Open Access
Issue
Parasite
Volume 33, 2026
Article Number 11
Number of page(s) 12
DOI https://doi.org/10.1051/parasite/2026012
Published online 13 March 2026
  1. Boyer S, Doeurk B, Rakotonirina A, Chy S, Vong C, Piv E, Tat B, Ea M, Chhin C, Phen S, Kloeung N, Ke S, Popovici J, Piola P, Witkowski B, Maquart PO, Vantaux A. 2025. Anopheles mosquitoes in Mondulkiri forest, Cambodia: abundance, distribution, seasonal patterns and Plasmodium prevalence. Malaria Journal, 24(1), 6. [Google Scholar]
  2. Brosseau L, Drame PM, Besnard P, Toto JC, Foumane V, Le Mire J, Mouchet F, Remoue F, Allan R, Fortes F, Carnevale P, Manguin S. 2012. Human antibody response to Anopheles saliva for comparing the efficacy of three malaria vector control methods in Balombo, Angola. PLoS One, 7(9), e44189. [Google Scholar]
  3. Carnevale P, Manguin S. 2021. Review of issues on residual malaria transmission. Journal of Infectious Diseases, 223(12 Suppl 2), S61–S80. [Google Scholar]
  4. Chamchoy K, Praoparotai A, Pakparnich P, Sudsumrit S, Swangsri T, Chamnanchanunt S, Songdej D, Imwong M, Boonyuen U. 2021. The integrity and stability of specimens under different storage conditions for glucose-6-phosphate dehydrogenase deficiency screening using WST-8. Acta Tropica, 217, 105864. [Google Scholar]
  5. Chantaramongkol J, Buathong R. 2016. A fatal malaria caused by Plasmodium knowlesi infection in a healthy man, Betong, Yala, Thailand April, 2016. International Journal of Infectious Diseases, 53, 124. [Google Scholar]
  6. Cheteug G, Elanga-Ndille E, Donkeu C, Ekoko W, Oloume M, Essangui E, Nwane P, NS SE, Etang J, Wanji S, Ayong L, Eboumbou Moukoko CE. 2020. Preliminary validation of the use of IgG antibody response to Anopheles gSG6–p1 salivary peptide to assess human exposure to malaria vector bites in two endemic areas of Cameroon in Central Africa. PLoS One, 15(12), e0242510. [Google Scholar]
  7. Colson KE, Potter A, Conde-Glez C, Hernandez B, Ríos-Zertuche D, Zúñiga-Brenes P, Iriarte E, Mokdad AH. 2015. Use of a commercial ELISA for the detection of measles-specific immunoglobulin G (IgG) in dried blood spots collected from children living in low-resource settings. Journal of Medical Virology, 87(9), 1491–1499. [Google Scholar]
  8. Cooper DJ, Rajahram GS, William T, Jelip J, Mohammad R, Benedict J, Alaza DA, Malacova E, Yeo TW, Grigg MJ, Anstey NM, Barber BE. 2020. Plasmodium knowlesi malaria in Sabah, Malaysia, 2015–2017: ongoing increase in incidence despite near-elimination of the human-only Plasmodium species. Clinical Infectious Diseases, 70(3), 361–367. [Google Scholar]
  9. Cui L, Yan G, Sattabongkot J, Cao Y, Chen B, Chen X, Fan Q, Fang Q, Jongwutiwes S, Parker D, Sirichaisinthop J, Kyaw MP, Su XZ, Yang H, Yang Z, Wang B, Xu J, Zheng B, Zhong D, Zhou G. 2012. Malaria in the Greater Mekong Subregion: heterogeneity and complexity. Acta Tropica, 121(3), 227–239. [Google Scholar]
  10. Cui L, Yan G, Sattabongkot J, Chen B, Cao Y, Fan Q, Parker D, Sirichaisinthop J, Su XZ, Yang H, Yang Z, Wang B, Zhou G. 2012. Challenges and prospects for malaria elimination in the Greater Mekong Subregion. Acta Tropica, 121(3), 240–245. [Google Scholar]
  11. Drame PM, Machault V, Diallo A, Cornélie S, Poinsignon A, Lalou R, Sembène M, Dos Santos S, Rogier C, Pagès F, Le Hesran JY, Remoué F. 2012. IgG responses to the gSG6–P1 salivary peptide for evaluating human exposure to Anopheles bites in urban areas of Dakar region, Sénégal. Malaria Journal, 11, 72. [Google Scholar]
  12. Francischetti IM, Valenzuela JG, Pham VM, Garfield MK, Ribeiro JM. 2002. Toward a catalog for the transcripts and proteins (sialome) from the salivary gland of the malaria vector Anopheles gambiae. Journal of Experimental Biology, 205(Pt 16), 2429–2451. [Google Scholar]
