Detection of Dengue Virus in Female Aedes aegypti Mosquito using Reverse Transcription-polymerase Chain Reaction (RT-PCR) in West Jakarta
https://doi.org/10.33860/jik.v17i4.3471
Keywords:
Aedes aegypti, Dengue, RT-PCRAbstract
Dengue hemorrhagic fever (DHF) is an acute disease caused by dengue virus infection which is a clinical manifestation of bleeding, transmitted through the bite of a female mosquito Aedes aegypti. The incidence of dengue fever is still a health problem in developing countries, including Indonesia. There are several ways to detect the presence of dengue virus, namely by Reverse Transcription-Polymerase Chain Reaction (RT-PCR). The purpose of this study was to detect Dengue virus in adult female Aedes aegypti mosquitoes using RT-PCR. The type of research is a descriptive survey to determine the number of dengue virus transmission in Aedes aegypti mosquitoes in Kembangan Village, West Jakarta, especially in RW02 RT 1-10. There are 62 Aedes aegypties found in 100 houses that were selected by simple random sampling. Totally 23 female Aedes aegypties were identified from a total of 62. Moreover, the result showed that all Aedes aegypti mosquitoes caught in were negative for dengue virus. There are several reasons for the limitation of RT-PCR that caused zero findings, including potential false negatives, sensitivity, low quality control measures. Moreover, the small sample size and seasonal reason also played a role in impacting the zero result.
References
Qi R, Yu H, Yu XJ. Chapter 121 - Hemorrhagic fever viruses. In: Tang YW, Hindiyeh MY, Liu D, Sails A, Spearman P, Zhang JR, editors. Molecular Medical Microbiology (Third Edition) [Internet]. Academic Press; 2024. p.2479–93. Available from: https://www.sciencedirect.com/science/article/pii/B9780128186190000654
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 Nov 1;21(11):1632–50.
Li HH, Su MP, Wu SC, Tsou HH, Chang MC, Cheng YC, et al. Mechanical transmission of dengue virus by Aedes aegypti may influence disease transmission dynamics during outbreaks. EBioMedicine. 2023 Aug;94:104723.
Golding MAJ, Noble SAA, Khouri NK, Layne-Yarde RNA, Ali I, Sandiford SL. Natural vertical transmission of dengue virus in Latin America and the Caribbean: highlighting its detection limitations and potential significance. Parasit Vectors. 2023 Nov 28;16(1):442.
Balingit JC, Carvajal TM, Saito-Obata M, Gamboa M, Nicolasora AD, Sy AK, et al. Surveillance of Dengue Virus in Individual Aedes Aegypti Mosquitoes Collected Concurrently With Suspected Human Cases in Tarlac City, Philippines. Parasit Vectors. 2020.
Gaber M, Ahmad AA, El-Kady AM, Tolba MEM, Suzuki Y, Mohammed S, et al. Dengue Fever as a Reemerging Disease in Upper Egypt: Diagnosis, Vector Surveillance and Genetic Diversity Using RT-LAMP Assay. PLoS One. 2022.
Rahayu A, Saraswati U, Supriyati E, Kumalawati DA, Hermantara R, Rovik A, et al. Prevalence and Distribution of Dengue Virus in Aedes Aegypti in Yogyakarta City Before Deployment of Wolbachia Infected Aedes Aegypti. Int J Environ Res Public Health. 2019.
Kurniawan W, Suwandono A, Widjanarko B, Suwondo A, Artama WT, Shaluhiyah Z, et al. The Effectiveness of the One Health SMART Approach on Dengue Vector Control in Majalengka, Indonesia. J Health Res. 2020.
Tomia A, Tuharea R. Dengue Virus Detection Using Rt-PCR Method in Ternate City, North Maluku, Indonesia. International Journal of Health and Pharmaceutical (IJHP); 2022: 2(4), 622-626.
Heng WL, Chia KY, Nashwaan I, Chee HY, Lim CSY. Dengue Virus Surveillance: Circulation of DENV-1, DENV-2, DENV-3 and DENV-4 in Mosquitoes Around Taman Connaught, Cheras. Asia Pac J Mol Biol Biotechnol. 2019.
Annisa DR, Kusmintarsih ES, Ambarningrum TB. Reverse Transcriptase PCR (Rt-Pcr) for Detection of Dengue and Chikungunya Virus of Mosquito Aedes Aegypti in Sokaraja. Bioeksakta Jurnal Ilmiah Biologi Unsoed. 2020.
