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Published in: BMC Public Health 1/2023

Open Access 01-12-2023 | Research

Association between environmental factors and dengue incidence in Lao People’s Democratic Republic: a nationwide time-series study

Authors: Masumi Sugeno, Erin C. Kawazu, Hyun Kim, Virasack Banouvong, Nazife Pehlivan, Daniel Gilfillan, Ho Kim, Yoonhee Kim

Published in: BMC Public Health | Issue 1/2023

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Abstract

Background

Dengue fever is a vector-borne disease of global public health concern, with an increasing number of cases and a widening area of endemicity in recent years. Meteorological factors influence dengue transmission. This study aimed to estimate the association between meteorological factors (i.e., temperature and rainfall) and dengue incidence and the effect of altitude on this association in the Lao People’s Democratic Republic (Lao PDR).

Methods

We used weekly dengue incidence and meteorological data, including temperature and rainfall, from 18 jurisdictions in Lao PDR from 2015 to 2019. A two-stage distributed lag nonlinear model with a quasi-Poisson distribution was used to account for the nonlinear and delayed associations between dengue incidence and meteorological variables, adjusting for long-term time trends and autocorrelation.

Results

A total of 55,561 cases were reported in Lao PDR from 2015 to 2019. The cumulative relative risk for the 90th percentile of weekly mean temperature (29 °C) over 22 weeks was estimated at 4.21 (95% confidence interval: 2.00–8.84), relative to the 25th percentile (24 °C). The cumulative relative risk for the weekly total rainfall over 12 weeks peaked at 82 mm (relative risk = 1.76, 95% confidence interval: 0.91–3.40) relative to no rain. However, the risk decreased significantly when heavy rain exceeded 200 mm. We found no evidence that altitude modified these associations.

