Vektor Penyakit dan Metode Pengendaliannya

Authors

Siwi Pramatama Mars Wijayanti
Jenderal Soedirman University

Keywords:

vektor penyakit, metode pengendalian, dengue, malaria, nyamuk

Synopsis

Setiap tahun, sebesar 17% dari seluruh penyakit menular merupakan penyakit yang ditularkan oleh vektor, seperti malaria, demam berdarah dengue (DBD), chikungunya, filariasis, penyakit tidur afrika, penyakit chagas, dan demam kuning. Penyakit-penyakit tersebut masih menjadi ancaman bagi penduduk di seluruh dunia. Lebih dari 3,9 miliar orang di lebih dari 128 negara berisiko tertular DBD dengan 96 juta kasus diperkirakan per tahun. Malaria menyebabkan lebih dari 400.000 kematian setiap tahun secara global, kebanyakan dari mereka anak di bawah usia 5 tahun. Penyakit lain, seperti penyakit chagas, leishmaniasis, dan schistosomiasis menginfeksi ratusan juta orang di seluruh dunia. Akibatnya, secara global telah terjadi lebih dari 700.000 kasus yang berujung pada kematian.

Banyak dari penyakit tular vektor ini sebenarnya dapat dicegah melalui tindakan pencegahan dan pengendalian. Oleh karena itu, buku ini sangat tepat dibaca untuk memahami jenis-jenis vektor penyakit, serta berbagai metode pengendalian vektor termasuk pengendalian secara terintegrasi. Buku ini juga dilengkapi dengan hasil-hasil penelitian terkini. Selain itu, buku ini diharapkan dapat memperkaya buku-buku bertema serupa di Indonesia.

Selamat membaca!

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Author Biography

Siwi Pramatama Mars Wijayanti, Jenderal Soedirman University

Penulis lahir di Kebumen, 10 Maret 1982. Penulis menyelesaikan studi S1 di Fakultas Biologi Universitas Jenderal Soedirman, S2 di Ilmu Kedokteran Tropis, Universitas Gadjah Mada dan S3 di Centre for Virus Research (CVR), University of Glasgow, United Kingdom. Saat ini, penulis merupakan dosen peminatan epidemiologi di Jurusan Kesehatan Masyarakat, Fakultas Ilmu-Ilmu Kesehatan, Universitas Jenderal Soedirman, Purwokerto. Penelitiannya berfokus pada penyakit menular terutama penyakit tropis dengan spesifikasi penyakit tular vektor nyamuk (Mosquito-borne diseases). Penulis banyak mendapatkan hibah penelitian dari nasional (DIKTI dan Badan Riset dan Inovasi Nasional/BRIN) dan internasional (Medical Research Council, United Kingdom). Penulis aktif menulis publikasi ilmiah di berbagai jurnal ilmiah baik nasional terakreditasi maupun jurnal internasional bereputasi. Beberapa buku yang pernah ditulisnya, yakni Pengendalian Vektor Epidemiologi dan Dasar-Dasar Epidemiologi. Penulis juga merupakan reviewer beberapa jurnal nasional dan internasional serta chief editor pada Insights in Public Health Journal.

References

Abbasi, I., Trancoso Lopo de Queiroz, A., Kirstein, O. D., Nasereddin, A., Horwitz, B. Z., Hailu, A., Salah, I., Mota, T. F., Fraga, D. B. M., Veras, P. S. T., Poche, D., Poche, R., Yeszhanov, A., Brodskyn, C., Torres-Poche, Z., & Warburg, A. (2018). Plant-feeding phlebotomine sand flies, vectors of leishmaniasis, prefer Cannabis sativa. Proceedings of the National Academy of Sciences of the United States of America, 115(46), 11790–11795. https://doi.org/10.1073/pnas.1810435115

Achee, N. L., Bangs, M. J., Farlow, R., Killeen, G. F., Lindsay, S., Logan, J. G., Moore, S. J., Rowland, M., Sweeney, K., Torr, S. J., Zwiebel, L. J., & Grieco, J. P. (2012). Spatial repellents: from discovery and development to evidence-based validation. Malaria journal, 11, 164(1). https://doi.org/10.1186/1475-2875-11-164.