Shete AM, Yadav PD, Gokhale MD, Jain R, Pardeshi P, Majumdar T, et al. Proactive Preparedness for Cat Que Virus: An Orthobunyavirus Existing in India. Indian J Med Res. 2020.
PKC Kembangan. Buku Register Demam Berdarah Dengue. 2022.
Pramestuti N, Widiastuti D, Raharjo J. Transmisi Trans-Ovari Virus Dengue Pada Nyamuk Aedes Aegypti Dan Aedes Albopictus Di Kabupaten Banjarnegara. 2013.
Ngingo BL, Mboera LEG, Chengula AA, Machelle I, Makange M, Msolla MM,….& Misinzo, G. Aedes Aegypti Abundance, Larval Indices and Risk for Dengue Virus Transmission in Kinondoni District, Tanzania. Trop Med Health. 2022; 50(1), 1-8.
Muller, DA, Depelsenaire, AC, Young. (2017). Clinical and laboratory diagnosis of dengue virus infection. The Journal of infectious diseases, 215(suppl_2), S89-S95.
Tatontos EY, Fihiruddin F, Inayati N. Accurate Detection of Viral Serotype Dengue Hemorrhagic Fever Through Aedes Sp Mosquitoes Using Reverse Transcriptase Polymerase Chain Reaction (Rt-Pcr). Jurnal Riset Kesehatan. 2021;
Danis-Lozano R, Díaz-González EE, Malo-García IR, Rodriguez MH, Ramos-Castañeda J, Juárez-Palma L, et al. Vertical Transmission of Dengue Virus in Aedes Aegypti and Its Role in the Epidemiological Persistence of Dengue in Central and Southern Mexico. Tropical Medicine & International Health. 2019;
Gwee SXW, John ALS, Gray GC, Pang J. Animals as Potential Reservoirs for Dengue Transmission: A Systematic Review. One Health. 2021;
Messina JP, Brady OJ, Golding N, Kraemer MUG, Wint W, Ray SE, et al. The Current and Future Global Distribution and Population at Risk of Dengue. Nat Microbiol. 2019;
Pliego Pliego E, Velázquez-Castro J, Fraguela Collar A. Seasonality on the life cycle of Aedes aegypti mosquito and its statistical relation with dengue outbreaks. Appl Math Model. 2017 Oct;50:484–96.
Marinho RA, Beserra EB, Bezerra-Gusmão MA, Porto V de S, Olinda RA, dos Santos CAC. Effects of temperature on the life cycle, expansion, and dispersion of Aedes aegypti (Diptera: Culicidae) in three cities in Paraiba, Brazil. Journal of Vector Ecology. 2016 Jun;41(1):1–10.
Evans M V., Drake JM, Jones L, Murdock CC. Assessing temperature‐dependent competition between two invasive mosquito species. Ecological Applications. 2021 Jul 27;31(5).
Leandro AS, de Castro WAC, Lopes RD, Delai RM, Villela DAM, de-Freitas RM. Citywide Integrated Aedes aegypti Mosquito Surveillance as Early Warning System for Arbovirus Transmission, Brazil. Emerg Infect Dis. 2022 Apr;28(4):701–6.
Nakase T, Giovanetti M, Obolski U, Lourenço J. Global transmission suitability maps for dengue virus transmitted by Aedes aegypti from 1981 to 2019. Sci Data. 2023 May 12;10(1):275.
Gómez M, Martínez D, Páez-Triana L, Luna N, Ramírez A, Medina J, et al. Influence of dengue virus serotypes on the abundance of Aedes aegypti insect-specific viruses (ISVs). J Virol. 2023 Dec 14;
Azizi K, Dorzaban H, Soltani A, Alipour H, Jaberhashemi SA, Salehi-Vaziri M, et al. Monitoring of Dengue Virus in Field-caught Aedes Species (Diptera: Culicidae) by Molecular Method, from 2016 to 2017 in Southern Iran. J Health Sci Surveill Syst [Internet]. 2023;11(1):77–83. Available from: https://jhsss.sums.ac.ir/article_48965.html
Ali EOM, Babalghith AO, Bahathig AOS, Dafalla OM, Al-Maghamsi IW, Mustafa NEAG, et al. Detection of Dengue Virus From Aedes aegypti (Diptera, Culicidae) in Field-Caught Samples From Makkah Al-Mokarramah, Kingdom of Saudi Arabia, Using RT-PCR. Front Public Health. 2022 Jun 9;10.