  13. Hewitt S, Delacollette C, Poirot E. 2013. Malaria control in the Greater Mekong Subregion: an overview of the current response and its limitations. Southeast Asian Journal of Tropical Medicine and Public Health, 44 (Suppl 1), 249–305; discussion 306–307. [Google Scholar]
  14. Hii J, Hustedt J, Bangs MJ. 2021. Residual malaria transmission in select countries of Asia-Pacific region: old wine in a new barrel. Journal of Infectious Diseases, 223(12 Suppl 2), S111–S142. [Google Scholar]
  15. Jeyaprakasam NK, Liew JWK, Low VL, Wan-Sulaiman WY, Vythilingam I. 2020. Plasmodium knowlesi infecting humans in Southeast Asia: what’s next? PLoS Neglected Tropical Diseases, 14(12), e0008900. [CrossRef] [PubMed] [Google Scholar]
  16. Jongwutiwes S, Putaporntip C, Iwasaki T, Sata T, Kanbara H. 2004. Naturally acquired Plasmodium knowlesi malaria in human, Thailand. Emerging Infectious Diseases, 10(12), 2211–2213. [Google Scholar]
  17. Kassam NA, Kulaya N, Kaaya RD, Schmiegelow C, Wang CW, Kavishe RA, Alifrangis M.. 2021. Use of anti-gSG6–P1 IgG as a serological biomarker to assess temporal exposure to Anopheles’ mosquito bites in Lower Moshi. PLoS ONE, 16(10), e0259131. [Google Scholar]
  18. Lanfrancotti A, Lombardo F, Santolamazza F, Veneri M, Castrignanò T, Coluzzi M, Arcà B. 2002. Novel cDNAs encoding salivary proteins from the malaria vector Anopheles gambiae. FEBS Letters, 517(1–3), 67–71. [Google Scholar]
  19. Lê S, Josse J, Husson F. 2008. FactoMineR: an R package for multivariate analysis. Journal of Statistical Software, 25(1), 1–18. [Google Scholar]
  20. Lombardo F, Ronca R, Rizzo C, Mestres-Simòn M, Lanfrancotti A, Currà C, Fiorentino G, Bourgouin C, Ribeiro JM, Petrarca V, Ponzi M, Coluzzi M, Arcà B. 2009. The Anopheles gambiae salivary protein gSG6: An Anopheline-specific protein with a blood-feeding role. Insect Biochemistry and Molecular Biology, 39(7), 457–466. [Google Scholar]
  21. Londono-Renteria B, Drame PM, Weitzel T, Rosas R, Gripping C, Cardenas JC, Alvares M, Wesson DM, Poinsignon A, Remoue F, Colpitts TM. 2015. An. gambiae gSG6–P1 evaluation as a proxy for human-vector contact in the Americas: A pilot study. Parasites & Vectors, 8(1), 533. [Google Scholar]
  22. Manguin S, Garros C, Dusfour I, Harbach RE, Coosemans M. 2008. Bionomics, taxonomy, and distribution of the major malaria vector taxa of Anopheles subgenus Cellia in Southeast Asia: an updated review. Infection, Genetics and Evolution, 8(4), 489–503. [Google Scholar]
  23. MoPH. 2025. Thailand Malaria Elimination Program. Nonthaburi: Division of Vector Borne Diseases. Ministry of Public Health. https://malaria.ddc.moph.go.th/malariar10/home.php. [Google Scholar]
  24. Morgan K, Somboon P, Walton C. 2013. Understanding Anopheles diversity in Southeast Asia and its applications for malaria control, in: Anopheles mosquitoes – new insights into malaria vectors, Manguin S, Ed. London, UK: IntechOpen. pp. 327–355. [Google Scholar]
  25. Ndo C, Elanga-Ndille E, Cheteug G, Metitsi RD, Wanji S, Moukoko CEE. 2022. IgG antibody responses to Anopheles gambiae gSG6–P1 salivary peptide are induced in human populations exposed to secondary malaria vectors in forest areas in Cameroon. PLoS One, 17(11), e0276991. [Google Scholar]
  26. Ngernna S, Rachaphaew N, Thammapalo S, Prikchoo P, Kaewnah O, Manopwisedjaroen K, Phumchuea K, Suansomjit C, Roobsoong W, Sattabongkot J, Cui L, Nguitragool W. 2019. Case report: Case series of human Plasmodium knowlesi infection on the southern border of Thailand. American Journal of Tropical Medicine and Hygiene, 101(6), 1397–1401. [Google Scholar]
  27. Nguetsa GC, Elanga-Ndille E, Essangui Same EG, Nganso Keptchouang T, Mandeng SE, Ekoko Eyisap W, Binyang JA, Fogang B, Nouage L, Piameu M, Ayong L, Etang J, Wanji S, Eboumbou Moukoko CE. 2024. Utility of plasma anti-gSG6–P1 IgG levels in determining changes in Anopheles gambiae bite rates in a rural area of Cameroon. Scientific Reports, 14(1), 14294. [Google Scholar]
