Abstract
Indonesia is a member of Southeast Asia Regional Office (SEARO) ranked the first in dengue hemorrhagic fever (DHF) problem based on incidence rate (IR) and case fatality rate (CFR). Several provinces in Indonesia experience an outbreak, one of which is the Mataram City in West Nusa Tenggara Province. Mataram City is an endemic area of DHF because the DHF cases are always found in three consecutive years with the number of cases that fluctuate and tend to increase. This study aimed to obtain factors that could be used to improve early warning systems in controlling DHF. This study used a case control design with a ratio of 1:1 to 180 house holds. The results showed that home environmental factors, such as no ceiling, indoor and outdoor temperature that had the potential for breeding places for mosquitoes, no wire net in ventilation, low lighting and high humidity, related to DHF transmission. Vector distibution with entomology index showed that the existence of larvae, eggs and mosquitoes played a role in dengue transmission. The dominant factors affecting the transmission of dengue in Mataram City are the condition of the ceiling and the existence of mosquito eggs in the house.
References
1. Brady OJ, Gething PW, Bhatt S, Messina JP, Brownstein JS, Hoen AG, et al. Refining the global spatial limits of dengue virus transmission by evidence-based consensus. PLoS Neglected Tropical Disease. 2012; 6(8): e1760.
2. Bhatt S, Gething PW, Brady OJ, Messina JP, Farlow AW, Moyes CL, et al. The global distribution and burden of dengue. Nature. 2013; 496(7446): 504–7.
3. Sariwati. Seminar Nasional: pengendalian penyakit tular vektor. Yogyakarta; 2017.
4. Dinas Kesehatan Kota Mataram. Profil Kesehatan Kota Mataram Tahun 2016; 2016.
5. Khan J, Khan I, Ghaffar A, Khalid B. Epidemiological trends and risk factors associated with dengue disease in Pakistan (1980-2014): a systematic literature search and analysis. PMC Public Health. 2018; 18: 745.
6. Masyeni S, Yohan B, Somia IKA, Myint KSA, Sasmono RT. Dengue infection in international travellers visiting Bali, Indonesia. Journal of Travel Medicine. 2018; 25(1): 1-7.
7. Åström, Christofer Rocklöv, Joacim Hales, Simon Béguin A, Louis, Valerie Sauerborn R. Potential distribution of dengue fever under scenarios of climate change and economic development. Ecohealth. 2012; 9(4): 448–54.
8. Cromwell et al. The relationship between entomological indicators of Aedes aegypti abundance and dengue virus unfection. PLOS Neglected Tropical Diseases. 2017; 11(3): e0005429.
9. Widiastuti D, Kesuma AP, Pramestuti N. Entomological index and transovarial transmission contribute to Dengue Haemorrhagic Fever outbreaks in Banjarnegara Regency. Spirakel. 2016; 8(1): 30–7.
10. Nadifah F, Farida Muhajir N, Arisandi D, D. Owa Lobo M. Identifikasi larva nyamuk pada tempat penampungan air di Padukuhan Dero Condong Catur Kabupaten Sleman. Jurnal Kesehatan Masyarakat Andalas. 2017; 10 (2): 172-178.
11. Pohan NR, Alvira N, Wati P, Nurhadi M. Gambaran kepadatan dan tempat potensial perkembangbiakan jentik Aedes sp. di tempat-tempat umum wilayah kerja Puskesmas Umbulharjo 1 Kota Yogyakarta. Jurnal Formil (Forum Ilmiah) KesMas Respati. 2016; 1(2): 109-20.
12. Astuti, Lustiyati ED. Hubungan kondisi lingkungan fisik terhadap tingkat kepadatan larva Aedes sp di Sekolah Dasar Kecamatan Bantul, DIY. Jurnal Ilmu Kesehatan Masyarakat. 2018; 9(3): 216–225.
13. Satoto TBT, Alvira N, Wibawa T, Diptyanusa A. Improvement to Early warning system the transmission of Dengue Fever through controlling potential factor in Public Elementary School at Yogyakarta. Kesmas: National Public Healh Journal. 2017; 11(4): 178-84.
14. Pascawati NA, Baskoro T, Satoto T, Wibawa T, Frutos R, Maguin S. Potential impact of climate change on dhf dynamics transmission in Mataram City. BALABA. 2019; 15(1): 49–60.
15. Wanti, Yudhastuti R, Notobroto HB, Subekti S, Sila O, Ragu, Febi. Dengue haemorrhagic fever and house conditions in Kupang City, East Nusa Tenggara Province. Kesmas National Public Health Journal. 2019; 13(4): 176-81.
16. Getachew D, Tekie H, Michael TG, Balkew M, Mesfin A. Breeding sites of Aedes aegypti: potential dengue vectors in Dire Dawa East Ethiopia. Interdisciplinary Perspectivas on Infectious Diseases. 2015; 706276: 1-8.
17. Viennet E, Scott, Craig, Williams, Helen, David. Public health responses to and challenges for the control of dengue transmission in high-income countries: case studies. PLOS Necgelted Tropical Diseases. 2016 September 19; 10(9): e0004943.
