Genetic Characterization of Chikungunya Virus in Field-Caught Aedes aegypti Mosquitoes Collected during the Recent Outbreaks in 2019, Thailand
Abstract
:1. Introduction
2. Results
2.1. Molecular Detection of CHIKV RNA in Ae. aegypti
2.2. Sequencing and Phylogenetic Analysis
3. Discussion
4. Materials and Methods
4.1. Ethics Statement
4.2. Sample Collection
4.3. Viral RNA Extraction
4.4. CHIKV RNA Detection
4.5. DNA Cloning and Sequencing
4.6. Phylogenetic Tree Construction
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Chhabra, M.; Mittal, V.; Bhattacharya, D.; Rana, U.; Lal, S. Chikungunya fever: A re-emerging viral infection. Indian J. Med. Microbiol. 2008, 26, 5–12. [Google Scholar] [CrossRef] [PubMed]
- Ganesan, V.K.; Duan, B.; Reid, S.P. Chikungunya Virus: Pathophysiology, Mechanism, and Modeling. Viruses 2017, 9, 368. [Google Scholar] [CrossRef]
- Vazeille, M.; Moutailler, S.; Coudrier, D.; Rousseaux, C.; Khun, H.; Huerre, M.; Thiria, J.; Dehecq, J.; Fontenille, D.; Schuffenecker, I.; et al. Two Chikungunya isolates from the outbreak of La Reunion (Indian Ocean) exhibit different patterns of infection in the mosquito, Aedes albopictus. PLoS ONE 2007, 2, e1168. [Google Scholar] [CrossRef] [PubMed]
- Sudeep, A.B.; Parashar, D. Chikungunya: An overview. J. Biosci. 2008, 33, 443–449. [Google Scholar] [CrossRef] [PubMed]
- Thavara, U.; Tawatsin, A.; Pengsakul, T.; Bhakdeenuan, P.; Chanama, S.; Anantapreecha, S.; Molito, C.; Chompoosri, J.; Thammapalo, S.; Sawanpanyalert, P.; et al. Outbreak of chikungunya fever in Thailand and virus detection in field population of vector mosquitoes, Aedes aegypti (L.) and Aedes albopictus skuse (Diptera: Culicidae). Southeast Asian J. Trop. Med. Public Health 2009, 40, 951–962. [Google Scholar] [PubMed]
- Enserink, M. Infectious diseases. Massive outbreak draws fresh attention to little-known virus. Science 2006, 311, 1085. [Google Scholar] [CrossRef] [PubMed]
- Reiter, P.; Fontenille, D.; Paupy, C. Aedes albopictus as an epidemic vector of chikungunya virus: Another emerging problem? Lancet Infect. Dis. 2006, 6, 463–464. [Google Scholar] [CrossRef]
- Schuffenecker, I.; Iteman, I.; Michault, A.; Murri, S.; Frangeul, L.; Vaney, M.C.; Lavenir, R.; Pardigon, N.; Reynes, J.M.; Pettinelli, F.; et al. Genome microevolution of chikungunya viruses causing the Indian Ocean outbreak. PLoS Med. 2006, 3, e263. [Google Scholar] [CrossRef]
- Ross, R.W. The Newala epidemic III; the virus: Isolation, pathogenic properties and relationship to the epidemic. J. Hyg. 1956, 54, 177–191. [Google Scholar] [CrossRef]
- Griffin, D.E. Alphaviruses. In Fields Virology; Knipe, D.M., Howley, R.M., Eds.; Lippincott, Williams & Wilkins: Philadelphia, PA, USA, 2001; pp. 917–962. [Google Scholar]
- Centers for Disease Control and Prevention (CDC). Chikungunya fever diagnosed among international travelers United States, 2005–2006. MMWR Morb. Mortal. Wkly. Rep. 2006, 55, 1040–1042. [Google Scholar]
- Bonilauri, P.; Bellini, R.; Calzolari, M.; Angelini, R.; Venturi, L.; Fallacara, F.; Cordioli, P.; Angelini, P.; Venturelli, C.; Merialdi, G.; et al. Chikungunya virus in Aedes albopictus, Italy. Emerg. Infect. Dis. 2008, 14, 852–854. [Google Scholar] [CrossRef] [PubMed]
- Aikat, B.K.; Konar, N.R.; Banerjee, G. Hemorrhagic fever in Calcutta area. Indian J. Med. Res. 1964, 52, 660–675. [Google Scholar] [PubMed]
