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Nanobodies against Pfs230 block Plasmodium falciparum transmission

Transmission blocking interventions can stop malaria parasite transmission from mosquito to human by inhibiting parasite infection in mosquitos. One of the most advanced candidates for a malaria transmission blocking vaccine is Pfs230. Pfs230 is the largest member of the 6-cysteine protein family wi...

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Autores principales: Dietrich, Melanie H., Gabriela, Mikha, Reaksudsan, Kitsanapong, Dixon, Matthew W. A., Chan, Li-Jin, Adair, Amy, Trickey, Stephanie, O'Neill, Matthew T., Tan, Li Lynn, Lopaticki, Sash, Healer, Julie, Keremane, Sravya, Cowman, Alan F., Tham, Wai-Hong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9788556/
https://www.ncbi.nlm.nih.gov/pubmed/36520108
http://dx.doi.org/10.1042/BCJ20220554
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author Dietrich, Melanie H.
Gabriela, Mikha
Reaksudsan, Kitsanapong
Dixon, Matthew W. A.
Chan, Li-Jin
Adair, Amy
Trickey, Stephanie
O'Neill, Matthew T.
Tan, Li Lynn
Lopaticki, Sash
Healer, Julie
Keremane, Sravya
Cowman, Alan F.
Tham, Wai-Hong
author_facet Dietrich, Melanie H.
Gabriela, Mikha
Reaksudsan, Kitsanapong
Dixon, Matthew W. A.
Chan, Li-Jin
Adair, Amy
Trickey, Stephanie
O'Neill, Matthew T.
Tan, Li Lynn
Lopaticki, Sash
Healer, Julie
Keremane, Sravya
Cowman, Alan F.
Tham, Wai-Hong
author_sort Dietrich, Melanie H.
collection PubMed
description Transmission blocking interventions can stop malaria parasite transmission from mosquito to human by inhibiting parasite infection in mosquitos. One of the most advanced candidates for a malaria transmission blocking vaccine is Pfs230. Pfs230 is the largest member of the 6-cysteine protein family with 14 consecutive 6-cysteine domains and is expressed on the surface of gametocytes and gametes. Here, we present the crystal structure of the first two 6-cysteine domains of Pfs230. We identified high affinity Pfs230-specific nanobodies that recognized gametocytes and bind to distinct sites on Pfs230, which were isolated from immunized alpacas. Using two non-overlapping Pfs230 nanobodies, we show that these nanobodies significantly blocked P. falciparum transmission and reduced the formation of exflagellation centers. Crystal structures of the transmission blocking nanobodies with the first 6-cysteine domain of Pfs230 confirm that they bind to different epitopes. In addition, these nanobodies bind to Pfs230 in the absence of the prodomain, in contrast with the binding of known Pfs230 transmission blocking antibodies. These results provide additional structural insight into Pfs230 domains and elucidate a mechanism of action of transmission blocking Pfs230 nanobodies.
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spelling pubmed-97885562023-01-06 Nanobodies against Pfs230 block Plasmodium falciparum transmission Dietrich, Melanie H. Gabriela, Mikha Reaksudsan, Kitsanapong Dixon, Matthew W. A. Chan, Li-Jin Adair, Amy Trickey, Stephanie O'Neill, Matthew T. Tan, Li Lynn Lopaticki, Sash Healer, Julie Keremane, Sravya Cowman, Alan F. Tham, Wai-Hong Biochem J Microbiology Transmission blocking interventions can stop malaria parasite transmission from mosquito to human by inhibiting parasite infection in mosquitos. One of the most advanced candidates for a malaria transmission blocking vaccine is Pfs230. Pfs230 is the largest member of the 6-cysteine protein family with 14 consecutive 6-cysteine domains and is expressed on the surface of gametocytes and gametes. Here, we present the crystal structure of the first two 6-cysteine domains of Pfs230. We identified high affinity Pfs230-specific nanobodies that recognized gametocytes and bind to distinct sites on Pfs230, which were isolated from immunized alpacas. Using two non-overlapping Pfs230 nanobodies, we show that these nanobodies significantly blocked P. falciparum transmission and reduced the formation of exflagellation centers. Crystal structures of the transmission blocking nanobodies with the first 6-cysteine domain of Pfs230 confirm that they bind to different epitopes. In addition, these nanobodies bind to Pfs230 in the absence of the prodomain, in contrast with the binding of known Pfs230 transmission blocking antibodies. These results provide additional structural insight into Pfs230 domains and elucidate a mechanism of action of transmission blocking Pfs230 nanobodies. Portland Press Ltd. 2022-12-22 /pmc/articles/PMC9788556/ /pubmed/36520108 http://dx.doi.org/10.1042/BCJ20220554 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article published by Portland Press Limited on behalf of the Biochemical Society and distributed under the Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) . Open access for this article was enabled by the participation of University of Melbourne in an all-inclusive Read & Publish agreement with Portland Press and the Biochemical Society under a transformative agreement with CAUL.
spellingShingle Microbiology
Dietrich, Melanie H.
Gabriela, Mikha
Reaksudsan, Kitsanapong
Dixon, Matthew W. A.
Chan, Li-Jin
Adair, Amy
Trickey, Stephanie
O'Neill, Matthew T.
Tan, Li Lynn
Lopaticki, Sash
Healer, Julie
Keremane, Sravya
Cowman, Alan F.
Tham, Wai-Hong
Nanobodies against Pfs230 block Plasmodium falciparum transmission
title Nanobodies against Pfs230 block Plasmodium falciparum transmission
title_full Nanobodies against Pfs230 block Plasmodium falciparum transmission
title_fullStr Nanobodies against Pfs230 block Plasmodium falciparum transmission
title_full_unstemmed Nanobodies against Pfs230 block Plasmodium falciparum transmission
title_short Nanobodies against Pfs230 block Plasmodium falciparum transmission
title_sort nanobodies against pfs230 block plasmodium falciparum transmission
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9788556/
https://www.ncbi.nlm.nih.gov/pubmed/36520108
http://dx.doi.org/10.1042/BCJ20220554
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