Immunization with the Malaria Diversity-Covering Blood-Stage Vaccine Candidate Plasmodium falciparum Apical Membrane Antigen 1 DiCo in Complex with Its Natural Ligand PfRon2 Does Not Improve the In Vitro Efficacy

The blood-stage malaria vaccine candidate Plasmodium falciparum apical membrane antigen 1 (PfAMA1) can induce strong parasite growth-inhibitory antibody responses in animals but has not achieved the anticipated efficacy in clinical trials. Possible explanations in humans are the insufficient potency...

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Main Authors: Holger Spiegel, Alexander Boes, Rolf Fendel, Andreas Reimann, Stefan Schillberg, Rainer Fischer
Format: Article
Language:English
Published: Frontiers Media S.A. 2017-06-01
Series:Frontiers in Immunology
Subjects:
Online Access:http://journal.frontiersin.org/article/10.3389/fimmu.2017.00743/full
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spelling doaj-a3463a0767bf47dea3fd5b11a0d6a04e2020-11-24T23:52:08ZengFrontiers Media S.A.Frontiers in Immunology1664-32242017-06-01810.3389/fimmu.2017.00743268566Immunization with the Malaria Diversity-Covering Blood-Stage Vaccine Candidate Plasmodium falciparum Apical Membrane Antigen 1 DiCo in Complex with Its Natural Ligand PfRon2 Does Not Improve the In Vitro EfficacyHolger Spiegel0Alexander Boes1Rolf Fendel2Andreas Reimann3Stefan Schillberg4Stefan Schillberg5Rainer Fischer6Rainer Fischer7Rainer Fischer8Fraunhofer Institute for Molecular Biology and Applied Ecology IME, Aachen, GermanyFraunhofer Institute for Molecular Biology and Applied Ecology IME, Aachen, GermanyFraunhofer Institute for Molecular Biology and Applied Ecology IME, Aachen, GermanyFraunhofer Institute for Molecular Biology and Applied Ecology IME, Aachen, GermanyFraunhofer Institute for Molecular Biology and Applied Ecology IME, Aachen, GermanyInstitute for Phytopathology and Applied Zoology, Justus-Liebig University Giessen, Giessen, GermanyFraunhofer Institute for Molecular Biology and Applied Ecology IME, Aachen, GermanyRWTH Aachen University, Institute for Molecular Biotechnology, Aachen, GermanyIndiana Biosciences Research Institute (IBRI), Indianapolis, IN, United StatesThe blood-stage malaria vaccine candidate Plasmodium falciparum apical membrane antigen 1 (PfAMA1) can induce strong parasite growth-inhibitory antibody responses in animals but has not achieved the anticipated efficacy in clinical trials. Possible explanations in humans are the insufficient potency of the elicited antibody responses, as well as the high degree of sequence polymorphisms found in the field. Several strategies have been developed to improve the cross-strain coverage of PfAMA1-based vaccines, whereas innovative concepts to increase the potency of PfAMA1-specific IgG responses have received little attention even though this may be an essential requirement for protective efficacy. A previous study has demonstrated that immunization with a complex of PyAMA1 and PyRON2, a ligand with an essential functional role in erythrocyte invasion, leads to protection from lethal Plasmodium yoelli challenge in an animal model and suggested to extend this strategy toward improved strain coverage by using multiple PfAMA1 alleles in combination with PfRon2L. As an alternative approach along this line, we decided to use PfRon2L in combination with three PfAMA1 diversity covering variants (DiCo) to investigate the potential of this complex to induce more potent parasite growth inhibitory immune response in combination with better cross-strain-specific efficacy. Within the limits of the study design, the ability of the PfAMA1 DiCo-Mix to induce cross-strain-specific antibodies was not affected in all immunization groups, but the DiCo–PfRon2L complexes did not improve the potency of PfAMA1-specific IgG responses.http://journal.frontiersin.org/article/10.3389/fimmu.2017.00743/fullagroinfiltrationgrowth inhibition assayplant molecular farmingPlasmodium falciparumstrain-transcending immune responsessurface plasmon resonance spectroscopy
collection DOAJ
language English
format Article
sources DOAJ
author Holger Spiegel
Alexander Boes
Rolf Fendel
Andreas Reimann
Stefan Schillberg
