Mosquito Attractants.
Ammonia
/ chemistry
Animals
Carbon Dioxide
/ chemistry
Culicidae
/ chemistry
Female
Host-Parasite Interactions
Humans
Lactic Acid
/ chemistry
Male
Mosquito Control
Octanols
/ chemistry
Odorants
Pheromones
/ chemistry
Plant Extracts
/ chemistry
Plants
/ chemistry
Volatile Organic Compounds
/ chemistry
Mosquito
attractant
compound
host odor
volatile
Journal
Journal of chemical ecology
ISSN: 1573-1561
Titre abrégé: J Chem Ecol
Pays: United States
ID NLM: 7505563
Informations de publication
Date de publication:
May 2021
May 2021
Historique:
received:
28
12
2020
accepted:
02
03
2021
revised:
18
02
2021
pubmed:
17
3
2021
medline:
12
8
2021
entrez:
16
3
2021
Statut:
ppublish
Résumé
Vector control and personal protection against anthropophilic mosquitoes mainly rely on the use of insecticides and repellents. The search for mosquito-attractive semiochemicals has been the subject of intense studies for decades, and new compounds or odor blends are regularly proposed as lures for odor-baited traps. We present a comprehensive and up-to-date review of all the studies that have evaluated the attractiveness of volatiles to mosquitoes, including individual chemical compounds, synthetic blends of compounds, or natural host or plant odors. A total of 388 studies were analysed, and our survey highlights the existence of 105 attractants (77 volatile compounds, 17 organism odors, and 11 synthetic blends) that have been proved effective in attracting one or several mosquito species. The exhaustive list of these attractants is presented in various tables, while the most common mosquito attractants - for which effective attractiveness has been demonstrated in numerous studies - are discussed throughout the text. The increasing knowledge on compounds attractive to mosquitoes may now serve as the basis for complementary vector control strategies, such as those involving lure-and-kill traps, or the development of mass trapping. This review also points out the necessity of further improving the search for new volatile attractants, such as new compound blends in specific ratios, considering that mosquito attraction to odors may vary over the life of the mosquito or among species. Finally, the use of mosquito attractants will undoubtedly have an increasingly important role to play in future integrated vector management programs.
Identifiants
pubmed: 33725235
doi: 10.1007/s10886-021-01261-2
pii: 10.1007/s10886-021-01261-2
doi:
Substances chimiques
Octanols
0
Pheromones
0
Plant Extracts
0
Volatile Organic Compounds
0
insect attractants
0
Carbon Dioxide
142M471B3J
Lactic Acid
33X04XA5AT
Ammonia
7664-41-7
1-octen-3-ol
WXB511GE38
Types de publication
Journal Article
Review
Langues
eng
Sous-ensembles de citation
IM
Pagination
351-393Références
Abong’o B, Yu X, Donnelly MJ, Geier M, Gibson G, Gimnig J, ter Kuile F, Lobo NF, Ochomo E, Munga S, Ombok M, Samuels A, Torr SJ, Hawkes FM (2018) Host Decoy Trap (HDT) with cattle odour is highly effective for collection of exophagic malaria vectors. Parasites Vectors 11:1–11
Achee NL, Grieco JP, Vatandoost H et al (2019) Alternative strategies for mosquito-borne arbovirus control. PLoS Negl Trop Dis 13:e0006822
pubmed: 30605475
pmcid: 6317787
Acree F, Turner R, Gouck H, Beroza M, Smith N (1968) L-Lactic acid: a mosquito attractant isolated from humans. Science 161:1346–1347
pubmed: 5673445
Adamczyk K, Garncarczyk A, Antonczak P, Wcislo-Dziadecka D (2020) The foot microbiome. J Cosmet Dermatol 19:1039–1043
pubmed: 32162464