18. Dinas Kesehatan Kota Mataram. Laporan kasus DBD per tahun. Mataram; 2018.
19. Ghozali. Analisis multivariat program. Semarang: UNDIP; 2013.
20. Sopiyudin D. Statistika untuk kedokteran dan kesehatan. Jakarta: Salemba Medika. 2017; 1-181p.
21. Iriani Y. Hubungan antara curah hujan dan peningkatan kasus Demam Berdarah Dengue anak di Kota Palembang. Sari Pediatri. 2012;13(6): 378–83.
22. Centers for Disease Control and Prevention. Healthy housing reference manual. Atlanta: Department of Housing and Urban Development; 2017.
23. Day J. Mosquito oviposition behavior and vector control. Insects. 2016; 7(4): 65.
24. Powell JR, Tabachnick WJ. History of domestication and spread of Aedes aegypti--a review. Memorias do Insituto Oswaldo Cruz. 2013; 108 Suppl 1: 11–17.
25. Baskoro T, Satoto T, Diptyanusa A, Setiawan YD, Alvira N. Environmental factors of the home affect the density of Aedes aegypti (Diptera: Culicidae). YARSI. 2017; 25(1): 41–51.
26. Snyman, Florence, Victor, James, Tamara, Beth, Bryan, Hugh, Roly, Jenny, Grant. Poor housing construction associated with increased malaria incidence in a cohort of young ugandan children. American Journal Tropical Medicine and Hygiene. 2015; 92(6):1207–1213.
27. Kampango A, Bragança M, Sousa B de, Charlwood JD. Netting barriers to prevent mosquito entry into houses in southern Mozambique: a pilot study. Malaria Journal. 2013; 12(1): 99.
28. Baskoro T, Dwiputro AH, Risdwiyanto RN, Fadli UA, Alvira, Diptyanusa. Prediction model of dengue hemorrhagic fever transmission to enhance early warning system in Gergunung Village Klaten District Central Java. Journal of the Medical Science. 2019; 51(3): 258–69.
29. Reinhold JM, Lazzari CR, Lahondere C. Effects of enviromental temperature on Aedes aegypti: a Review. Insects. 2018; 9(4): 158.
30. Mohammed A, Chadee DD. Effects of different temperature regimens on the development of Aedes aegypti (L.) (Diptera: Culicidae) mosquitoes. Acta Tropical. 2011; 119(1): 38–43.
31. Muturi EJ, Blackshear M, Montgomery A. Temperature and densitydependent effects of larval environment on Aedes aegypti competence for an alphavirus. Journal Vector Ecolocy. 2012; 37(1): 154–61.
32. Costa EAP de A, Santos EM de M, Correia JC, Albuquerque CMR de. Impact of small variations in temperature and humidity on the reproductive activity and survival of Aedes aegypti (Diptera, Culicidae). Revista Brasileira de Entomologia. 2010; 54(3): 488–93.
33. Nurdiana Hayu, Trixie Salwati RA. Kejadian demam berdarah dengue berdasarkan faktor lingkungan dan praktik pemberantasan sarang nyamuk di wilayah kerja Puskesmas Srondol, Kecamatan Banyumanik, Semarang. Jurnal Kesehatan Masyarakat Indonesia. 2010; 6(1): 57–66.
34. Sari E, Wahyuningsih NE, Murwani R. Hubungan lingkungan fisik rumah dengan kejadian Demam Berdarah Dengue di Semarang. Jurnal Kesehatan Masyarakat Indonesia. 2017; 5(1): 609–18.
35. Wati NAP. Survei entomologi dan penentuan maya index di daerah endemis DBD di Dusun Krapyak Kulon Desa Panggungharjo Kecamatan Sewon Kabupaten Bantul DIY. Medica Respati. 2015; 10(3): 76–86.
36. Astuti FD, Susanti A. Perbedaan indeks entomologi pemantauan jumantik dewasa dan jumantik anak di Dusun Mejing Kidul, Ambarketawang, Gamping, Sleman, Yogyakarta. Jurnal Vektor Penyakit. 2017; 11(1): 33–42.
37. Anthony MC, Cook ADB, Amul GGH, Sharma A. Health governance and dengue in Southeast Asia. NTS Report. 2015; 2: 12-6.
38. Bhat MA, Krishnamoorthy K, Khan AB. Entomological surveillance of Dengue vectors in Tamil Nadu, India. Journal Entomology Zoology Studies. 2014; 2(6): 158–64.
Recommended Citation
Satoto TT , Pascawati NA , Wibawa T ,
et al.
Entomological Index and Home Environment Contribution to Dengue Hemorrhagic Fever in Mataram City, Indonesia.
Kesmas.
2020;
15(1):
32-39
DOI: 10.21109/kesmas.v15i1.3294
Available at:
https://scholarhub.ui.ac.id/kesmas/vol15/iss1/5
Included in
Biostatistics Commons, Environmental Public Health Commons, Epidemiology Commons, Health Policy Commons, Health Services Research Commons, Nutrition Commons, Occupational Health and Industrial Hygiene Commons, Public Health Education and Promotion Commons, Women's Health Commons