Amusca. (2024t.t.). Musca domestica (house fly). Amusca. Diakses pada 16 Febuari, 2023, dari https://amusca.com/CMS/Musca_Domestica_housefly_/show.do?ctx=7817,4375737

Atkinson, P.W. (2010). Vector Biology, Ecology, and Control. Springer.

Ault S. K. (1994). Environmental management: a re-emerging vector control strategy. The American journal of tropical medicine and hygiene, 50(6 Suppl), 35–49. https://doi.org/10.4269/ajtmh.1994.50.35

Bellinato, D. F., Viana-Medeiros, P. F., Araújo, S. C., Martins, A. J., Lima, J. B., & Valle, D. (2016). Resistance Status to the Insecticides Temephos, Deltamethrin, and Diflubenzuron in Brazilian Aedes aegypti Populations. BioMed research international, 2016, 1–12.8603263. https://doi.org/10.1155/2016/8603263

Brainly. (20242020, 19 Desember). Siklus Hidup Kecoa. Brainly. Diakses pada 18 Juni, 2023, dari https://brainly.co.id/tugas/37219291

Buchori, D., Mawan, A., Nurhayati, I., Aryati, A., Kusnanto, H., & Hadi, U. K. (2022). Risk Assessment on the Release of Wolbachia-Infected Aedes aegypti in Yogyakarta, Indonesia. Insects, 13(10), 924. https://doi.org/10.3390/insects13100924

CDC. (2024a). Life Cycle of Aedes aegypti and Ae. albopictus Mosquitoes. CDC. Diakses pada 23 Januari, 2024, dari https://www.cdc.gov/mosquitoes/about/life-cycles/aedes.html

CDC. (2024b). Mosquito Life Cycle. CDC. Diakses pada 12 Febuari, 2024, dari https://www.cdc.gov/dengue/resources/factsheets/mosquitolifecyclefinal.pdf

Chareonviriyaphap, T., Bangs, M. J., Suwonkerd, W., Kongmee, M., Corbel, V., & Ngoen-Klan, R. (2013). Review of insecticide resistance and behavioral avoidance of vectors of human diseases in Thailand. Parasites & Vectors, 6, 280(1). https://doi.org/10.1186/1756-3305-6-280

Chartier, G. (2024t.t.). Toxorhynchites splendens. Gee Nature. Diakses pada 6 Agustus, 2023, dari https://geenature.com/observations/66910321

Correa, C.C., & Ballard J.W.O. (2016). Wolbachia Associations with Insects: Winning or Losing Against a Master Manipulator. Frontiers in Ecology and Evolution, 3(153). DOI: 10.3389/fevo.2015.00153.

Davis, K. (2014t..t.). Spatial Repellents. Spatial Repellents. Diakses pada 3 November, 2023, dari https://spatialrepellents.nd.edu/about/spatial-repellents/

de Lima Cavalcanti, T. Y. V., Pereira, M. R., de Paula, S. O., & Franca, R. F. O. (2022). A Review on Chikungunya Virus Epidemiology, Pathogenesis, and Current Vaccine Development. Viruses, 14(5), 969. https://doi.org/10.3390/v14050969.

De Lourdes Da Graça Macoris, M., Andrighetti, M. T. M., Wanderley, D. M. V., & Ribolla, P. E. M. (2014). Impact of insecticide resistance on the field control of Aedes aegypti in the State of Sao Paulo. Revista Da Sociedade Brasileira De Medicina Tropical, 47(5), 573–578. https://doi.org/10.1590/0037-8682-0141-2014

Dorigatti, I., McCormack, C., Nedjati-Gilani, G., & Ferguson, N. M. (2018). Using Wolbachia for Dengue Control: Insights from Modelling. Trends in pParasitology, 34(2), 102–113. https://doi.org/10.1016/j.pt.2017.11.002.

Dusfour, I., Thalmensy, V., Gaborit, P., Issaly, J., Carinci, R., & Girod, R. (2011). Multiple insecticide resistance in Aedes aegypti (Diptera: Culicidae) populations compromises the effectiveness of dengue vector control in French Guiana. Memorias do Instituto Oswaldo Cruz, 106(3), 346–352. https://doi.org/10.1590/s0074-02762011000300015

Elmer, N. L. (2019, January 24). CAMPUS BIODIVERSITY: Western Mosquitofish. The University of Texas at Austin. Diakses pada 13 Maret, 2023, dari https://biodiversity.utexas.edu/news/entry/campus-biodiversity-western-mosquitofish University of Texas. (2019). Western Mosquitofish. https://biodiversity.utexas.edu/news/entry/campus-biodiversity-western-mosquitofish

El-Sherbini, G. T. (2011). The role of insects in mechanical transmission of human parasites. Iranian Red Crescent mMedical jJournal, 13(9), 678–679. https://doi.org/10.5812/kowsar.20741804.22538.