- Thaikruea, L.; Thammapalo, S.; Prikchoo, P.; Binnisoh, R.; Klangvang, N. Epidemic of New Chikungunya Viral Genotype and Clinical Manifestations in Thailand, 2008–2009. Chiang Mai Med. J. 2011, 50, 1–11. [Google Scholar]
- Theamboonlers, A.; Rianthavorn, P.; Praianantathavorn, K.; Wuttirattanakowit, N.; Poovorawan, Y. Clinical and molecular characterization of chikungunya virus in South Thailand. Jpn. J. Infect. Dis. 2009, 62, 303–305. [Google Scholar] [PubMed]
- Rianthavorn, P.; Prianantathavorn, K.; Wuttirattanakowit, N.; Theamboonlers, A.; Poovorawan, Y. An outbreak of chikungunya in southern Thailand from 2008 to 2009 caused by African strains with A226V mutation. Int. J. Infect. Dis. 2010, 14, e161–e165. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Powers, A.M.; Logue, C.H. Changing patterns of chikungunya virus: Re-emergence of a zoonotic arbovirus. J. Gen. Virol. 2007, 88, 2363–2377. [Google Scholar] [CrossRef] [PubMed]
- Robinson, M.C. An epidemic of virus disease in Southern Province, Tanganyika Territory, in 1952–53. I. Clinical features. Trans. R. Soc. Trop. Med. Hyg. 1955, 49, 28–32. [Google Scholar] [CrossRef]
- Pialoux, G.; Gaüzère, B.A.; Jauréguiberry, S.; Strobel, M. Chikungunya, an epidemic arbovirosis. Lancet Infect. Dis. 2007, 7, 319–327. [Google Scholar] [CrossRef]
- Tandale, B.V.; Sathe, P.S.; Arankalle, V.A.; Wadia, R.S.; Kulkarni, R.; Shah, S.V.; Shah, S.K.; Sheth, J.K.; Sudeep, A.B.; Tripathy, A.S.; et al. Systemic involvements and fatalities during Chikungunya epidemic in India, 2006. J. Clin. Virol. 2009, 46, 145–149. [Google Scholar] [CrossRef]
- Hardy, J.L.; Houk, E.J.; Kramer, L.D.; Reeves, W.C. Intrinsic factors affecting vector competence of mosquitoes for Arboviruses. Annu. Rev. Entomol. 1983, 28, 229–262. [Google Scholar] [CrossRef]
- Miller, B.R.; Nasci, R.S.; Godsey, M.S.; Savage, H.M.; Lutwama, J.J.; Lanciotti, R.S.; Peters, C.J. First field evidence for natural vertical transmission of West Nile virus in Culex univittatus complex mosquitoes from Rift Valley Province, Kenya. Am. J. Trop. Med. Hyg. 2000, 62, 240–246. [Google Scholar] [CrossRef] [PubMed]
- Agarwal, A.; Dash, P.K.; Singh, A.K.; Sharma, S.; Gopalan, N.; Rao, P.V.; Parida, M.M.; Reiter, P. Evidence of experimental vertical transmission of emerging novel ECSA genotype of chikungunya virus in Aedes aegypti. PLoS Negl. Trop. Dis. 2014, 8, e2990. [Google Scholar] [CrossRef] [PubMed]
- Chompoosri, J.; Thavara, U.; Tawatsin, A.; Boonserm, R.; Phumee, A.; Sangkitporn, S.; Siriyasatien, P. Vertical transmission of Indian Ocean Lineage of chikungunya virus in Aedes aegypti and Aedes albopictus mosquitoes. Parasit. Vectors 2016, 9, 227. [Google Scholar] [CrossRef] [PubMed]
- Powers, A.M.; Brault, A.C.; Tesh, R.B.; Weaver, S.C. Re-emergence of chikungunya and o’nyong-nyong viruses: Evidence for distinct geographical lineages and distant evolutionary relationships. J. Gen. Virol. 2000, 81, 471–479. [Google Scholar] [CrossRef] [PubMed]
- Diallo, M.; Thonnon, J.; Traore-Lamizana, M.; Fontenille, D. Vectors of chikungunya virus in Senegal: Current data and transmission cycles. Am. J. Trop. Med. Hyg. 1999, 60, 281–286. [Google Scholar] [CrossRef]
- Bureau of Epidemiology, Department of Disease Control, MoPH, Thailand. Chikungunya. Available online: http://www.boe.moph.go.th/boedb/surdata/disease.php?ds=84 (accessed on 20 June 2019).
