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Relationship between Transmission Intensity and Incidence of Dengue Hemorrhagic Fever in Thailand

DOI: 10.1371/journal.pntd.0000263

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Abstract:

Background Dengue is the most prevalent mosquito-borne virus, and potentially fatal dengue hemorrhagic fever (DHF) occurs mainly in secondary infections. It recently was hypothesized that, due to the presence of cross-immunity, the relationship between the incidence of DHF and transmission intensity may be negative at areas of intense transmission. We tested this hypothesis empirically, using vector abundance as a surrogate of transmission intensity. Methodology/Principal Findings House Index (HI), which is defined as the percentage of households infested with vector larvae/pupae, was obtained from surveys conducted on one million houses in Thailand, between 2002 and 2004. First, the utility of HI as a surrogate of transmission intensity was confirmed because HI was correlated negatively with mean age of DHF in the population. Next, the relationship between DHF incidence and HI was investigated. DHF incidence increased only up to an HI of about 30, but declined thereafter. Reduction of HI from the currently maximal level to 30 would increase the incidence by more than 40%. Simulations, which implemented a recently proposed model for cross-immunity, generated results that resembled actual epidemiological data. It was predicted that cross-immunity generates a wide variation in incidence, thereby obscuring the relationship between incidence and transmission intensity. The relationship would become obvious only if data collected over a long duration (e.g., >10 years) was averaged. Conclusion The negative relationship between DHF incidence and dengue transmission intensity implies that in regions of intense transmission, insufficient reduction of vector abundance may increase long-term DHF incidence. Further studies of a duration much longer than the present study, are warranted.