Faheem, M. S. (2019, Desember 14). Male and female wild guppies (Poecilia reticulata). The Dynamic Nature. Diakses pada 6 Juli, 2023, dari https://www.thedynamicnature.com/ornamental-aquarium-fishes/wild-guppies-present-status/male-and-female-wild-guppies-poecilia-reticulata/

Fakoorziba, M. R., Eghbal, F., Hassanzadeh, J., & Moemenbellah-Fard, M. D. (2010). Cockroaches (Periplaneta americana and Blattella germanica) as potential vectors of the pathogenic bacteria found in nosocomial infections. Annals of tropical medicine and parasitology, 104(6), 521–528. https://doi.org/10.1179/136485910X12786389891326 .

Ffrench-Constant, R. H. (2013). The molecular genetics of insecticide resistance. Genetics, 194(4), 807–815. https://doi.org/10.1534/genetics.112.141895.

Garjito, T. A., Prihatin, M. T., Susanti, L., Prastowo, D., Sa’adah, S. R., Taviv, Y., Satoto, T. B. T., Waluyo, J., Manguin, S., & Frutos, R. (2019). First evidence of the presence of genotype-1 of Japanese encephalitis virus in Culex gelidus in Indonesia. Parasites & vVectors, 12(1), 19. https://doi.org/10.1186/s13071-018-3285-7.

Garjito, T. A., Widiarti, Anggraeni, Y. M., Alfiah, S., Tunggul Satoto, T. B., Farchanny, A., Samaan, G., Afelt, A., Manguin, S., Frutos, R., & Aditama, T. Y. (2018). Japanese encephalitis in Indonesia: An update on epidemiology and transmission ecology. Acta tropica, 187, 240–247. https://doi.org/10.1016/j.actatropica.2018.08.017.

Golstein, C., Boireau, P., Pagès J.C. (2019). Benefits and limitations of emerging techniques for mosquito vector control. Comptes Rendus Biologies, 342(7–8), 270–272.Comptes Rendus Biologies.;342(7):270-2. DOI: https://doi.org/10.1016/j.crvi.2019.09.024.

Grübel, P., Hoffman, J. S., Chong, F. K., Burstein, N. A., Mepani, C., & Cave, D. R. (1997). Vector potential of houseflies (Musca domestica) for Helicobacter pylori. Journal of clinical microbiology, 35(6), 1300–1303. https://doi.org/10.1128/jcm.35.6.1300-1303.

Ickowicz, A., Foster, S.D., Hosack, G.R., Hayes, K.R. (2021). Predicting the spread and persistence of genetically modified dominant sterile male mosquitoes. Parasites & Vectors 14, 480. https://doi.org/10.1186/s13071-021-04982-1

Jarman, W. M., & Ballschmiter, K. (2012). From coal to DDT: the history of the development of the pesticide DDT from synthetic dyes till Silent Spring. Endeavour, 36(4), 131–142. https://doi.org/10.1016/j.endeavour.2012.10.003

Jones, C. M., Machin, C., Mohammed, K., Majambere, S., Ali, A. S., Khatib, B. O., McHa, J., Ranson, H., & Kelly-Hope, L. A. (2012). Insecticide resistance in Culex quinquefasciatus from Zanzibar: implications for vector control programmes. Parasites & Vvectors, 5, 78. https://doi.org/10.1186/1756-3305-5-78

Kambhampati, S. (2008). Cockroaches: Ecology, Behavior, and Natural History. William J. Bell, Louis M. Roth, and Christine A. Nalepa.Kazanidou, A., Nikou, D., Grigoriou, M., Vontas, J., & Skavdis, G. (2009). Short report: a multiplex PCR assay for simultaneous genotyping of kdr and ace-1 loci in Anopheles gambiae. The American journal of tropical medicine and hygiene, 80(2), 236–238.