- Kumar, N.P.; Joseph, R.; Kamaraj, T.; Jambulingam, P. A226V mutation in virus during the 2007 chikungunya outbreak in Kerala, India. J. Gen. Virol. 2008, 89, 1945–1948. [Google Scholar] [CrossRef] [PubMed]
- Ng, K.W.; Chow, A.; Win, M.K.; Dimatatac, F.; Neo, H.Y.; Lye, D.C.; Leo, Y.S. Clinical features and epidemiology of chikungunya infection in Singapore. Singapore Med. J. 2009, 50, 785–790. [Google Scholar]
- Suangto, P.; Uppapong, T.; Chikungunya fever. Annual Epidemiological Surveillance Report 2009, Bureau of Epidemiology, Department of Disease Control, Ministry of Public Health. Available online: http://www.boe.moph.go.th/Annual/Annual%202552/Main.htm (accessed on 22 June 2019).
- Wanlapakorn, N.; Thongmee, T.; Linsuwanon, P.; Chattakul, P.; Vongpunsawad, S.; Payungporn, S.; Poovorawan, Y. Chikungunya outbreak in Bueng Kan Province, Thailand, 2013. Emerg. Infect. Dis. 2014, 20, 1404–1406. [Google Scholar] [CrossRef]
- Tawatsin, A.; Phumee, A.; Thavara, U.; Sirisopa, P.; Ritthison, W.; Thammakosol, K.; Intayot, P.; Joyjinda, Y.; Wacharapluesadee, S.; Hemachudha, T.; et al. High infection rate of Zika virus in mosquitoes collected from an area of active Zika virus transmission in eastern Thailand. Thai. J. Vet. Med. 2019, 48, 551–558. [Google Scholar]
- Pham Thi, K.L.; Briant, L.; Gavotte, L.; Labbe, P.; Perriat-Sanguinet, M.; Cornillot, E.; Vu, T.D.; Nguyen, T.Y.; Tran, V.P.; Nguyen, V.S.; et al. Incidence of dengue and chikungunya viruses in mosquitoes and human patients in border provinces of Vietnam. Parasit. Vectors 2017, 10, 556. [Google Scholar] [CrossRef]
- Delatte, H.; Paupy, C.; Dehecq, J.S.; Thiria, J.; Failloux, A.B.; Fontenille, D. Aedes albopictus, vector of chikungunya and dengue viruses in Reunion Island: Biology and control. Parasite 2008, 15, 3–13. [Google Scholar] [CrossRef] [PubMed]
- Ratsitorahina, M.; Harisoa, J.; Ratovonjato, J.; Biacabe, S.; Reynes, J.M.; Zeller, H.; Raoelina, Y.; Talarmin, A.; Richard, V.; Soares, J.L. Outbreak of dengue and Chikungunya fevers, Toamasina, Madagascar, 2006. Emerg. Infect. Dis. 2008, 14, 1135–1137. [Google Scholar] [CrossRef] [PubMed]
- Hailin, Z.; Yunzhi, Z.; Zhuqing, M. Transovarial transmission of Chikungunya virus in Aedes albopictus and Aedes aegypti mosquitoes. Chin. J. Virol. 1993, 9, 222–227. [Google Scholar]
- Honório, N.A.; Wiggins, K.; Eastmond, B.; Câmara, D.; Alto, B.W. Experimental Vertical Transmission of Chikungunya Virus by Brazilian and Florida Aedes Albopictus Populations. Viruses 2019, 11, 353. [Google Scholar] [CrossRef] [PubMed]
