The Potensi Penyakit Tular Vektor Di Kabupaten Pangkajene Dan Kepulauan Propinsi Sulawesi Selatan

  • Riyani Setiyaningsih
  • Riyani Setiyaningsih, Mrs B2P2VRP Salatiga
Keywords: DBD, chikungunya, filariasis, japanese encephalitis

Abstract

Pangkajene and Kepulauan Islands is one of the potential districts of vector-borne diseases because it is found variation species of mosquito previously known as disease vectors. The purpose of this research is to know the potential of transmission of malaria, dengue fever, chikungunya, filarisis and japanese encephalitis in Pangkajene and Kepulauan. Catching of mosquitoes is done in forest, non forest and coastal ecosystems. Methods colection of mosquito and larva refer to WHO Standart . The methods used were human landing collection, animal baited trap net, livestock feed, morning resting. The larva survey was conducted at the mosquito breeding place. Mosquitoes in pathogen detection in the laboratory using PCR. Based on the results of pathogen species inspection of a positive plasmodium are Anopheles vagus in a residential ecosystem near settlement, Anopheles subpictus in forest ecosystems near settlement and non forest remote settlement, Anopheles barbirostris in near and remote forest ecosystems, Anopheles indifinitus in nearby forest ecosystems and non-forest close settlement. Culex tritaeniorhynchus positive japanese encephalitis virus in non-forested residential ecosystem. No positive samples were found for dengue fever virus, chikungunya and filariasis, but found mosquitoes based on previous studies into dengue fever vector, chikungunya, and filariasis. Pangkajene and Kepulauan Islands have the potential to spread infectious disease of malaria, dengue hemorrhagic fever, chikungunya, filariasis and japanese encephalitis.