  28. Poinsignon A, Cornelie S, Mestres-Simon M, Lanfrancotti A, Rossignol M, Boulanger D, Cisse B, Sokhna C, Arcà B, Simondon F, Remoue F. 2008. Novel peptide marker corresponding to salivary protein gSG6 potentially identifies exposure to Anopheles bites. PLoS One, 3(6), e2472. [Google Scholar]
  29. Pollard EJM, Patterson C, Russell TL, Apairamo A, Oscar J, Arcà B, Drakeley C, Burkot TR. 2019. Human exposure to Anopheles farauti bites in the Solomon Islands is not associated with IgG antibody response to the gSG6 salivary protein of Anopheles gambiae. Malaria Journal, 18(1), 334. [Google Scholar]
  30. Pramasivan S, Ngui R, Jeyaprakasam NK, Liew JWK, Low VL, Mohamed Hassan N, Wan Sulaiman WY, Jaraee R, Abdul Rahman R, Jelip J, Vythilingam I. 2021. Spatial distribution of Plasmodium knowlesi cases and their vectors in Johor, Malaysia: in light of human malaria elimination. Malaria Journal, 20(1), 426. [Google Scholar]
  31. Rattanarithikul R, Harrison BA, Harbach RE, Panthusiri P, Coleman RE, Panthusiri P. 2006. Illustrated keys to the mosquitoes of Thailand. IV. Anopheles. Southeast Asian Journal of Tropical Medicine and Public Health, 37(Suppl 2), 1–128. [Google Scholar]
  32. Rizzo C, Lombardo F, Ronca R, Mangano V, Sirima SB, Nèbiè I, Fiorentino G, Modiano D, Arcà B. 2014. Differential antibody response to the Anopheles gambiae gSG6 and cE5 salivary proteins in individuals naturally exposed to bites of malaria vectors. Parasites & Vectors, 7, 549. [Google Scholar]
  33. Rizzo C, Ronca R, Fiorentino G, Verra F, Mangano V, Poinsignon A, Sirima SB, Nèbiè I, Lombardo F, Remoue F, Coluzzi M, Petrarca V, Modiano D, Arcà B. 2011. Humoral response to the Anopheles gambiae salivary protein gSG6: a serological indicator of exposure to Afrotropical malaria vectors. PLoS One, 6(3), e17980. [Google Scholar]
  34. Roh ME, Lausatianragit K, Chaitaveep N, Jongsakul K, Sudathip P, Raseebut C, Tabprasit S, Nonkaew P, Spring M, Arsanok M, Boonyarangka P, Sriwichai S, Sai-Ngam P, Chaisatit C, Pokpong P, Prempree P, Rossi S, Feldman M, Wojnarski M, Bennett A, Gosling R, Jearakul D, Lausatianragit W, Smith PL, Martin NJ, Lover AA, Fukuda MM. 2021. Civilian-military malaria outbreak response in Thailand: An example of multi-stakeholder engagement for malaria elimination. Malaria Journal, 20(1), 458. [Google Scholar]
  35. Rosenberg R, Andre RG, Somchit L. 1990. Highly efficient dry season transmission of malaria in Thailand. Transactions of the Royal Society of Tropical Medicine and Hygiene, 84(1), 22–28. [Google Scholar]
  36. Saeung M, Aung PL, Jupatanakul N, Manguin S, Chareonviriyaphap T, Phuanukoonnon S. 2025. Estimating malaria risk behaviours and their determinants among at-risk populations in a pre-elimination setting, Sisaket Province, Thailand-Cambodia border. Malaria Journal, 24(1), 293. [Google Scholar]
  37. Saeung M, Jupatanakul N, Afelt A, Suksirisawat K, Lhaosudto S, Ahebwa A, Hii J, Manguin S, Chareonviriyaphap T. 2025. Insights into spatio-temporal dynamics of Anopheles vectors while approaching malaria elimination along the Thailand-Cambodia border. Acta Tropica, 263, 107545. [Google Scholar]
  38. Saeung M, Jupatanakul N, Hii J, Thanispong K, Chareonviriyaphap T, Manguin S. 2025. Overview of national and local efforts to eliminate malaria in Thailand. Trends in Parasitology, 41(1), 52–65. [Google Scholar]
  39. Saeung M, Pengon, Pethrak C, Thaiudomsup S, Lhaosudto S, Saeung A, Manguin S, Chareonviriyaphap T, Jupatanakul N. 2024. Dirus complex species identification PCR (DiCSIP) improves the identification of Anopheles dirus complex from the Greater Mekong Subregion. Parasites & Vectors, 17(1), 260. [Google Scholar]
  40. Sagna AB, Sarr JB, Gaayeb L, Drame PM, Ndiath MO, Senghor S, Sow CS, Poinsignon A, Seck M, Hermann E, Schacht AM, Faye N, Sokhna C, Remoue F, Riveau G. 2013. gSG6–P1 salivary biomarker discriminates micro-geographical heterogeneity of human exposure to Anopheles bites in low and seasonal malaria areas. Parasites & Vectors, 6, 68. [Google Scholar]
