Emergence of Double- and Triple-Gene Reassortant G1P[8] Rotaviruses Possessing a DS-1-Like Backbone after Rotavirus Vaccine Introduction in Malawi

被引:63
|
作者
Jere, Khuzwayo C. [1 ,2 ]
Chaguza, Chrispin [1 ,2 ]
Bar-Zeev, Naor [1 ,2 ,3 ]
Lowe, Jenna [1 ]
Peno, Chikondi [2 ]
Kumwenda, Benjamin [2 ]
Nakagomi, Osamu [1 ,4 ]
Tate, Jacqueline E. [5 ]
Parashar, Umesh D. [5 ]
Heyderman, Robert S. [2 ,6 ]
French, Neil [2 ,3 ]
Cunliffe, Nigel A. [3 ]
Iturriza-Gomara, Miren [3 ,7 ]
机构
[1] Univ Liverpool, Inst Infect & Global Hlth, Liverpool, Merseyside, England
[2] Univ Malawi, Coll Med, Dept Med Lab Sci, Malawi Liverpool Wellcome Trust Clin Res Programm, Blantyre, Malawi
[3] Univ Liverpool, Inst Infect & Global Hlth, Ctr Global Vaccine Res, Liverpool, Merseyside, England
[4] Nagasaki Univ, Grad Sch Biomed Sci, Nagasaki, Japan
[5] Ctr Dis Control & Prevent, Epidemiol Branch, Div Viral Dis, Natl Ctr Immunizat & Resp Dis, Atlanta, GA USA
[6] UCL, Div Infect & Immun, London, England
[7] Univ Liverpool, NIHR Hlth Protect Res Unit Gastrointestinal Infec, Liverpool, Merseyside, England
基金
英国惠康基金;
关键词
rotavirus; phylodynamics; genome reassortment; lineage turnover; whole-genome sequencing; Malawi; SEQUENCE-INDEPENDENT AMPLIFICATION; WHOLE GENOME ANALYSES; A HUMAN ROTAVIRUS; GENOTYPE CONSTELLATION; LINEAGE REPLACEMENT; CLOSE RELATIONSHIP; VP7; GENE; STRAINS; CHILDREN; G2;
D O I
10.1128/JVI.01246-17
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
To combat the high burden of rotavirus gastroenteritis, multiple African countries have introduced rotavirus vaccines into their childhood immunization programs. Malawi incorporated a G1P[8] rotavirus vaccine (Rotarix) into its immunization schedule in 2012. Utilizing a surveillance platform of hospitalized rotavirus gastroenteritis cases, we examined the phylodynamics of G1P[8] rotavirus strains that circulated in Malawi before (1998 to 2012) and after (2013 to 2014) vaccine introduction. Analysis of whole genomes obtained through next-generation sequencing revealed that all randomly selected prevaccine G1P[8] strains sequenced (n = 32) possessed a Wa-like genetic constellation, whereas postvaccine G1P[8] strains (n = 18) had a DS-1-like constellation. Phylodynamic analyses indicated that postvaccine G1P[8] strains emerged through reassortment events between human Wa- and DS-1-like rotaviruses that circulated in Malawi from the 1990s and hence were classified as atypical DS-1-like reassortants. The time to the most recent common ancestor for G1P[8] strains was from 1981 to 1994; their evolutionary rates ranged from 9.7 x 10(-4) to 4.1 x 10(-3) nucleotide substitutions/site/year. Three distinct G1P[8] lineages chronologically replaced each other between 1998 and 2014. Genetic drift was the likely driver for lineage turnover in 2005, whereas replacement in 2013 was due to reassortment. Amino acid substitution within the outer glycoprotein VP7 of G1P[8] strains had no impact on the structural conformation of the antigenic regions, suggesting that it is unlikely that they would affect recognition by vaccine-induced neutralizing antibodies. While the emergence of DS-1-like G1P[8] rotavirus reassortants in Malawi was therefore likely due to natural genotype variation, vaccine effectiveness against such strains needs careful evaluation. IMPORTANCE The error-prone RNA-dependent RNA polymerase and the segmented RNA genome predispose rotaviruses to genetic mutation and genome reassortment, respectively. These evolutionary mechanisms generate novel strains and have the potential to lead to the emergence of vaccine escape mutants. While multiple African countries have introduced a rotavirus vaccine, there are few data describing the evolution of rotaviruses that circulated before and after vaccine introduction. We report the emergence of atypical DS-1-like G1P[8] strains during the postvaccine era in Malawi. Three distinct G1P[8] lineages circulated chronologically from 1998 to 2014; mutation and reassortment drove lineage turnover in 2005 and 2013, respectively. Amino acid substitutions within the outer capsid VP7 glycoprotein did not affect the structural conformation of mapped antigenic sites, suggesting a limited effect on the recognition of G1-specific vaccine-derived antibodies. The genes that constitute the remaining genetic backbone may play important roles in immune evasion, and vaccine effectiveness against such atypical strains needs careful evaluation.