Author Biography

Riyani Setiyaningsih, Mrs, B2P2VRP Salatiga

Entomologist

References

1. Dinas Kesehatan Pangkajene dan Kepulauan. Profil Kesehatan Kabupaten Pangkajene dan Kepulauan 2016. Dinas Kesehatan kabupaten Pangkajene dan Kepulauan; 2016.
2. P2PTVZ. Situasi Terkini Perkembangan Program P engendalian Malaria di Indonesia Tahun 2016. Jakarta: P2PTVZ; 2016. 1-16 p.
3. Mayasari R, Andriyani D, Sitorus H. Faktor Risiko yang Berhubungan dengan Kejadian Malaria di Indonesia ( Analisis Lanjut Riskesdas 2013 ). Bul Penelit Kesehat. 2016;44(1):13–24.
4. Bugoro H, Hii JL, Butafa C, Iro’Ofa C, Apairamo A, Cooper RD, et al. The Bionomics of The Malaria Vector Anopheles farauti in Northern Guadalcanal, Solomon Islands: Issues for successful vector control. Malar J. 2014;13(1):1–7.
5. Kementerian Kesehatan RI. Keputusan Menteri Kesehatan Republik Indonesia no293/Menkes/SK/IV/2009. Jakarta; 2009. 1-36 p.
6. B2P2VRP. Pedoman Pengumpulan Data Vektor (Nyamuk) di Lapangan. Salatiga; 2017.
7. Nurdin A, Syafruddin D, Wahid I, Noor NN, Sunahara T, Mogi M. Malaria and Anopheles spp in The Villages of Salubarana and Kadaila , Mamuju District , South Sulawesi Province , Indonesia. Med J Indones. 2003;12(4):252–8.
8. WHO. Manual on Pactical Entomology in Malaria. Geneva; 1975. 1-186 p.
9. B2P2VRP. Pedoman Pemeriksaan Deteksi agen Penyakit. Salatiga; 2015.
10. Panthusiri, Rattanarithikul R, Prachong. Illustrated Keys to the Medically Important Mosquitoes of Thailand. Thailand; 1994. 1-66 p.
11. Rattanarithikul R, Harbach RE, Harrison BA, Panthusari P, Coleman RE, Richardson JH. Illustrated Keys to The Mosquitoes of Thailand VI. Tribe Aedini. Thailand; 2010. 1-128 p.
12. Rattanarithikul R, Harbach RE, Harrison BA, Panthusiri P, Jones JW, Coleman RE. Illustrated Keys to the mosquitoes of Thailand II Genera Culex and Lutzia. Thailand; 2005. 1-97 p.
13. Barodji, Sumardi, Suwaryono T, Rahardjo, Mujiono, Priyanto H. Berapa Aspek Bionomik Vektor Malaria dan Filariasis Anopheles subpictus Grassi di Kecamatan Tanjung Bunga, Flores Timur, NTT. Bul Penelit Kesehat. 2000;27(2).
14. Singh RK, Kumar G, Mittal PK, Dhiman RC. Bionomics and Vector Potential of Anopheles subpictus as a Malaria Vector in India : An overview. Int J Mosq Res. 2014;1(1):29–37.
15. Sriwichai P, Samung Y, Sumruayphol S, Kiattibutr K, Kumpitak C, Payakkapol A, et al. Natural Human Plasmodium Infections in Major Anopheles Mosquitoes in Western Thailand. Parasites and Vectors [Internet]. 2016;9(1):1–9. Available from: http://dx.doi.org/10.1186/s13071-016-1295-x
16. Elyazar IRF, Sinka ME, Gething PW, Tarmidzi SN, Surya A, Kusriastuti R, et al. The Distribution and Bionomics of Anopheles malaria Vector Mosquitoes in Indonesia. 1st ed. Vol. 83, Advances in Parasitology. Elsevier Ltd.; 2013. 173-266 p.
17. Keven JB, Reimer L, Katusele M, Koimbu G, Vinit R, Vincent N, et al. Plasticity of Host Selection by Malaria Vectors of Papua New Guinea. Parasit Vectors [Internet]. 2017;10(1):95. Available from: http://parasitesandvectors.biomedcentral.com/articles/10.1186/s13071-017-2038-3
18. Burkot TR, Russell TL, Reimer LJ, Bugoro H, Beebe NW, Cooper RD, et al. Barrier Screens: A Method to Sample Blood-fed and Host-Seeking Exophilic Mosquitoes. Malar J. 2013;12(1):1–9.
19. Ni Wayan Dewi Adnyana. Kejadian Malaria Terkait Lingkungan Pemukiman di Kabupaten Sumba Barat Provinsi Nusa Tenggara Timur. Ekol Kesehat. 2015;14(2):89–95.
20. Mading M, Kazwaini M. Ekologi Anopheles spp. di Kabupaten Lombok Tengah. ASPIRATOR - J Vector-borne Dis Stud. 2014;6(1):13–20.
21. RI DJP& PDK. Vektor Malaria di Indonesia. 2007.
22. Lestari EW, Sukowati S, Soekidjo, Wigati R. Vektor malaria didaerah bukit menoreh, purworejo, jawa tengah. Media Litabng Kesehat XVII no 1 2007. 2007;1:30–5.
