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9 - Characterizing Simian Foamy Virus Transmission in Bangladesh

from Section II - Epidemiological Studies

Published online by Cambridge University Press:  16 February 2017

Kerry M. Dore
Affiliation:
University of Texas, San Antonio
Erin P. Riley
Affiliation:
San Diego State University
Agustín Fuentes
Affiliation:
University of Notre Dame, Indiana
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Summary

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Chapter
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Ethnoprimatology
A Practical Guide to Research at the Human-Nonhuman Primate Interface
, pp. 111 - 120
Publisher: Cambridge University Press
Print publication year: 2017

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References

Akhtar, S. (2014). Monkey performers in Bangladesh: Monkey population, healthcare, human–monkey interaction and socio-economic condition of the monkey owners. Dissertation, Jahangirnagar University.Google Scholar
Craig, K. L., Hasan, M. K., Jackson, D. L., et al. (2015). A seminomadic population in Bangladesh with extensive exposure to macaques does not exhibit high levels of zoonotic simian foamy virus infection. Journal of Virology, 89, 74147416.Google Scholar
Engel, G., Hungerford, L. L., Jones-Engel, L., et al. (2006). Risk assessment: A model for predicting cross-species transmission of simian foamy virus from macaques (M. fascicularis) to humans at a monkey temple in Bali, Indonesia. American Journal of Primatology, 68, 934948.CrossRefGoogle Scholar
Engel, G. A., Small, C. T., Soliven, K., et al. (2013). Zoonotic simian foamy virus in Bangladesh reflects diverse patterns of transmission and co-infection. Emerging Microbes & Infections, 2(9). doi: 10.1038/emi.2013.60.Google Scholar
Feeroz, M. M. (2001). Species diversity and population density of non-human primates in north-east and south-east of Bangladesh. Ecoprint, 8, 5357.Google Scholar
Feeroz, M. M., Soliven, K., Small, C. T., et al. (2013). Population dynamics of rhesus macaques and associated foamy virus in Bangladesh. Emerging Microbes & Infections, 2, e29. doi: 10.1038/emi.2013.23.Google Scholar
Gessain, A., Rua, R., Betsem, E., Turpin, J., & Mahieux, R. (2013). HTLV-3/4 and simian foamy retroviruses in humans: Discovery, epidemiology, cross-species transmission and molecular virology. Virology, 435, 187199.CrossRefGoogle ScholarPubMed
Goldberg, T. L., Sintasath, D. M., Chapman, C. A., et al. (2009). Coinfection of Ugandan red colobus (Procolobus [Piliocolobus] rufomitratus tephrosceles) with novel, divergent delta-, lenti-, and spumaretroviruses. Journal of Virology, 83, 1131811329.CrossRefGoogle ScholarPubMed
Hasan, M. K., Feeroz, M. M., Jones-Engel, L., et al. (2014) Diversity and molecular phylogeny of mitochondrial DNA of rhesus macaques (Macaca mulatta) in Bangladesh. American Journal of Primatology, 76(11), 10941104.CrossRefGoogle ScholarPubMed
Jones-Engel, L., Engel, G. A., Schillaci, M. A., et al. (2005). Primate-to-human retroviral transmission in Asia. Emerging Infectious Diseases, 11, 10281035.Google Scholar
Jones-Engel, L., Steinkraus, K. A., Murray, S. M., et al. (2007). Sensitive assays for simian foamy viruses reveal a high prevalence of infection in commensal, free-ranging, Asian monkeys. Journal of Virology, 81, 73307337.CrossRefGoogle ScholarPubMed
Kalish, M. L., Wolfe, N. D., Ndongmo, C. B., et al. (2005). Central African hunters exposed to simian immunodeficiency virus. Emerging Infectious Diseases, 11, 19281930.CrossRefGoogle ScholarPubMed
Karlsson, E. A., Engel, G. A., Feeroz, M. M., et al. (2012). Influenza virus infection in nonhuman primates. Emerging Infectious Diseases, 18(10),16721675.CrossRefGoogle ScholarPubMed
Karlsson, E. A., Small, C. T., Freiden, P., et al. (2015). Non-human primates harbor diverse mammalian and avian astroviruses including those associated with human infections. PLoS Pathogens, 11, e1005225. doi: 10.1371/journal.ppat.1005225.Google Scholar
Khabbaz, R. F., Heneine, W., George, J. R., et al. (1994). Infection of a laboratory worker with simian immunodeficiency virus. New England Journal of Medicine, 330, 172177.CrossRefGoogle ScholarPubMed
Leendertz, F. H., Zirkel, F., Couacy-Hymann, E., et al. (2008). Interspecies transmission of simian foamy virus in a natural predator–prey system. Journal of Virology, 82, 77417744.CrossRefGoogle Scholar
Lerche, N. W., Switzer, W. M., Yee, J. L., et al. (2001). Evidence of infection with simian type D retrovirus in persons occupationally exposed to nonhuman primates. Journal of Virology, 75, 17831789.CrossRefGoogle ScholarPubMed
Liu, W., Worobey, M., Li, Y., et al. (2008). Molecular ecology and natural history of simian foamy virus infection in wild-living chimpanzees. PLoS Pathogens, 4(7), e1000097.CrossRefGoogle ScholarPubMed
Matsen, F. A., Small, C. T., Soliven, K., et al. (2014). A novel Bayesian method for detection of APOBEC3-mediated hypermutation and its application to zoonotic transmission of simian foamy viruses. PLoS Computational Biology, 10(2), e1003493.Google Scholar
Murray, S. M., Picker, L. J., Axthelm, M. K., & Linial, M. L. (2006). Expanded tissue targets for foamy virus replication with simian immunodeficiency virus-induced immunosuppression. Journal of Virology, 80, 663670.CrossRefGoogle ScholarPubMed
Oberste, M. S., Feeroz, M. M., Maher, K., et al. (2013). Characterizing the picornavirus landscape among synanthropic nonhuman primates in Bangladesh, 2007–2008. Journal of Virology, 87(1), 558571.CrossRefGoogle Scholar
Soliven, K., Wang, X., Small, C. T., et al. (2013). Simian foamy virus infection of rhesus macaques in Bangladesh: Relationship of latent proviruses and transcriptionally active viruses. Journal of Virology, 87(24), 1362813639. doi: 10.1128/JVI.01989-13.Google Scholar
Switzer, W. M., Bhullar, V., Shanmugam, V., et al. (2004). Frequent simian foamy virus infection in persons occupationally exposed to nonhuman primates. Journal of Virology, 78, 27802789.CrossRefGoogle ScholarPubMed
Switzer, W. M., Salemi, M., Shanmugam, V., et al. (2005). Ancient cospeciation of simian foamy viruses and primates. Nature, 434, 376380.CrossRefGoogle ScholarPubMed
Wilbur, A. K., Engel, G. A., Rompis, A., et al. (2012). From the mouths of monkeys: Detection of Mycobacterium tuberculosis complex DNA from buccal swabs of synanthropic macaques. American Journal of Primatology, 74(7), 676686.CrossRefGoogle ScholarPubMed

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