Literature DB >> 15119764

West Nile virus and other zoonotic viruses in Russia: examples of emerging-reemerging situations.

D K Lvov1, A M Butenko, V L Gromashevsky, A I Kovtunov, A G Prilipov, R Kinney, V A Aristova, A F Dzharkenov, E I Samokhvalov, H M Savage, M Y Shchelkanov, I V Galkina, P G Deryabin, D J Gubler, L N Kulikova, S K Alkhovsky, T M Moskvina, L V Zlobina, G K Sadykova, A G Shatalov, D N Lvov, V E Usachev, A G Voronina.   

Abstract

Studies of the interactions of vertebrates, viruses and arthropod vectors of these viruses were monitored in terms of different ecological groups of viruses transmitted by mosquitoes and ticks in Northern Eurasia in an area encompassing more than 15 million km2. About 90 viruses were isolated, including 24 new to science. Newly recognized infections of vertebrates, including humans, were described. Many unusual epidemic situations were analysed. Permanent efforts were established to prevent bioterrorist activities and their consequences. Extensive epidemic outbreaks of West Nile fever (WNF; i.e., fever caused by West Nile virus) and Crimean-Congo hemorrhagic fever (CCHF) with unusual high mortality appeared in the last four years in southern Russia. We determined infection rates in humans, domestic and wild animals, mosquitoes and ticks from natural and synanthropic biocenoses [Editorial note: "synanthropic" means, roughly, all species living with (c.f. lice, fleas) or near people, such as in houses (c.f. house mice), parks (c.f. Rattus spp.), and the like, rather like "peridomestic", but not strictly so; "biocenosis" is the biome, the "totality of living populations in a particular habitat, which itself is only a part of the ecosystem".]. CCHF virus strains were phylogenetically similar to strains isolated in this area 35 years ago but different from Central-South-Asian and African strains. Before the outset of the current emergence of epidemic WNF, three genetic variants of this virus had been isolated in USSR, two African and one Indian. Phylogenetic analysis of complete genome sequences of epidemic strains demonstrated considerable similarity to strains from USA and Israel and differences from strains isolated in the same USSR areas 20-30 years before. In addition to strains of genotype 1, we isolated strains of second and third lineages and a strain of a fourth genetic variant. Nucleotide differences of these strains from all three genotypes was about 30%. The emerging WNF situation in Russia for the last 4 years probably has been the result of not only natural and social factors, but also to introduction of more virulent strains or by evolution of the virus.

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Year:  2004        PMID: 15119764     DOI: 10.1007/978-3-7091-0572-6_7

Source DB:  PubMed          Journal:  Arch Virol Suppl        ISSN: 0939-1983


  45 in total

1.  Inhibitor of κB kinase epsilon (IKK(epsilon)), STAT1, and IFIT2 proteins define novel innate immune effector pathway against West Nile virus infection.

Authors:  Olivia Perwitasari; Hyelim Cho; Michael S Diamond; Michael Gale
Journal:  J Biol Chem       Date:  2011-11-07       Impact factor: 5.157

2.  West nile virus.

Authors:  Georg Pauli; Ursula Bauerfeind; Johannes Blümel; Reinhard Burger; Christian Drosten; Albrecht Gröner; Lutz Gürtler; Margarethe Heiden; Martin Hildebrandt; Bernd Jansen; Thomas Montag-Lessing; Ruth Offergeld; Rainer Seitz; Uwe Schlenkrich; Volkmar Schottstedt; Johanna Strobel; Hannelore Willkommen
Journal:  Transfus Med Hemother       Date:  2013-07-04       Impact factor: 3.747

Review 3.  West Nile virus: A re-emerging pathogen revisited.

Authors:  Miguel A Martín-Acebes; Juan-Carlos Saiz
Journal:  World J Virol       Date:  2012-04-12

4.  Vector competence of Culex neavei and Culex quinquefasciatus (Diptera: Culicidae) from Senegal for lineages 1, 2, Koutango and a putative new lineage of West Nile virus.

Authors:  Gamou Fall; Mawlouth Diallo; Cheikh Loucoubar; Ousmane Faye; Amadou Alpha Sall
Journal:  Am J Trop Med Hyg       Date:  2014-02-24       Impact factor: 2.345

Review 5.  West Nile virus infection and immunity.

Authors:  Mehul S Suthar; Michael S Diamond; Michael Gale
Journal:  Nat Rev Microbiol       Date:  2013-02       Impact factor: 60.633

6.  A hydrogen peroxide-inactivated virus vaccine elicits humoral and cellular immunity and protects against lethal West Nile virus infection in aged mice.

Authors:  Amelia K Pinto; Justin M Richner; Elizabeth A Poore; Pradnya P Patil; Ian J Amanna; Mark K Slifka; Michael S Diamond
Journal:  J Virol       Date:  2012-12-05       Impact factor: 5.103

7.  West nile virus: characteristics of an african virus adapting to the third millennium world.

Authors:  Marina Monini; Emiliana Falcone; Luca Busani; Roberto Romi; Franco Maria Ruggeri
Journal:  Open Virol J       Date:  2010-04-22

Review 8.  The Anopheles maculipennis complex (Diptera: Culicidae) in Germany: an update following recent monitoring activities.

Authors:  Helge Kampen; Mandy Schäfer; Dorothee E Zielke; Doreen Walther
Journal:  Parasitol Res       Date:  2016-07-22       Impact factor: 2.289

Review 9.  Impact of climate change and other factors on emerging arbovirus diseases.

Authors:  E A Gould; S Higgs
Journal:  Trans R Soc Trop Med Hyg       Date:  2008-09-16       Impact factor: 2.184

10.  Lineage 2 west nile virus as cause of fatal neurologic disease in horses, South Africa.

Authors:  Marietjie Venter; Stacey Human; Dewald Zaayman; Gertruida H Gerdes; June Williams; Johan Steyl; Patricia A Leman; Janusz Tadeusz Paweska; Hildegard Setzkorn; Gavin Rous; Sue Murray; Rissa Parker; Cynthia Donnellan; Robert Swanepoel
Journal:  Emerg Infect Dis       Date:  2009-06       Impact factor: 6.883

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