Geographical distribution and genetic diversity of Plasmodium vivax reticulocyte binding protein 1a correlates with patient antigenicity
Open Access
- 23 June 2022
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLoS Neglected Tropical Diseases
- Vol. 16 (6), e0010492
- https://doi.org/10.1371/journal.pntd.0010492
Abstract
Plasmodium vivax is the most widespread cause of human malaria. Recent reports of drug resistant vivax malaria and the challenge of eradicating the dormant liver forms increase the importance of vaccine development against this relapsing disease. P. vivax reticulocyte binding protein 1a (PvRBP1a) is a potential vaccine candidate, which is involved in red cell tropism, a crucial step in the merozoite invasion of host reticulocytes. As part of the initial evaluation of the PvRBP1a vaccine candidate, we investigated its genetic diversity and antigenicity using geographically diverse clinical isolates. We analysed pvrbp1a genetic polymorphisms using 202 vivax clinical isolates from six countries. Pvrbp1a was separated into six regions based on specific domain features, sequence conserved/polymorphic regions, and the reticulocyte binding like (RBL) domains. In the fragmented gene sequence analysis, PvRBP1a region II (RII) and RIII (head and tail structure homolog, 152–625 aa.) showed extensive polymorphism caused by random point mutations. The haplotype network of these polymorphic regions was classified into three clusters that converged to independent populations. Antigenicity screening was performed using recombinant proteins PvRBP1a-N (157–560 aa.) and PvRBP1a-C (606–962 aa.), which contained head and tail structure region and sequence conserved region, respectively. Sensitivity against PvRBP1a-N (46.7%) was higher than PvRBP1a-C (17.8%). PvRBP1a-N was reported as a reticulocyte binding domain and this study identified a linear epitope with moderate antigenicity, thus an attractive domain for merozoite invasion-blocking vaccine development. However, our study highlights that a global PvRBP1a-based vaccine design needs to overcome several difficulties due to three distinct genotypes and low antigenicity levels. Plasmodium vivax shows restricted host cell tropism to human reticulocytes for their asexual blood-stage replication. Reticulocyte binding protein (PvRBPs) family are essential molecules for reticulocyte recognition and host cell invasion. In this study, we focused on PvRBP1a as a novel target for vaccine development of P. vivax. Here, we analysed pvrbp1a genetic polymorphisms, natural selection, and evaluated the correlation of this genetic information with antigenicity. This study emphasizes the characteristics of the pvrbp1a genetic population in relation to efficient vaccine development.Keywords
Funding Information
- Kangwon National University (2020 Research Grant)
- National Research Foundation of Korea (NRF-2020R1F1A1071871)
- National Research Foundation of Korea (NRF-2021R1A4A1031574)
- Marsden Fund (17-UOO-241)
- Australian National Health and Medical Research Council (1131932)
- Australian National Health and Medical Research Council (1042072 and 1135820)
- Australian National Health and Medical Research Council (1088738)
- Australian National Health and Medical Research Council (1074795)
- Australian National Health and Medical Research Council (APP2001083)
- Wellcome Trust (200909)
- Wellcome Trust (ICRG GR071614MA)
- Wellcome Trust
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