Exploiting the Legacy of the Arbovirus Hunters
Abstract
:1. Introduction
2. History of Arbovirus Discovery
2.1. Rockefeller Foundation and Yale Arbovirus Research Unit (YARU)
- Confirmation of earlier work by the Reed Commission in Cuba, demonstrating that yellow fever was caused by a filterable agent, yellow fever virus (YFV), that was transmitted by the bite of infected mosquitoes, Aedes aegypti;
- Discovery that the rhesus monkey and the white mouse are susceptible to infection with YFV, providing models for subsequent studies on the pathogenesis, transmission, epidemiology, and control of the disease;
- Demonstration that convalescent sera of humans and animals infected with YFV neutralize the virus. This discovery led to the development of the mouse neutralization test, which allowed investigators to map the geographic distribution of the virus;
- Discovery of the forest or sylvan cycle of YFV and the importance of mosquitoes other than Ae. aegypti in the transmission and maintenance of the virus;
- Development of the 17D vaccine strain of YFV and its first human trials. Max Theiler, son of South African bluetongue researcher Sir Arnold Theiler, received a Nobel Prize in 1951 for this work.
2.2. Pasteur Institutes and the French Biomedical Research Network in West Africa
2.3. Australia
2.4. South and Southeast Asia
2.5. USSR/Russia
3. The Tools of Discovery
3.1. Virus Isolation and Serology
3.2. Electron Microscopy (EM)
4. The Advent of NGS
4.1. Metagenomics and a New Era of Virus Discovery
4.2. The Taxonomic Challenge of Viral Biodiversity
5. Recent Advances in Virus Characterization
5.1. Rhabdoviruses
5.2. Bunyaviruses
5.3. Flaviviruses
5.4. Alphaviruses
5.5. Reoviruses
5.6. Negeviruses
5.7. Mesoniviruses
6. Conclusion
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Genus | Virus | Year1 | NGS Platform | Reference |
---|---|---|---|---|
Orbivirus | Big Cypress virus* | 2017 | Illumina | [305] |
Ninarumi virus* | 2017 | Illumina | [305] | |
High Island virus* | 2017 | Illumina | [305] | |
bluetongue virus type 3 | 2017 | Illumina | [306] | |
Parry’s Lagoon virus* | 2016 | Illumina | [73] | |
Irituia virus* | 2013 | Roche GS | [307] | |
Mobuck virus* | 2014 | Ion Torrent | [308] | |
Sathuvachari virus* | 2013 | Roche GS | [120] | |
Tribec virus | 2012 | Roche GS | [309] | |
Kemerovo virus | 2012 | Roche GS | [309] | |
Orthoreovirus | Mahlapitsi virus* | 2016 | Illumina | [310] |
largemouth bass reovirus* | 2016 | Illumina | [311] | |
Seadornavirus | Kadipiro virus | 2016 | Illumina | [312] |
Dinovernavirus | Fako virus* | 2015 | Illumina | [313] |
Cypovirus | Anopheles cypovirus* | 2016 | Illumina | [314] |
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Vasilakis, N.; Tesh, R.B.; Popov, V.L.; Widen, S.G.; Wood, T.G.; Forrester, N.L.; Gonzalez, J.P.; Saluzzo, J.F.; Alkhovsky, S.; Lam, S.K.; et al. Exploiting the Legacy of the Arbovirus Hunters. Viruses 2019, 11, 471. https://doi.org/10.3390/v11050471
Vasilakis N, Tesh RB, Popov VL, Widen SG, Wood TG, Forrester NL, Gonzalez JP, Saluzzo JF, Alkhovsky S, Lam SK, et al. Exploiting the Legacy of the Arbovirus Hunters. Viruses. 2019; 11(5):471. https://doi.org/10.3390/v11050471
Chicago/Turabian StyleVasilakis, Nikos, Robert B. Tesh, Vsevolod L. Popov, Steve G. Widen, Thomas G. Wood, Naomi L. Forrester, Jean Paul Gonzalez, Jean Francois Saluzzo, Sergey Alkhovsky, Sai Kit Lam, and et al. 2019. "Exploiting the Legacy of the Arbovirus Hunters" Viruses 11, no. 5: 471. https://doi.org/10.3390/v11050471