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Home > Online-first > Ridha

Incidence Trend and Climate Influence on Dengue Fever in Banjarmasin, Indonesia: A Path Analysis Approach

Muhammad Rasyid Ridha, Ririh Yudhastuti, Triwibowo Ambar Garjito, Muhammad Choirul Hidajat, Juhairiyah Juhairiyah, Liestiana Indriati, Nita Rahayu, Khuliyah Candraning Diyanah, Babucarr Jassey, Yudi Yahya, Muhammad Fajriannor, Nurul Hidayah, Wahyu Pudji Nugraheni, Anita Abdul Rahman

Abstract

Objective: Dengue hemorrhagic fever (DHF) remains a significant global health burden, especially in tropical and subtropical regions. This study aims to determine climate trends and their influence on dengue incidence in Banjarmasin.
Material and Methods: DHF data were collected monthly from the health centers through the Health Office from 2016- 2023. Climate data (temperature, humidity and rainfall) were obtained from the Banjarbaru Class II Meteorology and Geophysics Agency. Decomposition approach and path analysis were used in this study.
Results: The results show that DHF cases exhibited a strong seasonal pattern, with the peak occurring in the first quarter of each year. The incidence of DHF in Banjarmasin has shown an increasing trend since 2016, with the highest incidence reported in 2023 (88 cases, 12.10 per 100,000 population). Temperature had the most significant direct impact on DHF cases, followed by rainfall and humidity. Humidity and temperature also indirectly affected dengue cases, as demonstrated in the path analysis (direct effect of rainfall: 0.269; indirect effect through temperature: -0.0643). These results underscore the influence of climate on the incidence of dengue fever.
Conclusion: Case trends can reveal the seasonal pattern of DHF cases. Mitigation efforts by local health authorities early in the year are essential to reducing morbidity and mortality from dengue fever in Banjarmasin.

 Keywords

climate; dengue; incidence trend; Indonesia; path analysis

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References

Ramadhani SN, Latif MT. Impact of climate change on dengue hemorrhagic fever (DHF) in tropical countries: a literature review. J Kesehat Lingkung 2021;13:219-26. doi: 10.20473/jkl. v13i4.2021.219-226.

Pakaya R, Daniel D, Widayani P, Utarini A. Spatial model of dengue hemorrhagic fever (DHF) risk: scoping review. BMC Public Health 2023;23:2448. doi: 10.1186/s12889-023-17185–3.

Parveen S, Riaz Z, Saeed S, Ishaque U, Sultana M, Faiz Z, et al. Dengue hemorrhagic fever: a growing global menace. J Water Health 2023;21:1632-50. doi: 10.2166/wh.2023.114.

Pinontoan OR, Sumampouw OJ, Ticoalu JHV, Nelwan JE, Musa EC, Sekeeon J. The variability of temperature, rainfall, humidity and prevalance of dengue fever in Manado City. Bali Med J 2022;11:81-6. doi: 10.15562/bmj.v11i1.2722.

Ridha MR, Indriyati L, Juhairiyah J, Kusumaningtyas H. Malaria incidence trends and their association with climatic variables in East Kalimantan, Indonesia, 2014-2020. J Environ Health 2022;14:130–8. doi: 10.20473/jkl.v14i2.2022.130-138.

Ridha MR, Marlinae L, Zubaidah T, Fadillah NA, Widjaja J, Rosadi D, et al. Control methods for invasive mosquitoes of Aedes aegypti and Aedes albopictus (Diptera: Culicidae) in Indonesia. Vet World 2023;16:1952. doi: 10.14202/vetworld.2023. 1952-1963.

Islam S, Emdad Haque C, Hossain S, Hanesiak J. Climate variability, dengue vector abundance and dengue fever cases in dhaka, bangladesh: a time-series study. Atmosphere (Basel) 2021;12:905. doi: 10.3390/atmos12070905.

Edillo F, Ymbong RR, Navarro AO, Cabahug MM, Saavedra K. Detecting the impacts of humidity, rainfall, temperature, and season on chikungunya, dengue and Zika viruses in Aedes albopictus mosquitoes from selected sites in Cebu city, Philippines. Virol J 2024;21:1-16. doi: 10.1186/s12985-024- 02310–4.

Zaw W, Lin Z, Ko JK, Rotejanaprasert C, Pantanilla N, Ebener S, et al. Dengue in Myanmar: Spatiotemporal epidemiology, association with climate and short-term prediction. PLoS Negl Trop Dis 2023;17:1-25. doi: 10.1371/journal.pntd.0011331.