23. Ricklin ME, García-Nicolás O, Brechbühl D, Python S, Zumkehr B, Nougairede A, et al. Vector-free Transmission and Persistence of Japanese encephalitis Virus in Pigs. Nat Commun. 2016;7:1–9.
24. Mackenzie-Impoinvil L, Impoinvil DE, Galbraith SE, Dillon RJ, Ranson H, Johnson N, et al. Evaluation of a Temperate Climate Mosquito, Ochlerotatus detritus (=Aedes detritus), as a Potential Vector of Japanese encephalitis Virus. Med Vet Entomol. 2015;29(1):1–9.
25. Zheng Y, Li M, Wang H, Guodong Liang. Japanese encephalitis and Japanese encephalitis Virus in Mainland China. Rev Med Virol. 2012;25(1):1–22.
26. Tian HY, Bi P, Cazelles B, Zhou S, Huang SQ, Yang J, et al. How Environmental Conditions Impact Mosquito Ecology and Japanese encephalitis: An Eco-Epidemiological Approach. Environ Int [Internet]. 2015;79:17–24. Available from: http://dx.doi.org/10.1016/j.envint.2015.03.002
27. Impoinvil DE, Solomon T, Schluter WW, Rayamajhi A, Bichha RP, Shakya G, et al. The Spatial Heterogeneity Between Japanese encephalitis Incidence Distribution and Environmental Variables in Nepal. PLoS One. 2011;6(7).
28. Panggbean YC, Kusumawati LR, Yulfi H. Deteksi Virus Chikungunya pada nyamuk Aedes aegypti di Kabupaten Serdang Bedagai. Maj Kedokt Nusant. 2014;47(1):14–8.
29. Pramestuti N, Widiastuti D, Raharjo J. Transmisi Transovari Virus Dengue pada Nyamuk Aedes aegypti dan Aedes albopictus di Kabupaten Banjarnegara. J Ekol Kesehat. 2013;12(3):187–94.
30. Mosesa LP, Sorisi A, Pijoh VD. Deteksi Transmisi Transovarial Virus Dengue pada Aedes aegypti dengan Teknik Imunositokimia di Kota Manado. J e-Biomedik. 2016;4(1):116–21.
31. Achee NL, Gould F, Perkins TA, Reiner RC, Morrison AC, Ritchie S a., et al. A Critical Assessment of Vector Control for Dengue Prevention. PLoS Negl Trop Dis [Internet]. 2015;9(5):1–19. Available from: http://dx.doi.org/10.1371/journal.pntd.0003655
32. Santoso S, Yahya Y, Salim M. Penentuan Jenis Nyamuk Mansonia sebagai Tersangka Vektor Filariasis Brugia malayi dan Hewan Zoonosis di Kabupaten Muaro Jambi. Media Litbangkes [Internet]. 2014;24 No 4:181–90. Available from: http://ejournal.litbang.depkes.go.id/index.php/MPK/article/view/3671
33. Yahya, Santoso, Salim M, Arisanti M. Deteksi Brugia malayi pada Armigeres subalbatus dan Culex quinquefasciatus yang Diinfeksikan Darah Penderita Filariasis dengan Metode PCR. Aspirator. 2014;6(September):35–42.
34. Santoso, Yahya, Suryaningtyas NH, Rahayu KS. Deteksi Mikrofilaria Brugia malayi pada Nyamuk Mansonia spp dengan Pembedahan dan Metode PCR di Kabupaten Tanjung Jabung Timur. Aspirator. 2015;7(April):29–35.
35. Febrianto B, Maharani, Astri , I P, Widiarti. Faktor Resiko Filariasis di Desa Samborejo, Kecamatan Tirto, Kabupaten Pekalongan Jawa Tengah. Bul Penelit Kesehat. 2008;36(2):48–58.
36. Ughasi J, Bekard HE, Coulibaly M, Adabie-Gomez D, Gyapong J, Appawu M, et al. Mansonia africana and Mansonia uniformis are Vectors in the Transmission of Wuchereria bancrofti lymphatic filariasis in Ghana. Parasites and Vectors. 2012;5(1):1–5.
37. Dhimal M, Gautam I, Kreß A, Müller R, Kuch U. Spatio-Temporal Distribution of Dengue and Lymphatic Filariasis Vectors along an Altitudinal Transect in Central Nepal. PLoS Negl Trop Dis. 2014;8(7):1–13.
Published
2018-12-31
How to Cite
1.
Setiyaningsih R, Setiyaningsih R. The Potensi Penyakit Tular Vektor Di Kabupaten Pangkajene Dan Kepulauan Propinsi Sulawesi Selatan. bpk [Internet]. 31Dec.2018 [cited 2May2024];46(4). Available from: http://ejournal2.litbang.kemkes.go.id/index.php/bpk/article/view/38
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Articles