Characterization of West Nile virus Koutango lineage from phlebotomine sandflies in Kenya

被引:0
|
作者
Thiiru, Jane Wambui [1 ,2 ,3 ]
Langat, Solomon [2 ]
Mulwa, Francis [2 ]
Cinkovich, Stephanie [4 ]
Koka, Hellen [2 ]
Yalwala, Santos [1 ]
Khamadi, Samoel [2 ]
Onguso, Justus [3 ]
Odemba, Nicholas [1 ]
Ngere, Francis [1 ]
Johnson, Jaree [5 ]
Egbo, Timothy [1 ]
Garges, Eric [1 ]
Ojwang, Elly [1 ]
Eyase, Fredrick [1 ,2 ]
机构
[1] US Army Med Res Directorate Africa, Dept Emerging Infect Dis, Nairobi, Kenya
[2] Kenya Govt Med Res Ctr, Ctr Virus Res, Nairobi, Kenya
[3] Jomo Kenyatta Univ Agr & Technol, Inst Biotechnol Res, Nairobi, Kenya
[4] US Armed Forces Hlth Surveillance Div, Global Emerging Infect Surveillance Branch, Silver Spring, MD USA
[5] US Armed Forces Pest Management Board, Silver Spring, MD USA
来源
PLOS ONE | 2024年 / 19卷 / 08期
关键词
NEW-YORK; CRYSTAL-STRUCTURE; WEB APPLICATION; SAND FLIES; MOSQUITOS; SELECTION; ALIGNMENT; PROTEIN; IDENTIFICATION; TRANSMISSION;
D O I
10.1371/journal.pone.0301956
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The West Nile virus (WNV), primarily transmitted by mosquitoes, is one of the most widespread flaviviruses globally, with past outbreaks occurring in the USA and Europe. Recent studies in parts of Africa, including Kenya, have identified the West Nile virus Koutango lineage (WN-KOUTV) among phlebotomine sandfly populations, however, our understanding of this virus remains limited. This study aimed to characterize WN-KOUTV from phlebotomine sandflies. Sandflies were sampled between 12th -16th March 2021 and 16th -20th March 2023 from six villages each in Baringo and Isiolo Counties, using CDC light traps. Female sandflies were taxonomically identified and pooled based on genus and site of collection. Virus isolation was performed in Vero cells. Viral genomes were determined using next-generation sequencing. Phylogenetic and molecular clock analyses were done to decipher the virus's evolutionary relationships. Comparative analyses of amino acid sequences were performed to determine variations. Protein modeling in Pymol was conducted to elucidate variations in key protein regions. Evolutionary pressure analysis investigated the selection pressures on the virus. In vitro experiments were done to investigate the virus growth kinetics in mammalian Vero E6 and mosquito C6/36 cells. We report the isolation of WN-KOUTV from Salabani in Baringo and Aremet in Isiolo, Kenya. The isolated WN-KOUTVs clustered with previously identified WN-KOUTV strains. Comparative analysis revealed a unique amino acid at NS5 653. The WN-KOUTV lineage as a whole is under purifying selective pressure, with diversifying pressure acting at site NS3 267. The current WN-KOUTV replicated in Vero E6 and C6/36 cells comparable to West Nile virus Lineage 1a, isolated from mosquitoes. Subsequent isolations of WN-KOUTV in phlebotomine sandflies suggest potential vectors, however, vector competence studies would confirm this. Replication in mammalian and insect cell lines suggests there may exist a vector/host relationship. We speculate the close genetic relationship of WN-KOUTV strains from East and West Africa may potentially be enabled by bird migratory routes between the two regions. If proven, this could point to a potential future pandemic pathway for this virus.
引用
收藏
页数:19
相关论文
共 50 条
  • [41] An Inactivated West Nile Virus Vaccine Candidate Based on the Lineage 2 Strain
    Vorovitch, Mikhail F.
    Tuchynskaya, Ksenia K.
    Kruglov, Yuriy A.
    Peunkov, Nikita S.
    Mostipanova, Guzal F.
    Kholodilov, Ivan S.
    Ivanova, Alla L.
    Fedina, Maria P.
    Gmyl, Larissa V.
    Morozkin, Evgeny S.
    Roev, German V.
    Karan, Lyudmila S.
    Karganova, Galina G.
    VACCINES, 2024, 12 (12)
  • [42] First Detection of West Nile Virus Lineage 2 in Mosquitoes in Switzerland, 2022
    Cazzin, Stefania
    Liechti, Nicole
    Jandrasits, Damian
    Flacio, Eleonora
    Beuret, Christian
    Engler, Olivier
    Guidi, Valeria
    PATHOGENS, 2023, 12 (12):
  • [43] Replication of West Nile virus, Rabensburg lineage in mammalian cells is restricted by temperature
    Aliota, Matthew T.
    Kramer, Laura D.
    PARASITES & VECTORS, 2012, 5
  • [44] Detection of West Nile Virus Lineage 2 in Culex Mosquitoes, Greece, 2012
    Papa, Anna
    Papadopoulou, Elpida
    Gavana, Elpida
    Kalaitzopoulou, Stella
    Mourelatos, Spyros
    VECTOR-BORNE AND ZOONOTIC DISEASES, 2013, 13 (09) : 682 - 684
  • [45] Replication of West Nile virus, Rabensburg lineage in mammalian cells is restricted by temperature
    Matthew T Aliota
    Laura D Kramer
    Parasites & Vectors, 5
  • [46] Genetic determinants of virulence in pathogenic lineage 2 West Nile virus strains
    Botha, Elizabeth M.
    Markotter, Wanda
    Wolfaardt, Mariaan
    Paweska, Janusz T.
    Swanepoel, Robert
    Palacios, Gustavio
    Nel, Louis H.
    Venter, Marietjie
    EMERGING INFECTIOUS DISEASES, 2008, 14 (02) : 222 - 230
  • [47] Mortality of Goshawks (Accipiter gentilis) Due to West Nile Virus Lineage 2
    Hubalek, Zdenek
    Kosina, Marcel
    Rudolf, Ivo
    Mendel, Jan
    Strakova, Petra
    Tomesek, Martin
    VECTOR-BORNE AND ZOONOTIC DISEASES, 2018, 18 (11) : 624 - 627
  • [48] Detection of West Nile Virus Lineage 2 in the Urine of Acute Human Infections
    Papa, Anna
    Testa, Theodolinda
    Papadopoulou, Elpida
    JOURNAL OF MEDICAL VIROLOGY, 2014, 86 (12) : 2142 - 2145
  • [49] Lineage 1 and 2 strains of encephalitic West Nile virus, central Europe
    Bakonyi, T
    Ivanics, T
    Erdélyi, K
    Ursu, K
    Ferenczi, E
    Weissenböck, H
    Nowotny, N
    EMERGING INFECTIOUS DISEASES, 2006, 12 (04) : 618 - 623
  • [50] Putative novel lineage of West Nile virus in Uranotaenia unguiculata mosquito, Hungary
    Kemenesi G.
    Dallos B.
    Oldal M.
    Kutas A.
    Földes F.
    Németh V.
    Reiter P.
    Bakonyi T.
    Bányai K.
    Jakab F.
    VirusDisease, 2014, 25 (4) : 500 - 503