Kesetyaningsih TW, Fauzan RA. The relationship between climate factors and dengue hemorrhagic fever incidence in Sleman, Yogyakarta. Proceedings of the 4th International Conference on Sustainable Innovation 2020–Health Science and Nursing (ICoSIHSN 2020). 2021;33(ICoSIHSN 2020):614-9. doi: 10.2991/ahsr.k.210115.116.

Li Y, Dou Q, Lu Y, Xiang H, Yu X, Liu S. Effects of ambient temperature and precipitation on the risk of dengue fever: a systematic review and updated meta-analysis. Environ Res 2020;191:110043. doi: 10.1016/j.envres.2020.110043.

Monintja TCN, Arsin AA, Syafar M, Amiruddin R. Relationship between rainfall and rainy days with dengue hemorrhagic fever incidence in Manado City, North Sulawesi, Indonesia. Open Access Maced J Med Sci 2022;10:840-3. doi: 10.3889/oamjms. 2022.8897.

Ehelepola NDB, Ariyaratne K, Buddhadasa W, Ratnayake S, Wickramasinghe M. A study of the correlation between dengue and weather in Kandy City, Sri Lanka (2003-2012) and lessons learned. Infect Dis Poverty 2015;4:1-15. doi: 10.1186/s40249- 015-0075–8.

Bellone R, Failloux AB. The role of temperature in shaping mosquito-borne viruses transmission. Front Microbiol 2020; 11:584846. doi: 10.3389/fmicb.2020.584846.

Takken W, Verhulst NO. Host preferences of blood-feeding mosquitoes. Annu Rev Entomol 2013;58:433-53. doi: 10.1146/ annurev-ento-120811–53618.

Edillo F, Ymbong RR, Bolneo AA, Hernandez RJ, Fuentes BL, Cortes G, et al. Temperature, season, and latitude influence development-related phenotypes of Philippine Aedes aegypti (Linnaeus): Implications for dengue control amidst global warming. Parasit Vectors 2022;15:1-17. doi: 10.1186/s13071- 022-05186–x.

Nakano K. Future risk of dengue fever to workforce and industry through global supply chain. Mitig Adapt Strateg Glob Chang 2018;23:433-49. doi: 10.1007/s11027-017-9741–4.

Masrani AS, Rosmawati N, Husain N, Musa KI, Yasin AS. Prediction of dengue incidence in the Northeast Malaysia based on weather data using the generalized additive model. Hindawi BioMed Res Int 2021;2021:1-8. doi: 10.1155/2021/3540964.

Muhajir AR, Sutoyo E, Darmawan I. Forecasting dengue fever disease model in DKI Jakarta province using linear regression algorithm to determine the trend of predictor variable values towards increasing cases. Fountain Informatics J 2019;4:33. doi: 10.21111/fij.v4i2.3199.

Monintja TCN, Arsin AA, Amiruddin R, Syafar M. Analysis of temperature and humidity on dengue hemorrhagic fever in Manado Municipality. Gac Sanit 2021;35(Suppl 2):S330-3. doi: 10.1016/j.gaceta.2021.07.020.

Abdullah NAMH, Dom NC, Salleh SA, Salim H, Precha N. The association between dengue case and climate: a systematic review and meta-analysis. One Heal 2022;15:100452. doi: 10. 1016/j.onehlt.2022.100452.

Hii YL, Zaki RA, Aghamohammadi N, Rocklöv J. Research on climate and dengue in Malaysia: a systematic review. Curr Environ Heal Reports 2016;3:81-90. doi: 10.1007/s40572-016- 0078-z.

Indriyati L, Mahanani U. The effect of La Nina and El Nino on dengue fever and malaria in Indonesia. EnviroScienteae 2024;20:90-9. doi: 10.20527/es.v20i1.18877.

Aswi A, Cramb S, Duncan E, Hu W, White G, Mengersen K. Climate variability and dengue fever in Makassar, Indonesia: Bayesian spatio-temporal modelling. Spat Spatiotemporal Epidemiol 2020;33:100335. doi: 10.1016/j.gaceta.2021.10.063.

Pramanik M, Singh P, Kumar G, Ojha VP, Dhiman RC. El Niño Southern Oscillation as an early warning tool for dengue outbreak in India. BMC Public Health 2020;20:1-11. doi: 10.1186/ s12889-020-09609–1.

