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Display of malaria transmission-blocking antigens on chimeric duck hepatitis B virus-derived virus-like particles produced in Hansenula polymorpha

BACKGROUND: Malaria caused by Plasmodium falciparum is one of the major threats to human health globally. Despite huge efforts in malaria control and eradication, highly effective vaccines are urgently needed, including vaccines that can block malaria transmission. Chimeric virus-like particles (VLP...

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Autores principales: Wetzel, David, Chan, Jo-Anne, Suckow, Manfred, Barbian, Andreas, Weniger, Michael, Jenzelewski, Volker, Reiling, Linda, Richards, Jack S., Anderson, David A., Kouskousis, Betty, Palmer, Catherine, Hanssen, Eric, Schembecker, Gerhard, Merz, Juliane, Beeson, James G., Piontek, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6726142/
https://www.ncbi.nlm.nih.gov/pubmed/31483818
http://dx.doi.org/10.1371/journal.pone.0221394
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author Wetzel, David
Chan, Jo-Anne
Suckow, Manfred
Barbian, Andreas
Weniger, Michael
Jenzelewski, Volker
Reiling, Linda
Richards, Jack S.
Anderson, David A.
Kouskousis, Betty
Palmer, Catherine
Hanssen, Eric
Schembecker, Gerhard
Merz, Juliane
Beeson, James G.
Piontek, Michael
author_facet Wetzel, David
Chan, Jo-Anne
Suckow, Manfred
Barbian, Andreas
Weniger, Michael
Jenzelewski, Volker
Reiling, Linda
Richards, Jack S.
Anderson, David A.
Kouskousis, Betty
Palmer, Catherine
Hanssen, Eric
Schembecker, Gerhard
Merz, Juliane
Beeson, James G.
Piontek, Michael
author_sort Wetzel, David
collection PubMed
description BACKGROUND: Malaria caused by Plasmodium falciparum is one of the major threats to human health globally. Despite huge efforts in malaria control and eradication, highly effective vaccines are urgently needed, including vaccines that can block malaria transmission. Chimeric virus-like particles (VLP) have emerged as a promising strategy to develop new malaria vaccine candidates. METHODS: We developed yeast cell lines and processes for the expression of malaria transmission-blocking vaccine candidates Pfs25 and Pfs230 as VLP and VLP were analyzed for purity, size, protein incorporation rate and expression of malaria antigens. RESULTS: In this study, a novel platform for the display of Plasmodium falciparum antigens on chimeric VLP is presented. Leading transmission-blocking vaccine candidates Pfs25 and Pfs230 were genetically fused to the small surface protein (dS) of the duck hepatitis B virus (DHBV). The resulting fusion proteins were co-expressed in recombinant Hansenula polymorpha (syn. Pichia angusta, Ogataea polymorpha) strains along with the wild-type dS as the VLP scaffold protein. Through this strategy, chimeric VLP containing Pfs25 or the Pfs230-derived fragments Pfs230c or Pfs230D1M were purified. Up to 100 mg chimeric VLP were isolated from 100 g dry cell weight with a maximum protein purity of 90% on the protein level. Expression of the Pfs230D1M construct was more efficient than Pfs230c and enabled VLP with higher purity. VLP showed reactivity with transmission-blocking antibodies and supported the surface display of the malaria antigens on the native VLP. CONCLUSION: The incorporation of leading Plasmodium falciparum transmission-blocking antigens into the dS-based VLP scaffold is a promising novel strategy for their display on nano-scaled particles. Competitive processes for efficient production and purification were established in this study.
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spelling pubmed-67261422019-09-16 Display of malaria transmission-blocking antigens on chimeric duck hepatitis B virus-derived virus-like particles produced in Hansenula polymorpha Wetzel, David Chan, Jo-Anne Suckow, Manfred Barbian, Andreas Weniger, Michael Jenzelewski, Volker Reiling, Linda Richards, Jack S. Anderson, David A. Kouskousis, Betty Palmer, Catherine Hanssen, Eric Schembecker, Gerhard Merz, Juliane Beeson, James G. Piontek, Michael PLoS One Research Article BACKGROUND: Malaria caused by Plasmodium falciparum is one of the major threats to human health globally. Despite huge efforts in malaria control and eradication, highly effective vaccines are urgently needed, including vaccines that can block malaria transmission. Chimeric virus-like particles (VLP) have emerged as a promising strategy to develop new malaria vaccine candidates. METHODS: We developed yeast cell lines and processes for the expression of malaria transmission-blocking vaccine candidates Pfs25 and Pfs230 as VLP and VLP were analyzed for purity, size, protein incorporation rate and expression of malaria antigens. RESULTS: In this study, a novel platform for the display of Plasmodium falciparum antigens on chimeric VLP is presented. Leading transmission-blocking vaccine candidates Pfs25 and Pfs230 were genetically fused to the small surface protein (dS) of the duck hepatitis B virus (DHBV). The resulting fusion proteins were co-expressed in recombinant Hansenula polymorpha (syn. Pichia angusta, Ogataea polymorpha) strains along with the wild-type dS as the VLP scaffold protein. Through this strategy, chimeric VLP containing Pfs25 or the Pfs230-derived fragments Pfs230c or Pfs230D1M were purified. Up to 100 mg chimeric VLP were isolated from 100 g dry cell weight with a maximum protein purity of 90% on the protein level. Expression of the Pfs230D1M construct was more efficient than Pfs230c and enabled VLP with higher purity. VLP showed reactivity with transmission-blocking antibodies and supported the surface display of the malaria antigens on the native VLP. CONCLUSION: The incorporation of leading Plasmodium falciparum transmission-blocking antigens into the dS-based VLP scaffold is a promising novel strategy for their display on nano-scaled particles. Competitive processes for efficient production and purification were established in this study. Public Library of Science 2019-09-04 /pmc/articles/PMC6726142/ /pubmed/31483818 http://dx.doi.org/10.1371/journal.pone.0221394 Text en © 2019 Wetzel 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Wetzel, David
Chan, Jo-Anne
Suckow, Manfred
Barbian, Andreas
Weniger, Michael
Jenzelewski, Volker
Reiling, Linda
Richards, Jack S.
Anderson, David A.
Kouskousis, Betty
Palmer, Catherine
Hanssen, Eric
Schembecker, Gerhard
Merz, Juliane
Beeson, James G.
Piontek, Michael
Display of malaria transmission-blocking antigens on chimeric duck hepatitis B virus-derived virus-like particles produced in Hansenula polymorpha
title Display of malaria transmission-blocking antigens on chimeric duck hepatitis B virus-derived virus-like particles produced in Hansenula polymorpha
title_full Display of malaria transmission-blocking antigens on chimeric duck hepatitis B virus-derived virus-like particles produced in Hansenula polymorpha
title_fullStr Display of malaria transmission-blocking antigens on chimeric duck hepatitis B virus-derived virus-like particles produced in Hansenula polymorpha
title_full_unstemmed Display of malaria transmission-blocking antigens on chimeric duck hepatitis B virus-derived virus-like particles produced in Hansenula polymorpha
title_short Display of malaria transmission-blocking antigens on chimeric duck hepatitis B virus-derived virus-like particles produced in Hansenula polymorpha
title_sort display of malaria transmission-blocking antigens on chimeric duck hepatitis b virus-derived virus-like particles produced in hansenula polymorpha
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6726142/
https://www.ncbi.nlm.nih.gov/pubmed/31483818
http://dx.doi.org/10.1371/journal.pone.0221394
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