Construct design, production, and characterization of Plasmodium falciparum 48/45 R0.6C subunit protein produced in Lactococcus lactis as candidate vaccine

Abstract Background The sexual stages of Plasmodium falciparum are responsible for the spread of the parasite in malaria endemic areas. The cysteine-rich Pfs48/45 protein, exposed on the surface of sexual stages, is one of the most advanced antigens for inclusion into a vaccine that will block trans...

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Main Authors: Susheel K. Singh, Will Roeffen, Ulrik H. Mistarz, Bishwanath Kumar Chourasia, Fen Yang, Kasper D. Rand, Robert W. Sauerwein, Michael Theisen
Format: Article
Language:English
Published: BMC 2017-05-01
Series:Microbial Cell Factories
Subjects:
Online Access:http://link.springer.com/article/10.1186/s12934-017-0710-0
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spelling doaj-476bcd4d8c26493badd239572024b7272020-11-24T21:13:29ZengBMCMicrobial Cell Factories1475-28592017-05-0116111110.1186/s12934-017-0710-0Construct design, production, and characterization of Plasmodium falciparum 48/45 R0.6C subunit protein produced in Lactococcus lactis as candidate vaccineSusheel K. Singh0Will Roeffen1Ulrik H. Mistarz2Bishwanath Kumar Chourasia3Fen Yang4Kasper D. Rand5Robert W. Sauerwein6Michael Theisen7Department for Congenital Disorders, Statens Serum InstitutDepartment of Medical Microbiology, Radboud University Nijmegen Medical CenterDepartment of Pharmacy, University of CopenhagenDepartment for Congenital Disorders, Statens Serum InstitutDepartment of Pharmacy, University of CopenhagenDepartment of Pharmacy, University of CopenhagenDepartment of Medical Microbiology, Radboud University Nijmegen Medical CenterDepartment for Congenital Disorders, Statens Serum InstitutAbstract Background The sexual stages of Plasmodium falciparum are responsible for the spread of the parasite in malaria endemic areas. The cysteine-rich Pfs48/45 protein, exposed on the surface of sexual stages, is one of the most advanced antigens for inclusion into a vaccine that will block transmission. However, clinical Pfs48/45 sub-unit vaccine development has been hampered by the inability to produce high yields of recombinant protein as the native structure is required for the induction of functional transmission-blocking (TB) antibodies. We have investigated a downstream purification process of a sub-unit (R0.6C) fragment representing the C-terminal 6-Cys domain of Pfs48/45 (6C) genetically fused to the R0 region (R0) of asexual stage Glutamate Rich Protein expressed in Lactococcus lactis. Results A series of R0.6C fusion proteins containing features, which aim to increase expression levels or to facilitate protein purification, were evaluated at small scale. None of these modifications affected the overall yield of recombinant protein. Consequently, R0.6C with a C-terminal his tag was used for upstream and downstream process development. A simple work-flow was developed consisting of batch fermentation followed by two purification steps. As such, the recombinant protein was purified to homogeneity. The composition of the final product was verified by HPLC, mass spectrometry, SDS-PAGE and Western blotting with conformation dependent antibodies against Pfs48/45. The recombinant protein induced high levels of functional TB antibodies in rats. Conclusions The established production and purification process of the R0.6C fusion protein provide a strong basis for further clinical development of this candidate transmission blocking malaria vaccine.http://link.springer.com/article/10.1186/s12934-017-0710-0Plasmodium falciparumMalariaTransmission blockingPfs48/45Batch fermentation and Lactococcus lactis
collection DOAJ
language English
format Article
sources DOAJ
author Susheel K. Singh
Will Roeffen
Ulrik H. Mistarz
Bishwanath Kumar Chourasia
Fen Yang
Kasper D. Rand
Robert W. Sauerwein
Michael Theisen
spellingShingle Susheel K. Singh
Will Roeffen
Ulrik H. Mistarz
Bishwanath Kumar Chourasia
Fen Yang
Kasper D. Rand
Robert W. Sauerwein
Michael Theisen
Construct design, production, and characterization of Plasmodium falciparum 48/45 R0.6C subunit protein produced in Lactococcus lactis as candidate vaccine
Microbial Cell Factories
Plasmodium falciparum
Malaria
Transmission blocking
Pfs48/45
Batch fermentation and Lactococcus lactis
author_facet Susheel K. Singh
Will Roeffen
Ulrik H. Mistarz
Bishwanath Kumar Chourasia
Fen Yang
Kasper D. Rand
Robert W. Sauerwein
Michael Theisen
author_sort Susheel K. Singh
title Construct design, production, and characterization of Plasmodium falciparum 48/45 R0.6C subunit protein produced in Lactococcus lactis as candidate vaccine
title_short Construct design, production, and characterization of Plasmodium falciparum 48/45 R0.6C subunit protein produced in Lactococcus lactis as candidate vaccine
title_full Construct design, production, and characterization of Plasmodium falciparum 48/45 R0.6C subunit protein produced in Lactococcus lactis as candidate vaccine
title_fullStr Construct design, production, and characterization of Plasmodium falciparum 48/45 R0.6C subunit protein produced in Lactococcus lactis as candidate vaccine
title_full_unstemmed Construct design, production, and characterization of Plasmodium falciparum 48/45 R0.6C subunit protein produced in Lactococcus lactis as candidate vaccine
title_sort construct design, production, and characterization of plasmodium falciparum 48/45 r0.6c subunit protein produced in lactococcus lactis as candidate vaccine
publisher BMC
series Microbial Cell Factories
issn 1475-2859
publishDate 2017-05-01
description Abstract Background The sexual stages of Plasmodium falciparum are responsible for the spread of the parasite in malaria endemic areas. The cysteine-rich Pfs48/45 protein, exposed on the surface of sexual stages, is one of the most advanced antigens for inclusion into a vaccine that will block transmission. However, clinical Pfs48/45 sub-unit vaccine development has been hampered by the inability to produce high yields of recombinant protein as the native structure is required for the induction of functional transmission-blocking (TB) antibodies. We have investigated a downstream purification process of a sub-unit (R0.6C) fragment representing the C-terminal 6-Cys domain of Pfs48/45 (6C) genetically fused to the R0 region (R0) of asexual stage Glutamate Rich Protein expressed in Lactococcus lactis. Results A series of R0.6C fusion proteins containing features, which aim to increase expression levels or to facilitate protein purification, were evaluated at small scale. None of these modifications affected the overall yield of recombinant protein. Consequently, R0.6C with a C-terminal his tag was used for upstream and downstream process development. A simple work-flow was developed consisting of batch fermentation followed by two purification steps. As such, the recombinant protein was purified to homogeneity. The composition of the final product was verified by HPLC, mass spectrometry, SDS-PAGE and Western blotting with conformation dependent antibodies against Pfs48/45. The recombinant protein induced high levels of functional TB antibodies in rats. Conclusions The established production and purification process of the R0.6C fusion protein provide a strong basis for further clinical development of this candidate transmission blocking malaria vaccine.
topic Plasmodium falciparum
Malaria
Transmission blocking
Pfs48/45
Batch fermentation and Lactococcus lactis
url http://link.springer.com/article/10.1186/s12934-017-0710-0
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