Literature DB >> 21118926

Limited polymorphism of the Plasmodium vivax merozoite surface protein 1 gene in isolates from Turkey.

Fadile Yildiz Zeyrek1, Shin-Ichiro Tachibana, Fehmi Yuksel, Nebiye Doni, Nirianne Palacpac, Nobuko Arisue, Toshihiro Horii, Cevayir Coban, Kazuyuki Tanabe.   

Abstract

The 200-kD merozoite surface protein of Plasmodium vivax (PvMSP-1) is one of the leading vaccine candidates against P. vivax malaria. However, the gene encoding PvMSP-1 (pvmsp1) is highly polymorphic and is a major obstacle to effective vaccine development. To further understand polymorphism in pvmsp1, we obtained 30 full-length pvmsp1 sequences from southeastern Turkey. Comparative analysis of sequences from Turkey and other areas showed substantially limited polymorphism. Substitutions were found at 280 and 162 amino acid sites in samples from other regions and those from Turkey, respectively. Eight substitutions were unique to Turkey. In one of them, D/E at position 1706 in the C-terminal 19-kD region, the K/E change at 1709 was the only polymorphism previously known. Limited diversity was also observed in microsatellites. Data suggest a recent population bottleneck in Turkey that may have obscured a signature for balancing selection in the C-terminal 42-kD region, which was otherwise detectable in other areas.

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Year:  2010        PMID: 21118926      PMCID: PMC2990036          DOI: 10.4269/ajtmh.2010.10-0353

Source DB:  PubMed          Journal:  Am J Trop Med Hyg        ISSN: 0002-9637            Impact factor:   2.345


  51 in total

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Journal:  Am J Trop Med Hyg       Date:  2010-03       Impact factor: 2.345

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5.  Lineage-specific positive selection at the merozoite surface protein 1 (msp1) locus of Plasmodium vivax and related simian malaria parasites.

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Journal:  BMC Evol Biol       Date:  2010-02-19       Impact factor: 3.260

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Journal:  Parasitol Int       Date:  2009-06-21       Impact factor: 2.230

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  10 in total

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Journal:  Am J Trop Med Hyg       Date:  2017-04-06       Impact factor: 2.345

2.  Genetic diversity of Plasmodium vivax malaria in China and Myanmar.

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3.  Serologic markers in relation to parasite exposure history help to estimate transmission dynamics of Plasmodium vivax.

Authors:  Fadile Yildiz Zeyrek; Nirianne Palacpac; Fehmi Yuksel; Masanori Yagi; Kaori Honjo; Yukiko Fujita; Nobuko Arisue; Satoru Takeo; Kazuyuki Tanabe; Toshihiro Horii; Takafumi Tsuboi; Ken J Ishii; Cevayir Coban
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Review 5.  Understanding the population genetics of Plasmodium vivax is essential for malaria control and elimination.

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7.  Detection of Plasmodium using filter paper and nested PCR for patients with malaria in Sanliurfa, in Turkey.

Authors:  Nebiye Yentur Doni; Fadile Yildiz Zeyrek; Adnan Seyrek
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8.  Molecular Evolution of PvMSP3α Block II in Plasmodium vivax from Diverse Geographic Origins.

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9.  Differing patterns of selection and geospatial genetic diversity within two leading Plasmodium vivax candidate vaccine antigens.

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10.  Spatiotemporal Changes in Plasmodium vivax msp142 Haplotypes in Southern Mexico: From the Control to the Pre-Elimination Phase.

Authors:  Alejandro Flores-Alanis; Lilia González-Cerón; Frida Santillán-Valenzuela; Cecilia Ximenez; Marco A Sandoval-Bautista; Rene Cerritos
Journal:  Microorganisms       Date:  2022-01-15
  10 in total

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