Kemenkes RI. (2012). Pedoman Penggunaan Insektisida (Pestisida) dalam Pengendalian Vektor. Kemenkes RI. Diakses pada 26 November, 2023, dari https://repository.kemkes.go.id/book/485

Kemenkes RI. (20242023, 23 Agustus). Infografis Kasus DBD di Indonesia. Kemenkes RI. Diakses pada 26 November, 2023, dari https://p2pm.kemkes.go.id/publikasi/infografis/info-dbd-minggu-ke-33-tahun-2023

Khairiyati, L., Marlinae, L., Waskito, A., Nur Rahmat, A., Ridha, M. R., & Andiarsa, D. Khairiyati, Laily; Marlinae, Lenie; Waskito, Agung; Nur Rahmat, Anugerah; Ridha, M. Rasyid; Andiarsa, Dicky. (2021). Buku Ajar Pengendalian Vektor dan Binatang Pengganggu. CV Mine, Yogyakarta.

Khamesipour, F., Lankarani, K. B., Honarvar, B., & Kwenti, T. E. (2018). A systematic review of human pathogens carried by the housefly (Musca domestica L.). BMC Public Health, 18(1), 1049. https://doi.org/10.1186/s12889-018-5934-3

Khatiwada, J. R., Ghimire, S., Khatiwada, S. P., Paudel, B., Bischof, R., Jiang, J., & Haugaasen, T. (2016). Frogs as potential biological control agents in the rice fields of Chitwan, Nepal. Agriculture, Ecosystems & Environment, 230, 307–314. https://doi.org/10.1016/j.agee.2016.06.025

Khatiwada, Janak & Ghimire, Subarna & Paudel, Shanta & Paudel, Bikash & Bischof, Richard & Jiang, Jianping & Haugaasen, Torbjorn. (2016). Frogs as potential biological control agents in the rice fields of Chitwan, Nepal. Agriculture Ecosystems & Environment. 230. 307-314. 10.1016/j.agee.2016.06.025.

LaDeau, S. L., Allan, B. F., Leisnham, P. T., & Levy, M. Z. (2015). The ecological foundations of transmission potential and vector-borne disease in urban landscapes. Functional Ecology, 29(7), 889–901Functional ecology, 29, 889–901. https://doi.org/10.1111/1365-2435.12487

Lee, S. A., Economou, T., de Castro Catao, R., Barcellos, C., & Lowe, R. (2021). The impact of climate suitability, urbanisation, and connectivity on the expansion of dengue in 21st century Brazil. PLoS neglected tropical diseases, 15(12), e0009773. https://doi.org/10.1371/journal.pntd.0009773.

Lee, S., Economou, T., De Castro Catao, R., Barcellos, C., & Lowe, R. (2021). The impact of climate suitability, urbanisation, and connectivity on the expansion of dengue in 21st century Brazil. PLOS Neglected Tropical Diseases, 15(12), e0009773. https://doi.org/10.1371/journal.pntd.0009773

Macoris, M. deL., Andrighetti, M. T., Wanderley, D. M., & Ribolla, P. E. (2014). Impact of insecticide resistance on the field control of Aedes aegypti in the State of Sao Paulo. Revista da Sociedade Brasileira de Medicina Tropical, 47(5), 573–578. https://doi.org/10.1590/0037-8682-0141-2014

Makumi, J. N., Stevenson, P., & Green, C. H. (2000). Control of Glossina longipennis (Diptera: Glossinidae) by insecticide-treated targets at Galana ranch, Kenya, and confirmation of the role of G. longipennis as a vector of cattle trypanosomiasis. Bulletin of Eentomological Research, 90(5), 397–406. https://doi.org/10.1017/s0007485300000535

Marcombe, S., Blanc-Mathieu, R., Pocquet, N., Riaz, M., Poupardin, R., Selior, S., Darriet, F., Reynaud, S., Yebakima, A., Corbel, V., David, J., & Chandre, F. (2012). Insecticide Resistance in the Dengue Vector Aedes aegypti from Martinique: Distribution, Mechanisms and Relations with Environmental Factors. PLOS ONE, 7(2), e30989. https://doi.org/10.1371/journal.pone.0030989

Marcombe, S., Mathieu, R. B., Pocquet, N., Riaz, M. A., Poupardin, R., Selior, S., Darriet, F., Reynaud, S., Yébakima, A., Corbel, V., David, J. P., & Chandre, F. (2012). Insecticide resistance in the dengue vector Aedes aegypti from Martinique: distribution, mechanisms and relations with environmental factors. PloS one, 7(2), e30989. https://doi.org/10.1371/journal.pone.0030989