Boyles SM, Mavian C, Finol E, Ukhanova M, Stephenson CJ, Hamerlinck G, et al. Under-the-Radar Dengue Virus Infections in Natural Populations of Aedes Aegypti Mosquitoes. mSphere. 2020.
Sudarmaja IM, Swastika IK, Diarthini LPE, Prasetya IPD, Wirawan IMA. Dengue Virus Transovarial Transmission Detection in Aedes Aegypti From Dengue Hemorrhagic Fever Patients’ Residences in Denpasar, Bali. Vet World. 2022.
Kurnia N, Kaitana Y, Salaki CL, Mandey LC, Tuda JSB, Tallei TE. Study of Dengue Virus Transovarial Transmission in Aedes spp. In Ternate City Using Streptavidin-Biotin-Peroxidase Complex Immunohistochemistry. Infect Dis Rep. 2022.
Wanti W, Isnawati I, Respati T. Transovarial Infection of Dengue Virus in Aedes Aegypti and Aedes Albopictus. Jurnal Kesehatan Masyarakat, 2022: 17(4), 606-613.
Mbanzulu KM, Mboera LEG, Wumba R, Engbu D, Bojabwa MM, Zanga J, et al. Physicochemical Characteristics of Aedes Mosquito Breeding Habitats in Suburban and Urban Areas of Kinshasa, Democratic Republic of the Congo. Frontiers in Tropical Diseases. 2022.
Xia I, Singirikonda N, Hellman L, Watson J, Hanna M. Using Machine Learning Models for Predicting Culex Mosquito Habitats and Breeding Patterns in Washington D.C. 2023;
Vallasamy SK. The Impact of the Climate on Dengue Fever Cases in Johor. 2023.
Erraguntla M, Dave D, Zapletal J, Myles KM, Adelman ZN, Pohlenz TD, et al. Predictive Model for Microclimatic Temperature and Its Use in Mosquito Population Modeling. Sci Rep. 2021.
Chathuranga WGD, Weeraratne TC, Abeysundara S, Karunaratne SHPP, Silva WAPP de. Breeding Site Selection and Co‐existing Patterns of Tropical Mosquitoes. Med Vet Entomol. 2023.
Graziosi I, Aranda C, Balestrino F, Bellini R, Busquets N, Coulibaly MB, et al. A Litmus Test for Harmonized Mosquito Monitoring Across Europe and Africa. 2020.
Muniz ER, Catão AML, Rueda-Páramo ME, Rodrigues NJ, Lastra CCL, García JJ. Impact of Short-Term Temperature Challenges on the Larvicidal Activities of the Entomopathogenic Watermold Leptolegnia Chapmanii Against Aedes Aegypti, and Development on Infected Dead Larvae. Fungal Biol. 2018.
Lorenz C, Castro MC, Trindade PMP, Nogueira ML, Lage M d. O, Quintanilha JA, et al. Predicting Aedes Aegypti Infestation Using Landscape and Thermal Features. Sci Rep. 2020.
Suparmin, Widyanto A, Rajiani I. Detection of Dengue Transovarial Virus for Aides Aegypti Mosquitoes in Endemic Areas of Dengue Hemorrhagic Fever. Int J Med Biomed Stud. 2019;
Sunardi P, Kusnanto H, Satoto TBT, Lazuardi L. Prevalence of Dengue Virus Transovarial Transmission and DHF Incidence Rate in Grogol Sub-District of Sukoharjo District. Jurnal Medicoeticolegal Dan Manajemen Rumah Sakit. 2018.
Downloads
Published
How to Cite
Issue
Section
License
Authors who publish with Poltekita : Jurnal Ilmu Kesehatan agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License (CC BY-SA 4.0) that allows others to share the work with an acknowledgment of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgment of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work.
This work is licensed under a Creative Commons Attribution-ShareAlike 2.0 Generic License.
Poltekita : Jurnal Ilmu Kesehatan is licensed under a Creative Commons Attribution-Share Alike 4.0 International License
You are free to:
- Share, copy and redistribute the material in any medium or format
- Adapt, remix, transform, and build upon the material for any purpose, even commercially.
- The licensor cannot revoke these freedoms as long as you follow the license terms.