Conclusions

We found a lagged nonlinear relationship between meteorological factors and dengue incidence in Lao PDR. These findings can be used to develop climate-based early warning systems and provide insights for improving vector control in the country.
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Literature
2.
go back to reference World Health Organization. Dengue and severe dengue. 2022. World Health Organization. Dengue and severe dengue. 2022.
3.
go back to reference Lambrechts L, Scott TW, Gubler DJ. Consequences of the expanding global distribution of Aedes albopictus for dengue virus transmission. PLoS Negl Trop Dis. 2010;4(5): e646.CrossRefPubMedPubMedCentral Lambrechts L, Scott TW, Gubler DJ. Consequences of the expanding global distribution of Aedes albopictus for dengue virus transmission. PLoS Negl Trop Dis. 2010;4(5): e646.CrossRefPubMedPubMedCentral
4.
go back to reference Tian N, et al. Dengue incidence trends and its burden in major endemic regions from 1990 to 2019. Trop Med Infect Dis. 2022;7(8):180. Tian N, et al. Dengue incidence trends and its burden in major endemic regions from 1990 to 2019. Trop Med Infect Dis. 2022;7(8):180.
6.
7.
go back to reference Nik Abdull Halim N.M.H., et al. A systematic review and meta-analysis of the effects of temperature on the development and survival of the Aedes mosquito. Front Public Health. 2022; 10: 1074028. Nik Abdull Halim N.M.H., et al. A systematic review and meta-analysis of the effects of temperature on the development and survival of the Aedes mosquito. Front Public Health. 2022; 10: 1074028.
8.
go back to reference Regis LN, et al. Characterization of the spatial and temporal dynamics of the dengue vector population established in urban areas of Fernando de Noronha, a Brazilian oceanic island. Acta Trop. 2014;137:80–7.CrossRefPubMed Regis LN, et al. Characterization of the spatial and temporal dynamics of the dengue vector population established in urban areas of Fernando de Noronha, a Brazilian oceanic island. Acta Trop. 2014;137:80–7.CrossRefPubMed
9.
go back to reference Wang Y, et al. Impact of extreme weather on dengue fever infection in four Asian countries: a modelling analysis. Environ Int. 2022;169: 107518.CrossRefPubMed Wang Y, et al. Impact of extreme weather on dengue fever infection in four Asian countries: a modelling analysis. Environ Int. 2022;169: 107518.CrossRefPubMed
10.
11.
go back to reference Ryan SJ, et al. Global expansion and redistribution of Aedes-borne virus transmission risk with climate change. PLoS Negl Trop Dis. 2019;13(3): e0007213.CrossRefPubMedPubMedCentral Ryan SJ, et al. Global expansion and redistribution of Aedes-borne virus transmission risk with climate change. PLoS Negl Trop Dis. 2019;13(3): e0007213.CrossRefPubMedPubMedCentral
12.
13.
go back to reference Gyawali N, et al. Patterns of dengue in Nepal from 2010–2019 in relation to elevation and climate. Trans R Soc Trop Med Hyg. 2021;115(7):741–9.CrossRefPubMed Gyawali N, et al. Patterns of dengue in Nepal from 2010–2019 in relation to elevation and climate. Trans R Soc Trop Med Hyg. 2021;115(7):741–9.CrossRefPubMed
14.
go back to reference Doum D, et al. Dengue Seroprevalence and Seroconversion in Urban and Rural Populations in Northeastern Thailand and Southern Laos. Int J Environ Res Public Health. 2020;17(23):9134. Doum D, et al. Dengue Seroprevalence and Seroconversion in Urban and Rural Populations in Northeastern Thailand and Southern Laos. Int J Environ Res Public Health. 2020;17(23):9134.
15.
go back to reference Calvez E, et al. Trends of the dengue serotype-4 circulation with epidemiological, phylogenetic, and entomological insights in Lao PDR between 2015 and 2019. Pathogens. 2020;9(9):728. Calvez E, et al. Trends of the dengue serotype-4 circulation with epidemiological, phylogenetic, and entomological insights in Lao PDR between 2015 and 2019. Pathogens. 2020;9(9):728.
18.
go back to reference Coalson JE, et al. The complex epidemiological relationship between flooding events and human outbreaks of mosquito-borne diseases: a scoping review. Environ Health Perspect. 2021;129(9):96002.CrossRefPubMed Coalson JE, et al. The complex epidemiological relationship between flooding events and human outbreaks of mosquito-borne diseases: a scoping review. Environ Health Perspect. 2021;129(9):96002.CrossRefPubMed
20.
go back to reference Wang P, et al. A systematic review on lagged associations in climate-health studies. Int J Epidemiol. 2021;50(4):1199–212.CrossRefPubMed Wang P, et al. A systematic review on lagged associations in climate-health studies. Int J Epidemiol. 2021;50(4):1199–212.CrossRefPubMed
22.
go back to reference Higgins JP, Thompson SG. Quantifying heterogeneity in a meta-analysis. Stat Med. 2002;21(11):1539–58.CrossRefPubMed Higgins JP, Thompson SG. Quantifying heterogeneity in a meta-analysis. Stat Med. 2002;21(11):1539–58.CrossRefPubMed
23.