Marquardt, W. (2004). Biology of Disease Vectors. 2nd edition. Elsevier

Ministry of Agriculture FaFBC. (2022, Februari). Pesticide Toxicity and Hazard. Diakses pada Tanggal Desember, 2022,. Available from: dari https://www2.gov.bc.ca/assets/gov/farming-natural-resources-and-industry/agriculture-and-seafood/animal-and-crops/plant-health/pesticide-toxicity-hazard.pdf

Ministry of Health and Population. (2020). National guidelines on integrated vector management 2020. Government of Nepal. Available from:. Diakses pada 10 Desember, 2022, dari http://edcd.gov.np/uploads/resource/5efc4fb3564cf.pdf.

Morrison, A., Reiner, R., Elson, W., Astete, H., Guevara, C., Aguila, C., Bazan, I., Siles, C., Barrera, P., Kawiecki, A., Barker, C., Vasquez, G., Escobedo, K., Flores-Mendoza, C., Huaman, A., Leguia, M., Silva, M., Jenkins, S., Campbell, W., Achee, N. (2021). Efficacy of a Spatial Repellent for Control of Aedes -Borne Virus Transmission: A Cluster Randomized Trial in Iquitos, Peru. medRxiv (Cold Spring Harbor Laboratory). https://doi.org/10.1101/2021.03.03.2125214810.1101/2021.03.03.21252148.

Muare, A. A. (2022, 27 Juli). Raket Nyamuk Elektrik, Pembunuh Berdarah Dingin & Musuh Bebuyutan Bagi Nyamuk. Digstrasi. Diakses pada 24 Juli, 2023, dari https://digstraksi.com/raket-nyamuk-elektrik-pembunuh-berdarah-dingin-musuh-bebuyutan-bagi-nyamuk/

Nam, V. S., Yen, N. T., Holynska, M., Reid, J. W., & Kay, B. H. (2000). National progress in dengue vector control in Vietnam: survey for Mesocyclops (Kopepoda), Micronecta (Corixidae), and fish as biological control agents.. American Journal of Tropical Medicine and Hygiene, 62(1), 5–10. https://doi.org/10.4269/ajtmh.2000.62.5The American journal of tropical medicine and hygiene Am J Trop Med Hyg Am. J. Trop. Med. Hyg., 62(1), 5-10. Retrieved Oct 30, 2023, from https://doi.org/10.4269/ajtmh.2000.62.5

Ng’ang’a, P. N., Aduogo, P., & Mutero, C. M. (2021). Strengthening community and stakeholder participation in the implementation of integrated vector management for malaria control in western Kenya: a case study. Malaria Journal, 20(1). Malaria journal, 20(1), 155. https://doi.org/10.1186/s12936-021-03692-4.

Niang, E. H. A., Bassene, H., Fenollar, F., & Mediannikov, O. (2018). Biological Control of Mosquito-Borne Diseases: The Potential of Wolbachia-Based Interventions in an IVM Framework. Journal of Tropical Medicine, 2018, 1–15. https://doi.org/10.1155/2018/1470459Journal of tropical medicine, 2018, 1470459. https://doi.org/10.1155/2018/1470459.

Ogunlade, S. T., Meehan, M. T., Adekunle, A. I., Rojas, D. P., Adegboye, O. A., & McBryde, E. S. (2021). A Review: Aedes-Borne Arboviral Infections, Controls and Wolbachia-Based Strategies. Vaccines, 9(1), 32. https://doi.org/10.3390/vaccines9010032

Owusu, H. F., Jancaryova, D., Malone, D., & Muller, P. (2015). Comparability between insecticide resistance bioassays for mosquito vectors: time to review current methodology?. Parasites & vectors, 8, 357. https://doi.org/10.1186/s13071-015-0971-6 .

