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Genetic diversity of VAR2CSA ID1-DBL2Xb in worldwide Plasmodium falciparum populations: Impact on vaccine design for placental malaria

  • Bita Bordbar
  • , Nicaise Tuikue Ndam
  • , Emmanuelle Renard
  • , Sayeh Jafari-Guemouri
  • , Livingstone Tavul
  • , Charlie Jennison
  • , Sédami Gnidehou
  • , Rachida Tahar
  • , Dionicia Gamboa
  • , Jorge Bendezu
  • , Didier Menard
  • , Alyssa E. Barry
  • , Philippe Deloron
  • , Audrey Sabbagh
  • Université Paris Cité
  • Institut de recherche pour le développement (IRD)
  • Centre d'Étude et de Recherche sur le Paludisme Associé à, La Grossesse et à l'Enfance (CERPAGE)
  • Papua New Guinea Institute of Medical Research
  • Walter and Eliza Hall Institute of Medical Research
  • Universidad Peruana Cayetano Heredia, Instituto de Medicina Tropical Alexander von Humboldt
  • Pasteur Institute of Cambodia

Research output: Contribution to journalArticlepeer-review

19 Scopus citations

Abstract

In placental malaria (PM), sequestration of infected erythrocytes in the placenta is mediated by an interaction between VAR2CSA, a Plasmodium falciparum protein expressed on erythrocytes, and chondroitin sulfate A (CSA) on syncytiotrophoblasts. Recent works have identified ID1-DBL2Xb as the minimal CSA-binding region within VAR2CSA able to induce strong protective immunity, making it the leading candidate for the development of a vaccine against PM. Assessing the existence of population differences in the distribution of ID1-DBL2Xb polymorphisms is of paramount importance to determine whether geographic diversity must be considered when designing a candidate vaccine based on this fragment. In this study, we examined patterns of sequence variation of ID1-DBL2Xb in a large collection of P. falciparum field isolates (n= 247) from different malaria-endemic areas, including Africa (Benin, Senegal, Cameroon and Madagascar), Asia (Cambodia), Oceania (Papua New Guinea), and Latin America (Peru). Detection of variants and estimation of their allele frequencies were performed using next-generation sequencing of DNA pools. A considerable amount of variation was detected along the whole gene segment, suggesting that several allelic variants may need to be included in a candidate vaccine to achieve broad population coverage. However, most sequence variants were common and extensively shared among worldwide parasite populations, demonstrating long term persistence of those polymorphisms, probably maintained through balancing selection. Therefore, a vaccine mixture including such stable antigen variants will be putatively applicable and efficacious in all world regions where malaria occurs. Despite similarity in ID1-DBL2Xb allele repertoire across geographic areas, several peaks of strong population differentiation were observed at specific polymorphic loci, pointing out putative targets of humoral immunity subject to positive immune selection.

Original languageEnglish
Pages (from-to)81-92
Number of pages12
JournalInfection, Genetics and Evolution
Volume25
DOIs
StatePublished - Jul 2014

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Genetic structure
  • Next-generation sequencing
  • Plasmodium falciparum
  • Pregnancy-associated malaria
  • VAR2CSA
  • Vaccine

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