References

[1]  Gubler DJ (1997) Dengue and dengue hemorrhagic fever: its history and resurgence as a global public health problem. In: Gubler DJ, Kuno G, editors. Dengue and Dengue Hemorrhagic Fever. Wallingford: CAB International. pp. 1–22.
[2]  Cleland JB, Bradley B, McDonald W (1916) On the transmission of Australian dengue by the mosquito Stegomyia fasciata. Medical Journal of Australia 2: 179–205.
[3]  Siler JF, Hall MW, Hitchens AP (1926) Dengue: the history, epidemiology, mechanism of transmission, etiology, clinical manifestations, immunity, and prevention. Philippine Journal of Science 29: 1–304.
[4]  Simmons JS, St John JH, Reynolds FHK (1931) Experimental studies of dengue. Philippine Journal of Science 44: 1–247.
[5]  Sabin AB (1952) Research on dengue during World War II. Am J Trop Med Hyg 1: 30–50.
[6]  Hawkes RA (1964) Enhancement of the Infectivity of Arboviruses by Specific Antisera Produced in Domestic Fowls. Aust J Exp Biol Med Sci 42: 465–482. doi: 10.1038/icb.1964.44
[7]  Hawkes RA, Lafferty KJ (1967) The enhancement of virus infectivity by antibody. Virology 33: 250–261. doi: 10.1016/0042-6822(67)90144-4
[8]  Halstead SB, O'Rourke EJ (1977) Antibody-enhanced dengue virus infection in primate leukocytes. Nature 265: 739–741. doi: 10.1038/265739a0
[9]  Halstead SB, O'Rourke EJ (1977) Dengue viruses and mononuclear phagocytes. I. Infection enhancement by non-neutralizing antibody. J Exp Med 146: 201–217. doi: 10.1084/jem.146.1.201
[10]  Sangkawibha N, Rojanasuphot S, Ahandrik S, Viriyapongse S, Jatanasen S, et al. (1984) Risk factors in dengue shock syndrome: a prospective epidemiologic study in Rayong, Thailand. I. The 1980 outbreak. Am J Epidemiol 120: 653–669.
[11]  Hay SI, Myers MF, Burke DS, Vaughn DW, Endy T, et al. (2000) Etiology of interepidemic periods of mosquito-borne disease. Proc Natl Acad Sci U S A 97: 9335–9339. doi: 10.1073/pnas.97.16.9335
[12]  Cazelles B, Chavez M, McMichael AJ, Hales S (2005) Nonstationary influence of El Nino on the synchronous dengue epidemics in Thailand. PLoS Med 2: e106. doi:10.1371/journal.pmed.0020106. doi: 10.1371/journal.pmed.0020106
[13]  Ooi EE, Goh KT, Gubler DJ (2006) Dengue prevention and 35 years of vector control in Singapore. Emerg Infect Dis 12: 887–893. doi: 10.3201/10.3201/eid1206.051210
[14]  Egger JR, Ooi EE, Kelly DW, Woolhouse ME, Davies CR, et al. (2007) Reconstructing historical changes in the force of infection of dengue fever in Singapore: implications for surveillance and control. Bulletin of the World Health Organization 86: 187–196. doi: 10.2471/BLT.07.040170
[15]  Coleman PG, Perry BD, Woolhouse ME (2001) Endemic stability–a veterinary idea applied to human public health. Lancet 357: 1284–1286. doi: 10.1016/S0140-6736(00)04410-X
[16]  Egger JR, Coleman PG (2007) Age and clinical dengue illness. Emerging Infectious Diseases 13: 924–925. doi: 10.3201/eid1306.070008
[17]  Anderson RM, May RM (1991) Infectious Diseases of Humans: Dynamics and Control. Oxford: Oxford University Press.
[18]  Dantes HG, Koopman JS, Addy CL, Zarate ML, Marin MA, et al. (1988) Dengue epidemics on the Pacific Coast of Mexico. Int J Epidemiol 17: 178–186. doi: 10.1093/ije/17.1.178
[19]  Guzman MG, Kouri G, Valdes L, Bravo J, Alvarez M, et al. (2000) Epidemiologic studies on Dengue in Santiago de Cuba, 1997. Am J Epidemiol 152: 793–799; discussion 804. doi: 10.1093/aje/152.9.793
[20]  Guzman MG, Kouri G, Bravo J, Valdes L, Vazquez S, et al. (2002) Effect of age on outcome of secondary dengue 2 infections. Int J Infect Dis 6: 118–124. doi: 10.1016/S1201-9712(02)90072-X
[21]  Hammond SN, Balmaseda A, Perez L, Tellez Y, Saborio SI, et al. (2005) Differences in dengue severity in infants, children, and adults in a 3-year hospital-based study in Nicaragua. Am J Trop Med Hyg 73: 1063–1070.
[22]  Nagao Y, Koelle K (2008) Decreases in dengue transmission may act to increase the incidence of dengue hemorrhagic fever. Proc Natl Acad Sci U S A 105: 2238–2243. doi: 10.1073/pnas.0709029105
[23]  Kochel TJ, Watts DM, Gozalo AS, Ewing DF, Porter KR, et al. (2005) Cross-serotype neutralization of dengue virus in Aotus nancymae monkeys. J Infect Dis 191: 1000–1004. doi: 10.1086/427511
[24]  Macdonald G (1952) The analysis of equilibrium in malaria. Trop Dis Bull 49: 813–829.
[25]  WHO (1997) Vector surveillance and control. Dengue haemorrhagic fever Diagnosis, treatment, prevention and control. 2nd ed. Geneva: World Health Organization. pp. 48–59.
[26]  Sanchez L, Vanlerberghe V, Alfonso L, Marquetti Mdel C, Guzman MG, et al. (2006) Aedes aegypti larval indices and risk for dengue epidemics. Emerg Infect Dis 12: 800–806. doi: 10.3201/eid1205.050866
[27]  Focks DA, Chadee DD (1997) Pupal survey: an epidemiologically significant surveillance method for Aedes aegypti: an example using data from Trinidad. Am J Trop Med Hyg 56: 159–167.
[28]  Reiter P, Gubler DJ (1998) Surveillance and control of urban dengue vectors. In: Gubler DJ, Kuno G, editors. Dengue and Dengue Hemorrhagic Fever. Wallingford: CAB International. pp. 425–462.
[29]  Nathan MB, Focks DA, Kroeger A (2006) Pupal/demographic surveys to inform dengue-vector control. Ann Trop Med Parasitol 100: Suppl 1S1–S3. doi: 10.1179/136485906X105462
[30]  Wellmer H (1983) Dengue Haemorrhagic Fever in Thailand. Geomedical observations on developments over the period 1970–1979. Berlin: Springer-Verlag.
[31]  Figueiras A, Cadarso-Suarez C (2001) Application of nonparametric models for calculating odds ratios and their confidence intervals for continuous exposures. Am J Epidemiol 154: 264–275. doi: 10.1093/aje/154.3.264
[32]  Kuno G (1997) Factors influencing the transmission of dengue viruses. In: Gubler DJ, Kuno G, editors. Dengue and Dengue Hemorrhagic Fever. New York: CAB International. pp. 61–88.
[33]  Nagao Y, Svasti P, Tawatsin A, Thavara U (2007) Geographical structure of dengue transmission and its determinants in Thailand. Epidemiol Infect 1–9. doi: 10.1017/s0950268807008990
[34]  Watts DM, Burke DS, Harrison BA, Whitmire RE, Nisalak A (1987) Effect of temperature on the vector efficiency of Aedes aegypti for dengue 2 virus. Am J Trop Med Hyg 36: 143–152.
[35]  Clements AN (1992) The Biology of Mosquitoes. Volume 1. Development, Nutrition and Reproduction. London: Chapman and Hall.
[36]  Hales S, de Wet N, Maindonald J, Woodward A (2002) Potential effect of population and climate changes on global distribution of dengue fever: an empirical model. Lancet 360: 830–834. doi: 10.1016/S0140-6736(02)09964-6
[37]  UCAR Climate Prediction Center Global Summary of Day/Month Observations. http://dss.ucar.edu/datasets/ds512.0/.
[38]  Goovaerts P (1997) Geostatistics for Natural Resources Evaluation. New York: Oxford University Press, USA.
[39]  Nisalak A, Endy TP, Nimmannitya S, Kalayanarooj S, Thisayakorn U, et al. (2003) Serotype-specific dengue virus circulation and dengue disease in Bangkok, Thailand from 1973 to 1999. Am J Trop Med Hyg 68: 191–202.
[40]  Endy TP, Nisalak A, Chunsuttiwat S, Libraty DH, Green S, et al. (2002) Spatial and temporal circulation of dengue virus serotypes: a prospective study of primary school children in Kamphaeng Phet, Thailand. Am J Epidemiol 156: 52–59. doi: 10.1093/aje/kwf006

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