- Dash, P.K.; Parida, M.M.; Santhosh, S.R.; Verma, S.K.; Tripathi, N.K.; Ambuj, S.; Saxena, P.; Gupta, N.; Chaudhary, M.; Babu, J.P.; et al. East Central South African genotype as the causative agent in reemergence of Chikungunya outbreak in India. Vector. Borne Zoonotic Dis. 2007, 7, 519–527. [Google Scholar] [CrossRef] [PubMed]
- Santhosh, S.R.; Dash, P.K.; Parida, M.M.; Khan, M.; Tiwari, M.; Lakshmana Rao, P.V. Comparative full genome analysis revealed E1: A226V shift in 2007 Indian Chikungunya virus isolates. Virus. Res. 2008, 135, 36–41. [Google Scholar] [CrossRef] [PubMed]
- Tsetsarkin, K.A.; Vanlandingham, D.L.; McGee, C.E.; Higgs, S. A single mutation in chikungunya virus affects vector specificity and epidemic potential. PLoS Pathog. 2007, 3, e201. [Google Scholar] [CrossRef]
- Tuekprakhon, A.; Nakayama, E.E.; Bartholomeeusen, K.; Puiprom, O.; Sasaki, T.; Huits, R.; Luplertlop, N.; Kosoltanapiwat, N.; Maneekan, P.; Ariën, K.K.; et al. Variation at position 350 in the Chikungunya virus 6K-E1 protein determines the sensitivity of detection in a rapid E1-antigen test. Sci. Rep. 2018, 8, 1094. [Google Scholar] [CrossRef]
- Melan, A.; Aung, M.S.; Khanam, F.; Paul, S.K.; Riaz, B.K.; Tahmina, S.; Kabir, M.I.; Hossain, M.A.; Kobayashi, N. Molecular characterization of chikungunya virus causing the 2017 outbreak in Dhaka, Bangladesh. New Microbes New Infect. 2018, 24, 14–16. [Google Scholar] [CrossRef]
- Arankalle, V.A.; Shrivastava, S.; Cherian, S.; Gunjikar, R.S.; Walimbe, A.M.; Jadhav, S.M.; Sudeep, A.B.; Mishra, A.C. Genetic divergence of Chikungunya viruses in India (1963–2006) with special reference to the 2005–2006 explosive epidemic. J. Gen. Virol. 2007, 88, 1967–1976. [Google Scholar] [CrossRef]
- Kumar, C.V.M.N.; Johnson, A.M.A.; Gopal, D.V.R.S. Molecular characterization of chikungunya virus from Andhra Pradesh, India & phylogenetic relationship with Central African isolates. Ind. J. Med. Res. 2007, 126, 534–540. [Google Scholar]
- Grandadam, M.; Caro, V.; Plumet, S.; Thiberge, J.M.; Souarès, Y.; Failloux, A.B.; Tolou, H.J.; Budelot, M.; Cosserat, D.; Leparc-Goffart, I.; et al. Chikungunya virus, Southeastern France. Emerg. Infect. Dis. 2011, 17, 910–913. [Google Scholar] [CrossRef] [PubMed]
- Agarwal, A.; Sharma, A.K.; Sukumaran, D.; Parida, M.; Dash, P.K. Two novel epistatic mutations (E1:K211E and E2:V264A) in structural proteins of Chikungunya virus enhance fitness in Aedes aegypti. Virology 2016, 497, 59–68. [Google Scholar] [CrossRef] [PubMed]
- Santhosh, S.R.; Dash, P.K.; Parida, M.; Khan, M.; Rao, P.V. Appearance of E1: A226Vmutant Chikungunya virus in Coastal Karnataka, India during 2008 outbreak. Virol. J. 2009, 6, 172. [Google Scholar] [CrossRef] [PubMed]