Stefan Schillberg
Rainer Fischer
Rainer Fischer
Rainer Fischer
spellingShingle Holger Spiegel
Alexander Boes
Rolf Fendel
Andreas Reimann
Stefan Schillberg
Stefan Schillberg
Rainer Fischer
Rainer Fischer
Rainer Fischer
Immunization with the Malaria Diversity-Covering Blood-Stage Vaccine Candidate Plasmodium falciparum Apical Membrane Antigen 1 DiCo in Complex with Its Natural Ligand PfRon2 Does Not Improve the In Vitro Efficacy
Frontiers in Immunology
agroinfiltration
growth inhibition assay
plant molecular farming
Plasmodium falciparum
strain-transcending immune responses
surface plasmon resonance spectroscopy
author_facet Holger Spiegel
Alexander Boes
Rolf Fendel
Andreas Reimann
Stefan Schillberg
Stefan Schillberg
Rainer Fischer
Rainer Fischer
Rainer Fischer
author_sort Holger Spiegel
title Immunization with the Malaria Diversity-Covering Blood-Stage Vaccine Candidate Plasmodium falciparum Apical Membrane Antigen 1 DiCo in Complex with Its Natural Ligand PfRon2 Does Not Improve the In Vitro Efficacy
title_short Immunization with the Malaria Diversity-Covering Blood-Stage Vaccine Candidate Plasmodium falciparum Apical Membrane Antigen 1 DiCo in Complex with Its Natural Ligand PfRon2 Does Not Improve the In Vitro Efficacy
title_full Immunization with the Malaria Diversity-Covering Blood-Stage Vaccine Candidate Plasmodium falciparum Apical Membrane Antigen 1 DiCo in Complex with Its Natural Ligand PfRon2 Does Not Improve the In Vitro Efficacy
title_fullStr Immunization with the Malaria Diversity-Covering Blood-Stage Vaccine Candidate Plasmodium falciparum Apical Membrane Antigen 1 DiCo in Complex with Its Natural Ligand PfRon2 Does Not Improve the In Vitro Efficacy
title_full_unstemmed Immunization with the Malaria Diversity-Covering Blood-Stage Vaccine Candidate Plasmodium falciparum Apical Membrane Antigen 1 DiCo in Complex with Its Natural Ligand PfRon2 Does Not Improve the In Vitro Efficacy
title_sort immunization with the malaria diversity-covering blood-stage vaccine candidate plasmodium falciparum apical membrane antigen 1 dico in complex with its natural ligand pfron2 does not improve the in vitro efficacy
publisher Frontiers Media S.A.
series Frontiers in Immunology
issn 1664-3224
publishDate 2017-06-01
description The blood-stage malaria vaccine candidate Plasmodium falciparum apical membrane antigen 1 (PfAMA1) can induce strong parasite growth-inhibitory antibody responses in animals but has not achieved the anticipated efficacy in clinical trials. Possible explanations in humans are the insufficient potency of the elicited antibody responses, as well as the high degree of sequence polymorphisms found in the field. Several strategies have been developed to improve the cross-strain coverage of PfAMA1-based vaccines, whereas innovative concepts to increase the potency of PfAMA1-specific IgG responses have received little attention even though this may be an essential requirement for protective efficacy. A previous study has demonstrated that immunization with a complex of PyAMA1 and PyRON2, a ligand with an essential functional role in erythrocyte invasion, leads to protection from lethal Plasmodium yoelli challenge in an animal model and suggested to extend this strategy toward improved strain coverage by using multiple PfAMA1 alleles in combination with PfRon2L. As an alternative approach along this line, we decided to use PfRon2L in combination with three PfAMA1 diversity covering variants (DiCo) to investigate the potential of this complex to induce more potent parasite growth inhibitory immune response in combination with better cross-strain-specific efficacy. Within the limits of the study design, the ability of the PfAMA1 DiCo-Mix to induce cross-strain-specific antibodies was not affected in all immunization groups, but the DiCo–PfRon2L complexes did not improve the potency of PfAMA1-specific IgG responses.
topic agroinfiltration
growth inhibition assay
plant molecular farming
Plasmodium falciparum
strain-transcending immune responses
surface plasmon resonance spectroscopy
url http://journal.frontiersin.org/article/10.3389/fimmu.2017.00743/full
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