Peng Q, Xie SP, A.Passalacqua G, Miyamoto A, Deser C. The 2023 extreme coastal El Niño: atmospheric and sea coupling mechanisms. Sci Adv 2024;10:4-11. doi: 10.1126/sciadv.adk 8646.

Marinho R dos SS, Duro RLS, Mota MT de O, Hunter J, Diaz RS, Kawakubo FS, et al. Environmental changes and the impact on the human infections by dengue, chikungunya and zika viruses in Northern Brazil, 2010–2019. Int J Environ Res Public Health 2022;19:1-11. doi: 10.3390/ijerph191912665.

Hasan NA, Chikamoto Y, Mcphaden MJ. The influence of tropical basin interactions on the double-dip La Niña. Front Clim 2022; 10:1-13. doi: 10.3389/fclim.2022.1001174.

Yue Y, Liu Q, Liu X, Zhao N, Yin W. Dengue fever in mainland China, 2005–2020: a descriptive analysis of dengue cases and aedes data. Int J Environ Res Public Heal 2022;19:1-13. doi: 10.3390/ijerph19073910.

Lahondère C, Bonizzoni M. Thermal biology of invasive Aedes mosquitoes in the context of climate change. Curr Opin Insect Sci 2022;51:100920. doi: 10.1016/j.cois.2022.100920.

Ishak NI, Kasman K. The effect of climate factors for dengue hemorrhagic fever in Banjarmasin City, South Kalimantan Province, Indonesia, 2012-2016. Public Heal Indones 2018;4: 121-8. doi: 10.36685/phi.v4i3.181.

DOI: http://dx.doi.org/10.31584/jhsmr.20251231

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About The Authors

Muhammad Rasyid Ridha
Doctoral Program of Public Health, Faculty of Public Health, Airlangga University, Surabaya 60115, Indonesia. Public Health Study Program, Faculty of Medicine and Health Sciences, Lambung Mangkurat University, Banjarbaru 70714, Indonesia. Research Center for Public Health and Nutrition, Research Organization for Health, National Research and Innovation Agency Republic of Indonesia, Cibinong 16911,
Indonesia

Ririh Yudhastuti
Department of Environmental Health, Faculty of Public Health, Airlangga University, Surabaya 60115,
Indonesia

Triwibowo Ambar Garjito
Public Health Study Program, Faculty of Medicine and Health Sciences, Lambung Mangkurat University, Banjarbaru 70714,
Indonesia

Muhammad Choirul Hidajat
Public Health Study Program, Faculty of Medicine and Health Sciences, Lambung Mangkurat University, Banjarbaru 70714,
Indonesia

Juhairiyah Juhairiyah
Public Health Study Program, Faculty of Medicine and Health Sciences, Lambung Mangkurat University, Banjarbaru 70714,
Indonesia

Liestiana Indriati
Tanah Bumbu Public Health Laboratory, Ministry of Health Indonesia, Tanah Bumbu 72211,
Indonesia

Nita Rahayu
Public Health Study Program, Faculty of Medicine and Health Sciences, Lambung Mangkurat University, Banjarbaru 70714,
Indonesia

Khuliyah Candraning Diyanah
Department of Environmental Health, Faculty of Public Health, Airlangga University, Surabaya 60115,
Indonesia

Babucarr Jassey
Doctoral Program of Public Health, Faculty of Public Health, Airlangga University, Surabaya 60115, Indonesia. Department of Public Health Services, Ministry of Health, The Quadrangle Banjul 00220,
Gambia

Yudi Yahya
Medical Laboratory Technology Study Program, Polytechnic of Unggulan Kalimantan, Banjarmasin 70122, Indonesia. Medicine Study Program, Faculty of Medicine and Health Sciences, Lambung Mangkurat University, Banjarbaru 70714,
Indonesia

Muhammad Fajriannor
Health Promotion Study Program, Faculty of Health, Sari Mulia University, Banjarmasin 70236,
Indonesia

Nurul Hidayah
Health Promotion Study Program, Faculty of Health, Sari Mulia University, Banjarmasin 70236,
Indonesia

Wahyu Pudji Nugraheni
Public Health Study Program, Faculty of Medicine and Health Sciences, Lambung Mangkurat University, Banjarbaru 70714,
Indonesia

Anita Abdul Rahman
Department of Community Health, Faculty of Medicine and Health Sciences Universiti Putra Malaysia, Selangor Darul Ehsan 43400,
Malaysia

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