Peraturan Menteri Kesehatan Republik Indonesia Nomor 374/Menkes/PER/III/2010 tentang Pengendalian Vektor (2010). https://www.scribd.com/document/390753908/02-28-PMK-No-374-TAHUN-2010-TENTANG-PENGENDALIAN-VEKTOR-pdf

Petani Rasional [@Petani NRasional]. (20242017, 07 Desember). Pestisida dbagi mnjadi 5 kelas … [Tweet]. Twitter. https://twitter.com/PetaniRasional/status/1309460588100161537/photo/1

Plourde, B. T., Burgess, T. L., Eskew, E. A., Roth, T. M., Stephenson, N., & Foley, J. E. (2017). Are disease reservoirs special? Taxonomic and life history characteristics. PloS one, 12(7), e0180716. https://doi.org/10.1371/journal.pone.0180716

Powell, J.R. (2022). Modifying mosquitoes to suppress disease transmission: Is the long wait over? Genetics.;221(3). DOI: 10.1093/genetics/iyac072.

Prasetyowati, H., Astuti E.P.’, Ruliansyah, A. (2016). Penggunaan Insektisida Rumah Tangga dalam Pengendalian Populasi Aedes Aegypti di Daerah endemis DBD di Jakarta Timur. ASPIRATOR-Journal of Vector-borne Disease Studies, 8(1), 29-36.ASPIRATOR-Journal of Vector-borne Disease Studies 8 (1), 29-36.

Raghavendra, K., Barik, T. K., Reddy, B. P., Sharma, P., & Dash, A. P. (2011). Malaria vector control: from past to future. Parasitology research, 108(4), 757–779. https://doi.org/10.1007/s00436-010-2232-0

Romoser, W. S. (2000). Introduction to Arthropods: Systematics, Behavior and Ecology. In Springer eBooks (pp. 53–98). https://doi.org/10.1007/978-94-011-6472-6_3Romoser, W.S. (2000). Introduction to Arthropods: Systematics, Behavior and Ecology. In: Eldridge, B.F., Edman, J.D. (eds) Medical Entomology. Springer, Dordrecht. https://doi.org/10.1007/978-94-011-6472-6_3

Sene, N. M., Mavridis, K., Ndiaye, E. H., Diagne, C. T., Gaye, A., Ngom, E. H. M., Ba, Y., Diallo, D., Vontas, J., Dia, I., & Diallo, M. (2021). Insecticide resistance status and mechanisms in Aedes aegypti populations from Senegal. PLoS neglected tropical diseases, 15(5), e0009393. https://doi.org/10.1371/journal.pntd.0009393.

Shafique, M., Lopes, S., Doum, D., Keo, V., Sokha, L., Sam, B., Vibol, C., Alexander, N., Bradley, J., Liverani, M., Hii, J., Rithea, L., Aryal, S., & Hustedt, J. (2019). Implementation of gupi fish (Poecilia reticulata), and a novel larvicide (Pyriproxyfen) product (Sumilarv 2MR) for dengue control in Cambodia: A qualitative study of acceptability, sustainability and community engagement. PLoS neglected tropical diseases, 13(11), e0007907. https://doi.org/10.1371/journal.pntd.0007907

Stone, C. M., Lindsay, S. W., & Chitnis, N. (2014). How effective is integrated vector management against malaria and lymphatic filariasis where the diseases are transmitted by the same vector?. PLoS neglected tropical diseases, 8(12), e3393. https://doi.org/10.1371/journal.pntd.0003393

Sumarmo. (1987). Dengue haemorrhagic fever in Indonesia. The Southeast Asian journal of tropical medicine and public health, 18(3), 269–274.

Syafruddin, D., Asih, P. B. S., Rozi, I. E., Permana, D. H., Nur Hidayati, A. P., Syahrani, L., Zubaidah, S., Sidik, D., Bangs, M. J., Bogh, C., Liu, F., Eugenio, E. C., Hendrickson, J., Burton, T., Baird, J. K., Collins, F., Grieco, J. P., Lobo, N. F., & Achee, N. L. (2020). Efficacy of a Spatial Repellent for Control of Malaria in Indonesia: A Cluster-Randomized Controlled Trial. The American journal of tropical medicine and hygiene, 103(1), 344–358. https://doi.org/10.4269/ajtmh.19-0554.

Szalanski, A. L., Owens, C. B., McKay, T., & Steelman, C. D. (2004). Detection of Campylobacter and Escherichia coli O157: H7 from filth flies by polymerase chain reaction. Medical and Veterinary Entomology, 18(3), 241-246.Szalanski, A.L., Owens, C.B., McKay, T., Steelman, C.D. (2004). Detection of Campylobacter and Escherichia coli O157:H7 from filth flies by polymerase chain reaction. Med Vet Entomol;18:241–246.