go back to reference Gasparrini A, Armstrong B, Kenward MG. Multivariate meta-analysis for non-linear and other multi-parameter associations. Stat Med. 2012;31(29):3821–39.CrossRefPubMedPubMedCentral Gasparrini A, Armstrong B, Kenward MG. Multivariate meta-analysis for non-linear and other multi-parameter associations. Stat Med. 2012;31(29):3821–39.CrossRefPubMedPubMedCentral
25.
27.
go back to reference Wu X, et al. Non-linear effects of mean temperature and relative humidity on dengue incidence in Guangzhou, China. Sci Total Environ. 2018;628–629:766–71.CrossRefPubMed Wu X, et al. Non-linear effects of mean temperature and relative humidity on dengue incidence in Guangzhou, China. Sci Total Environ. 2018;628–629:766–71.CrossRefPubMed
29.
go back to reference Xu Z, et al. Spatiotemporal patterns and climatic drivers of severe dengue in Thailand. Sci Total Environ. 2019;656:889–901.CrossRefPubMed Xu Z, et al. Spatiotemporal patterns and climatic drivers of severe dengue in Thailand. Sci Total Environ. 2019;656:889–901.CrossRefPubMed
30.
32.
go back to reference Wongkoon S, Jaroensutasinee M, Jaroensutasinee K. Weather factors influencing the occurrence of dengue fever in Nakhon Si Thammarat Thailand. Trop Biomed. 2013;30(4):631–41.PubMed Wongkoon S, Jaroensutasinee M, Jaroensutasinee K. Weather factors influencing the occurrence of dengue fever in Nakhon Si Thammarat Thailand. Trop Biomed. 2013;30(4):631–41.PubMed
33.
go back to reference Ehelepola ND, et al. A study of the correlation between dengue and weather in Kandy City, Sri Lanka (2003–2012) and lessons learned. Infect Dis Poverty. 2015;4:42.CrossRefPubMedPubMedCentral Ehelepola ND, et al. A study of the correlation between dengue and weather in Kandy City, Sri Lanka (2003–2012) and lessons learned. Infect Dis Poverty. 2015;4:42.CrossRefPubMedPubMedCentral
35.
go back to reference Matsushita N, et al. Differences of rainfall-malaria associations in lowland and highland in Western Kenya. Int J Environ Res Public Health. 2019;16(19):3693. Matsushita N, et al. Differences of rainfall-malaria associations in lowland and highland in Western Kenya. Int J Environ Res Public Health. 2019;16(19):3693.
37.
go back to reference Vannavong N, et al. Effects of socio-demographic characteristics and household water management on Aedes aegypti production in suburban and rural villages in Laos and Thailand. Parasit Vectors. 2017;10(1):170.CrossRefPubMedPubMedCentral Vannavong N, et al. Effects of socio-demographic characteristics and household water management on Aedes aegypti production in suburban and rural villages in Laos and Thailand. Parasit Vectors. 2017;10(1):170.CrossRefPubMedPubMedCentral
38.
go back to reference World Health Organization. Managing regional public goods for health: community-based dengue vector control 2013. 2013. World Health Organization. Managing regional public goods for health: community-based dengue vector control 2013. 2013.
39.
go back to reference Sayono S, et al. Altitudinal distribution of Aedes indices during dry season in the dengue endemic area of Central Java Indonesia. Ann Parasitol. 2017;63(3):213–21.PubMed Sayono S, et al. Altitudinal distribution of Aedes indices during dry season in the dengue endemic area of Central Java Indonesia. Ann Parasitol. 2017;63(3):213–21.PubMed
40.
go back to reference Khampapongpane B, et al. National dengue surveillance in the Lao People’s Democratic Republic, 2006–2012: epidemiological and laboratory findings. Western Pac Surveill Response J. 2014;5(1):7–13.PubMedPubMedCentral Khampapongpane B, et al. National dengue surveillance in the Lao People’s Democratic Republic, 2006–2012: epidemiological and laboratory findings. Western Pac Surveill Response J. 2014;5(1):7–13.PubMedPubMedCentral
42.
44.
go back to reference Qian X, Qi Z. Mosquito-borne flaviviruses and current therapeutic advances. Viruses. 2022;14(6):1226. Qian X, Qi Z. Mosquito-borne flaviviruses and current therapeutic advances. Viruses. 2022;14(6):1226.
45.
go back to reference Hussain-Alkhateeb L, et al. Early warning systems (EWSs) for chikungunya, dengue, malaria, yellow fever, and Zika outbreaks: What is the evidence? A scoping review. PLoS Negl Trop Dis. 2021;15(9): e0009686.CrossRefPubMedPubMedCentral Hussain-Alkhateeb L, et al. Early warning systems (EWSs) for chikungunya, dengue, malaria, yellow fever, and Zika outbreaks: What is the evidence? A scoping review. PLoS Negl Trop Dis. 2021;15(9): e0009686.CrossRefPubMedPubMedCentral
Metadata
Title
Association between environmental factors and dengue incidence in Lao People’s Democratic Republic: a nationwide time-series study
Authors
Masumi Sugeno
Erin C. Kawazu
Hyun Kim
Virasack Banouvong
Nazife Pehlivan
Daniel Gilfillan
Ho Kim
Yoonhee Kim
Publication date
01-12-2023
Publisher
BioMed Central
Published in
BMC Public Health / Issue 1/2023
Electronic ISSN: 1471-2458
DOI
https://doi.org/10.1186/s12889-023-17277-0

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