  41. Saita S, Pan-Ngum W, Phuanukoonnon S, Sriwichai P, Silawan T, White LJ, Parker DM. 2019. Human population movement and behavioural patterns in malaria hotspots on the Thai-Myanmar border: implications for malaria elimination. Malaria Journal, 18(1), 64. [Google Scholar]
  42. Sam J, Shamsusah NA, Ali AH, Hod R, Hassan MR, Agustar HK. 2022. Prevalence of simian malaria among macaques in Malaysia (2000–2021): A systematic review. PLoS Neglected Tropical Diseases, 16(7), e0010527. [Google Scholar]
  43. Tainchum K, Kongmee M, Manguin S, Bangs MJ, Chareonviriyaphap T. 2015. Anopheles species diversity and distribution of the malaria vectors of Thailand. Trends in Parasitology, 31(3), 109–119. [Google Scholar]
  44. Tananchai C, Manguin S, Bangs MJ, Chareonviriyaphap T. 2019. Malaria vectors and species complexes in Thailand: implications for vector control. Trends in Parasitology, 35(7), 544–558. [Google Scholar]
  45. Vythilingam I. 2010. Plasmodium knowlesi in humans: a review on the role of its vectors in Malaysia. Tropical Biomedicine, 27(1), 1–12. [PubMed] [Google Scholar]
  46. Vythilingam I, Chua TH, Liew JWK, Manin BO, Ferguson HM.. 2021. The vectors of Plasmodium knowlesi and other simian malarias Southeast Asia: challenges in malaria elimination. Advances in Parasitology, 113, 131–189. [Google Scholar]
  47. Vythilingam I, Noorazian YM, Huat TC, Jiram AI, Yusri YM, Azahari AH, Norparina I, Noorrain A, Lokmanhakim S. 2008. Plasmodium knowlesi in humans, macaques and mosquitoes in peninsular Malaysia. Parasites & Vectors, 1(1), 26. [CrossRef] [PubMed] [Google Scholar]
  48. WHO. 2014. Guidance note on the control of residual malaria parasite transmission. Geneva: World Health Organization [Google Scholar]
  49. WHO. 2015. Strategy for malaria elimination in the Greater Mekong Subregion (2015–2030). Geneva: World Health Organization. [Google Scholar]
  50. WHO. 2016. Eliminating malaria. Geneva: World Health Organization. [Google Scholar]
  51. WHO. 2017. A framework for malaria elimination. Geneva: World Health Organization. [Google Scholar]
  52. WHO. 2022. The Mekong malaria elimination programme accelerating malaria elimination in the Greater Mekong. Geneva: World Health Organization. [Google Scholar]
  53. WHO. 2023. World malaria report 2023. Geneva: World Health Organization. [Google Scholar]
  54. WHO. 2024. World malaria report 2024. Geneva: World Health Organization. [Google Scholar]
  55. WHO. 2025. World malaria report 2025. Geneva: World Health Organization. [Google Scholar]
  56. Wongkoon S, Jaroensutasinee M, Jaroensutasinee K. 2012. Assessing the temporal modelling for prediction of dengue infection in northern and north-eastern, Thailand. Tropical Biomedicine, 29(3), 339–348. [Google Scholar]
  57. Ya-Umphan P, Cerqueira D, Parker DM, Cottrell G, Poinsignon A, Remoue F, Brengues C, Chareonviriyaphap T, Nosten F, Corbel V. 2017. Use of an Anopheles salivary biomarker to assess malaria transmission risk along the Thailand-Myanmar border. Journal of Infectious Diseases, 215(3), 396–404. [Google Scholar]
  58. Yanmanee S, Seethamchai S, Kuamsab N, Karaphan S, Suwonkerd W, Jongwutiwes S, Putaporntip C. 2023. Natural vectors of Plasmodium knowlesi and other primate, avian and ungulate malaria parasites in Narathiwat Province, Southern Thailand. Scientific Reports, 13(1), 8875. [Google Scholar]
  59. Yongchaitrakul S, Singhasivanon P, Sudathip P, Sattabongkot J, Cui L, Prasittisuk C, Parker D, Phuanukoonnon S. 2022. Knowledge and practices regarding malaria and its prevention and their associated socio-demographic factors among those living along the Thailand-Myanmar border. Southeast Asian Journal of Tropical Medicine and Public Health, 53(6), 551–573. [Google Scholar]

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