Tatfeng, Y. M., Usuanlele, M. U., Orukpe, A., Digban, A. K., Okodua, M., Oviasogie, F., & Turay, A. A. (2005). Mechanical transmission of pathogenic organisms: the role of cockroaches. Journal of vector borne diseases, 42(4), 129.

Thomas M. B. (2018). Biological control of human disease vectors: a perspective on challenges and opportunities. BioControl (Dordrecht, Netherlands), 63(1), 61–69. https://doi.org/10.1007/s10526-017-9815-y

Tjaden, N. B., Thomas, S. M., Fischer, D., & Beierkuhnlein, C. (2013). Extrinsic Incubation Period of Dengue: Knowledge, Backlog, and Applications of Temperature Dependence. PLoS neglected tropical diseases, 7(6), e2207. https://doi.org/10.1371/journal.pntd.0002207

Universitas Negeri Lampung. (2024t.t.). Struktur morfologi nyamuk Anopheles sp. Betina. Universitas Negeri Lampung. Diakses pada 20 Oktober, 2023,dari https://digilib.unila.ac.id/13599/2/bab%202.pdf

University of MelbourneRoss, P.. (2018, April 132018). How we’re using naturally occurring bacteria to stop mosquitoes from spreading disease. University of Melbourne. Diakses pada 13 Maret, 2023, dari https://blogs.unimelb.edu.au/pearg/2018/04/13/wolbachia-bacteria-in-action-how-were-using-naturally-occurring-bacteria-to-stop-mosquitoes-from-spreading-disease/

Utarini, A., Indriani, C., Ahmad, R. A., Tantowijoyo, W., Arguni, E., Ansari, M. R., Supriyati, E., Wardana, D. S., Meitika, Y., Ernesia, I., Nurhayati, I., Prabowo, E., Andari, B., Green, B. R., Hodgson, L., Cutcher, Z., Rancès, E., Ryan, P. A., O’Neill, S. L., Dufault, S. M., … AWED Study Group (2021). Efficacy of Wolbachia-Infected Mosquito Deployments for the Control of Dengue. The New England journal of medicine, 384(23), 2177–2186. https://doi.org/10.1056/NEJMoa2030243.

van den Berg H. (2009). Global status of DDT and its alternatives for use in vector control to prevent disease. Environmental health perspectives, 117(11), 1656–1663. https://doi.org/10.1289/ehp.0900785 15.

van den Berg, H., da Silva Bezerra, H. S., Al-Eryani, S., Chanda, E., Nagpal, B. N., Knox, T. B., Velayudhan, R., & Yadav, R. S. (2021). Recent trends in global insecticide use for disease vector control and potential implications for resistance management. Scientific reports, 11(1), 23867. https://doi.org/10.1038/s41598-021-03367-9

Wahid, I., Ishak, H., Hafid, A., Fajri, M., Sidjal, S., Nurdin, A., Azikin, N. T., Sudirman, R., Hasan, H., Yusuf, M., Bachtiar, I., Hawley, W. A., Rosenberg, R., & Lobo, N. F. (2019). Integrated vector management with additional pre-transmission season thermal fogging is associated with a reduction in dengue incidence in Makassar, Indonesia: Results of an 8-year observational study. PLoS neglected tropical diseases, 13(8), e0007606. https://doi.org/10.1371/journal.pntd.0007606

Warbanski, M. L., Marques, P., Frauendorf, T. C., Phillip, D. A. T., & El-Sabaawi, R. W. (2017). Implications of gupi (Poecilia reticulata) life-history phenotype for mosquito control. Ecology and evolution, 7(10), 3324–3334. https://doi.org/10.1002/ece3.2666

WHO (2016). Monitoring and managing insecticide resistance in Aedes mosquito populations. Geneva: WHO. Diakses pada 11 Juni, 2023, dari Available from: http://apps.who.int/iris/bitstream/10665/204588/2/WHO_ZIKV_VC_16.1_eng.pdf.

WHO (2020a). Vector Borne Diseases. WHO. Diakses pada 8 Desember, 2020, dari https://www.who.int/news-room/fact-sheets/detail/vector-borne-diseases.

