doi.org/10.1101/2023.03.07.531489
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