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页数:15
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  • [1] First Detection of DS-1-like G1P[8] Double-gene Reassortant Rotavirus Strains on The American Continent, Brazil, 2013
    Adriana Luchs
    Antonio Charlys da Costa
    Audrey Cilli
    Shirley Cavalcante Vasconcelos Komninakis
    Rita de Cássia Compagnoli Carmona
    Simone Guadagnucci Morillo
    Ester Cerdeira Sabino
    Maria do Carmo Sampaio Tavares Timenetsky
    [J]. Scientific Reports, 9
  • [2] First Detection of DS-1-like G1P[8] Double-gene Reassortant Rotavirus Strains on The American Continent, Brazil, 2013
    Luchs, Adriana
    da Costa, Antonio Charlys
    Cilli, Audrey
    Vasconcelos Komninakis, Shirley Cavalcante
    Compagnoli Carmona, Rita de Cassia
    Morillo, Simone Guadagnucci
    Sabino, Ester Cerdeira
    Sampaio Tavares Timenetsky, Maria do Carmo
    [J]. SCIENTIFIC REPORTS, 2019, 9 (1)
  • [3] Evolution of DS-1-like G1P[8] double-gene reassortant rotavirus A strains causing gastroenteritis in children in Vietnam in 2012/2013
    Toyoko Nakagomi
    Minh Quang Nguyen
    Punita Gauchan
    Chantal Ama Agbemabiese
    Miho Kaneko
    Loan Phuong Do
    Thiem Dinh Vu
    Osamu Nakagomi
    [J]. Archives of Virology, 2017, 162 : 739 - 748
  • [4] Evolution of DS-1-like G1P[8] double-gene reassortant rotavirus A strains causing gastroenteritis in children in Vietnam in 2012/2013
    Nakagomi, Toyoko
    Minh Quang Nguyen
    Gauchan, Punita
    Agbemabiese, Chantal Ama
    Kaneko, Miho
    Loan Phuong Do
    Thiem Dinh Vu
    Nakagomi, Osamu
    [J]. ARCHIVES OF VIROLOGY, 2017, 162 (03) : 739 - 748
  • [5] Emergence and Characterization of Unusual DS-1-Like G1P[8] Rotavirus Strains in Children with Diarrhea in Thailand
    Komoto, Satoshi
    Tacharoenmuang, Ratana
    Guntapong, Ratigorn
    Ide, Tomihiko
    Haga, Kei
    Katayama, Kazuhiko
    Kato, Takema
    Ouchi, Yuya
    Kurahashi, Hiroki
    Tsuji, Takao
    Sangkitporn, Somchai
    Taniguchi, Koki
    [J]. PLOS ONE, 2015, 10 (11):
  • [6] Reassortment of Human and Animal Rotavirus Gene Segments in Emerging DS-1-Like G1P[8] Rotavirus Strains
    Komoto, Satoshi
    Tacharoenmuang, Ratana
    Guntapong, Ratigorn
    Ide, Tomihiko
    Tsuji, Takao
    Yoshikawa, Tetsushi
    Tharmaphornpilas, Piyanit
    Sangkitporn, Somchai
    Taniguchi, Koki
    [J]. PLOS ONE, 2016, 11 (02):
  • [7] Spread and predominance in Japan of novel G1P[8] double-reassortant rotavirus strains possessing a DS-1-like genotype constellation typical of G2P[4] strains
    Fujii, Yoshiki
    Nakagomi, Toyoko
    Nishimura, Naoko
    Noguchi, Atsuko
    Miura, Sinobu
    Ito, Hisato
    Doan, Yen Hai
    Takahashi, Tsutomu
    Ozaki, Takao
    Katayama, Kazuhiko
    Nakagomi, Osamu
    [J]. INFECTION GENETICS AND EVOLUTION, 2014, 28 : 426 - 433
  • [8] Uncovering the First Atypical DS-1-like G1P[8] Rotavirus Strains That Circulated during Pre-Rotavirus Vaccine Introduction Era in South Africa
    Mwangi, Peter N.
    Mogotsi, Milton T.
    Rasebotsa, Sebotsana P.
    Seheri, Mapaseka L.
    Mphahlele, M. Jeffrey
    Ndze, Valantine N.
    Dennis, Francis E.
    Jere, Khuzwayo C.
    Nyaga, Martin M.
    [J]. PATHOGENS, 2020, 9 (05):
  • [9] Unusual mono-reassortant of a Wa-like G1P[8] species A rotavirus containing a DS-1-like (genotype 2) NSP4 gene
    Tung Phan
    Tomihiko Ide
    Satoshi Komoto
    Pattara Khamrin
    Shoko Okitsu
    Koki Taniguchi
    Hideaki Kikuta
    Niwat Maneekarn
    Satoshi Hayakawa
    Hiroshi Ushijima
    [J]. Virus Genes, 2020, 56 : 638 - 641
  • [10] Unusual mono-reassortant of a Wa-like G1P[8] species A rotavirus containing a DS-1-like (genotype 2) NSP4 gene
    Phan, Tung
    Ide, Tomihiko
    Komoto, Satoshi
    Khamrin, Pattara
    Okitsu, Shoko
    Taniguchi, Koki
    Kikuta, Hideaki
    Maneekarn, Niwat
    Hayakawa, Satoshi
    Ushijima, Hiroshi
    [J]. VIRUS GENES, 2020, 56 (05) : 638 - 641