WHO. (1998). Techniques to detect insecticide resistance mechanisms (Field and laboratory manual). WHO. Diakses pada 03 Agustus, 2023, Available from: https://www.who.int/publications/i/item/who-cds-cpc-mal-98.6.

WHO. (2020b). A Global Review of Implementation of Integrated Vector Management. WHO. Diakses pada 10 Agustus, 2023, dari Available from: file:///D:/BUKU%20BRIN/ebook%2011_Global-review-implementation-of-IVM%20penting.pdf.

WHO. (2022). Standard operating procedure for testing insecticide susceptibility of adult mosquitoes in WHO tube tests. WHO. Diakses pada Tanggal Bulan, Tahun, dari (2022). https://iris.who.int/bitstream/handle/10665/352316/9789240043831-eng.pdf?sequence=1

WHO. (2023). Cockroaches: Unhygienic scavengers in human settlements. WHO. Diakses pada 02 November, 2023, dari Available from: https://www.who.int/water_sanitation_health/resources/vector288to301.pdf.

WHO. (2012). Handbook for integrated vector management. WHO. Diakses pada 11 Maret, 2023, dari https://apps.who.int/iris/handle/10665/44768

Wilcox, B. A., Echaubard, P., de Garine-Wichatitsky, M., & Ramirez, B. (2019). Vector-borne disease and climate change adaptation in African dryland social-ecological systems. Infectious diseases of poverty, 8(1), 36. https://doi.org/10.1186/s40249-019-0539-3

Wipfler, B., Triesch, F., Evangelista, D., & Weihmann, T. (2022). Morphological, functional, and phylogenetic aspects of the head capsule of the cockroach Ergaula capucina (Insecta/Blattodea). PeerJ, 10, e12470. https://doi.org/10.7717/peerj.12470

Yadouleton, A., Badirou, K., Agbanrin, R., Jöst, H., Attolou, R., Srinivasan, R., Padonou, G., & Akogbeto, M. (2015). Insecticide resistance status in Culex quinquefasciatus in Benin. Parasites & vectors, 8, 17. https://doi.org/10.1186/s13071-015-0638-3

Yanola, J., Chamnanya, S., Lumjuan, N., & Somboon, P. (2015). Insecticides resistance in the Culex quinquefasciatus populations from northern Thailand and possible resistance mechanisms. Acta tropica, 149, 232–238. https://doi.org/10.1016/j.actatropica.2015.06.011 .

Yen, P.S., & Failloux, A.B. (2020). A Review: Wolbachia-Based Population Replacement for Mosquito Control Shares Common Points with Genetically Modified Control Approaches. Pathogens (Basel, Switzerland), 9(5), 404. https://doi.org/10.3390/pathogens9050404.

Zabalou, S., Riegler, M., Theodorakopoulou, M., Stauffer, C., Savakis, C., & Bourtzis, K. (2004). Wolbachia-induced cytoplasmic incompatibility as a means for insect pest population control. Proceedings of the National Academy of Sciences of the United States of America, 101(42), 15042–15045. https://doi.org/10.1073/pnas.0403853101.

Zahraei-Ramazani, A. R., Saghafipour, A., & Vatandoost, H. (2018). Control of American Cockroach (Periplaneta americana) in Municipal Sewage Disposal System, Central Iran. Journal of arthropod-borne diseases, 12(2), 172–179.

Zhu, K. Y. (2006). Insecticide toxicity. In Kluwer Academic Publishers eBooks (pp. 1187–1188). https://doi.org/10.1007/0-306-48380-7_2190Zhu, K.Y. (2004). Insecticide Toxicity. In: Encyclopedia of Entomology. Springer, Dordrecht. https://doi.org/10.1007/0-306-48380-7_2190 p. 1187-8.

Zuharah, W. F., Fadzly, N., Yusof, N. A., & Dieng, H. (2015). Risky behaviors: effects of Toxorhynchites splendens (Diptera: Culicidae) predator on the behavior of three mosquito species. Journal of insect science (Online), 15(1), 128. https://doi.org/10.1093/jisesa/iev115

Zulfa, R., Lo, W. C., Cheng, P. C., Martini, M., & Chuang, T. W. (2022). Updating the Insecticide Resistance Status of Aedes aegypti and Aedes albopictus in Asia: A Systematic Review and Meta-Analysis. Tropical medicine and infectious disease, 7(10), 306. https://doi.org/10.3390/tropicalmed7100306

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