Regions | Provinces | Total Sample (n) | Chikungunya-Positive (n/total) | |
---|---|---|---|---|
Female | Male | |||
Northern | Chiang Rai | 50 | 2/28 | 0/22 |
Chiang Mai | 64 | 2/37 | 0/27 | |
Nan | 40 | 1/22 | 0/18 | |
Northeastern | Kalasin | 7 | 0/5 | 0/2 |
Khon Kaen | 63 | 0/33 | 0/30 | |
Nakhon Ratchasima | 19 | 0/12 | 0/7 | |
Chaiyaphum | 40 | 0/25 | 0/15 | |
Mukdahan | 8 | 0/4 | 0/4 | |
Bueng Kan | 10 | 0/7 | 0/3 | |
Udon Thani | 60 | 0/32 | 0/28 | |
Nong Khai | 258 | 0/145 | 3/113 | |
Ubon Ratchathani | 75 | 10/42 | 0/33 | |
Central | Lopburi | 60 | 0/32 | 0/28 |
Phitsanulok | 51 | 0/27 | 0/24 | |
Phetchabun | 51 | 0/32 | 0/19 | |
Nonthaburi | 21 | 0/13 | 0/8 | |
Bangkok | 89 | 11/51 | 3/38 | |
Nakhon Sawan | 64 | 2/35 | 0/29 | |
Western | Ratchaburi | 85 | 0/47 | 0/38 |
Tak | 96 | 0/52 | 0/44 | |
Prachuap Khiri Khan | 93 | 24/46 | 8/47 | |
Eastern | Chanthaburi | 60 | 0/29 | 0/31 |
Rayong | 45 | 0/22 | 0/23 | |
Trat | 60 | 0/29 | 0/31 | |
Southern | Songkhla | 80 | 1/38 | 0/42 |
Nakhon Si Thammarat | 62 | 0/28 | 0/34 | |
Krabi | 35 | 1/27 | 0/8 | |
Total | 1646 | 54/900 | 14/746 |
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Intayot, P.; Phumee, A.; Boonserm, R.; Sor-suwan, S.; Buathong, R.; Wacharapluesadee, S.; Brownell, N.; Poovorawan, Y.; Siriyasatien, P. Genetic Characterization of Chikungunya Virus in Field-Caught Aedes aegypti Mosquitoes Collected during the Recent Outbreaks in 2019, Thailand. Pathogens 2019, 8, 121. https://doi.org/10.3390/pathogens8030121
Intayot P, Phumee A, Boonserm R, Sor-suwan S, Buathong R, Wacharapluesadee S, Brownell N, Poovorawan Y, Siriyasatien P. Genetic Characterization of Chikungunya Virus in Field-Caught Aedes aegypti Mosquitoes Collected during the Recent Outbreaks in 2019, Thailand. Pathogens. 2019; 8(3):121. https://doi.org/10.3390/pathogens8030121
Chicago/Turabian StyleIntayot, Proawpilart, Atchara Phumee, Rungfar Boonserm, Sriwatapron Sor-suwan, Rome Buathong, Supaporn Wacharapluesadee, Narisa Brownell, Yong Poovorawan, and Padet Siriyasatien. 2019. "Genetic Characterization of Chikungunya Virus in Field-Caught Aedes aegypti Mosquitoes Collected during the Recent Outbreaks in 2019, Thailand" Pathogens 8, no. 3: 121. https://doi.org/10.3390/pathogens8030121
APA StyleIntayot, P., Phumee, A., Boonserm, R., Sor-suwan, S., Buathong, R., Wacharapluesadee, S., Brownell, N., Poovorawan, Y., & Siriyasatien, P. (2019). Genetic Characterization of Chikungunya Virus in Field-Caught Aedes aegypti Mosquitoes Collected during the Recent Outbreaks in 2019, Thailand. Pathogens, 8(3), 121. https://doi.org/10.3390/pathogens8030121