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Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins

Block II of Plasmodium vivax merozoite surface protein 3α (PvMSP3α) is conserved and has been proposed as a potential candidate for a malaria vaccine. The present study aimed to compare sequence diversity in PvMSP3a block II at a local microgeographic scale in a village as well as from larger geogra...

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Autores principales: Gupta, Bhavna, Reddy, B. P. Niranjan, Fan, Qi, Yan, Guiyun, Sirichaisinthop, Jeeraphat, Sattabongkot, Jetsumon, Escalante, Ananias A., Cui, Liwang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4534382/
https://www.ncbi.nlm.nih.gov/pubmed/26266539
http://dx.doi.org/10.1371/journal.pone.0135396
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author Gupta, Bhavna
Reddy, B. P. Niranjan
Fan, Qi
Yan, Guiyun
Sirichaisinthop, Jeeraphat
Sattabongkot, Jetsumon
Escalante, Ananias A.
Cui, Liwang
author_facet Gupta, Bhavna
Reddy, B. P. Niranjan
Fan, Qi
Yan, Guiyun
Sirichaisinthop, Jeeraphat
Sattabongkot, Jetsumon
Escalante, Ananias A.
Cui, Liwang
author_sort Gupta, Bhavna
collection PubMed
description Block II of Plasmodium vivax merozoite surface protein 3α (PvMSP3α) is conserved and has been proposed as a potential candidate for a malaria vaccine. The present study aimed to compare sequence diversity in PvMSP3a block II at a local microgeographic scale in a village as well as from larger geographic regions (countries and worldwide). Blood samples were collected from asymptomatic carriers of P. vivax in a village at the western border of Thailand and PvMSP3α was amplified and sequenced. For population genetic analysis, 237 PvMSP3α block II sequences from eleven P. vivax endemic countries were analyzed. PvMSP3α sequences from 20 village-level samples revealed two length variant types with one type containing a large deletion in block I. In contrast, block II was relatively conserved; especially, some non-synonymous mutations were extensively shared among 11 parasite populations. However, the majority of the low-frequency synonymous variations were population specific. The conserved pattern of nucleotide diversity in block II sequences was probably due to functional/structural constraints, which were further supported by the tests of neutrality. Notably, a small region in block II that encodes a predicted B cell epitope was highly polymorphic and showed signs of balancing selection, signifying that this region might be influenced by the immune selection and may serve as a starting point for designing multi-antigen/stage epitope based vaccines against this parasite.
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spelling pubmed-45343822015-08-24 Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins Gupta, Bhavna Reddy, B. P. Niranjan Fan, Qi Yan, Guiyun Sirichaisinthop, Jeeraphat Sattabongkot, Jetsumon Escalante, Ananias A. Cui, Liwang PLoS One Research Article Block II of Plasmodium vivax merozoite surface protein 3α (PvMSP3α) is conserved and has been proposed as a potential candidate for a malaria vaccine. The present study aimed to compare sequence diversity in PvMSP3a block II at a local microgeographic scale in a village as well as from larger geographic regions (countries and worldwide). Blood samples were collected from asymptomatic carriers of P. vivax in a village at the western border of Thailand and PvMSP3α was amplified and sequenced. For population genetic analysis, 237 PvMSP3α block II sequences from eleven P. vivax endemic countries were analyzed. PvMSP3α sequences from 20 village-level samples revealed two length variant types with one type containing a large deletion in block I. In contrast, block II was relatively conserved; especially, some non-synonymous mutations were extensively shared among 11 parasite populations. However, the majority of the low-frequency synonymous variations were population specific. The conserved pattern of nucleotide diversity in block II sequences was probably due to functional/structural constraints, which were further supported by the tests of neutrality. Notably, a small region in block II that encodes a predicted B cell epitope was highly polymorphic and showed signs of balancing selection, signifying that this region might be influenced by the immune selection and may serve as a starting point for designing multi-antigen/stage epitope based vaccines against this parasite. Public Library of Science 2015-08-12 /pmc/articles/PMC4534382/ /pubmed/26266539 http://dx.doi.org/10.1371/journal.pone.0135396 Text en © 2015 Gupta 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Gupta, Bhavna
Reddy, B. P. Niranjan
Fan, Qi
Yan, Guiyun
Sirichaisinthop, Jeeraphat
Sattabongkot, Jetsumon
Escalante, Ananias A.
Cui, Liwang
Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins
title Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins
title_full Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins
title_fullStr Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins
title_full_unstemmed Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins
title_short Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins
title_sort molecular evolution of pvmsp3α block ii in plasmodium vivax from diverse geographic origins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4534382/
https://www.ncbi.nlm.nih.gov/pubmed/26266539
http://dx.doi.org/10.1371/journal.pone.0135396
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