Afify A, Galizia CG (2015) Chemosensory cues for mosquito oviposition site selection. J Med Entomol 52:120–130
pubmed: 26336295
Akaratovic KI, Kiser JP, Gordon S, Abadam CF (2017) Evaluation of the Trapping Performance of Four Biogents AG Traps and Two Lures for the Surveillance of Aedes albopictus and Other Host-Seeking Mosquitoes. J Am Mosq Control Assoc 33:108–115
pubmed: 28590215
Akhoundi M, Jourdain F, Chandre F, Delaunay P, Roiz D (2018) Effectiveness of a field trap barrier system for controlling Aedes albopictus: a “removal trapping” strategy. Parasites Vectors 11:1–7
Allan S, Bernier UR, Kline D (2006) Attraction of mosquitoes to volatiles associated with blood. J Vector Ecol 31:71–79
pubmed: 16859092
Anderson JF, McKnight S, Ferrandino FJ (2012) Aedes japonicus japonicus and associated woodland species attracted to Centers for Disease Control and Prevention miniature light traps baited with carbon dioxide and the Traptech® mosquito lure. J Am Mosq Control Ass 28:184–191
Andreasen M, Birtles A, Curtis C, Wood R (2004) Enhanced blood feeding of Anopheles mosquitoes (Diptera: Culicidae) through membranes with applied host odour. Bull Entomol Res 94:291–295
pubmed: 15191630
Andrianjafy TM, Ramanandraibe VV, Andrianarijaona ET, Ramarosandratana NH, Ravaomanarivo LH, Mavingui P, Lemaire M (2020) Field assessment of 4-hydroxycoumarin as an attractant for anthropophilic Anopheles spp. vectors of malaria in Madagascar. Sci Rep 10:3048
pubmed: 32080255
pmcid: 7033182
Andrianjafy TM, Ravaomanarivo LH, Ramanandraibe VV, Rakotondramanga MF, Mavingui P, Lemaire M (2017) New bioassay to evaluate repellency and attractively of chemical products against adults mosquitoes Aedes albopictus and Culex quinquefasciatus. Ann Comm Med Practice 3:1020–1031
Andrianjafy TM, Ravaomanarivo LH, Ramanandraibe VV, Rakotondramanga MF, Mavingui P, Lemaire M (2018) Synthesis, bioassays and field evaluation of hydroxycoumarins and their alkyl derivatives as repellents or kairomones for Aedes albopictus Skuse (Diptera: Culicidae). J Chem Ecol 44:299–311
pubmed: 29524072
Ansell J, Hamilton K, Pinder M, Walraven G, Lindsay S (2002) Short-range attractiveness of pregnant women to Anopheles gambiae mosquitoes. Trans R Soc Trop Med Hyg 96:113–116
pubmed: 12055794
Ara K, Hama M, Akiba S et al (2006) Foot odor due to microbial metabolism and its control. Can J Microbiol 52:357–364
pubmed: 16699586
Asmare Y, Hill SR, Hopkins RJ, Tekie H, Ignell R (2017) The role of grass volatiles on oviposition site selection by Anopheles arabiensis and Anopheles coluzzii. Malar J 16:1–9
Baak-Baak CM, Rodríguez-Ramírez AD, García-Rejón JE, Ríos-Delgado S, Torres-Estrada JL (2013) Development and laboratory evaluation of chemically-based baited ovitrap for the monitoring of Aedes aegypti. J Vector Ecol 38:175–181
pubmed: 23701623
Bakker JW, Loy DE, Takken W, Hahn BH, Verhulst NO (2020) Attraction of mosquitoes to primate odours and implications for zoonotic Plasmodium transmission. Med Vet Entomol 34:17–26
pubmed: 31420992
Balestrino F, Schaffner F, Forgia D, Paslaru A, Torgerson PR, Mathis A, Veronesi E (2016) Field evaluation of baited traps for surveillance of Aedes japonicus japonicus in Switzerland. Med Vet Entomol 30:64–72
pubmed: 26685872
Bar-Zeev M, Maibach H, Khan A (1977) Studies on the attraction of Aedes aegypti (Diptera: Culicidae) to man. J Med Entomol 14:113–120
pubmed: 903926
Barredo E, DeGennaro M (2020) Not just from blood: mosquito nutrient acquisition from nectar sources. Trends Parasitol 36:473–484
pubmed: 32298634
Barrera R, Amador M, Acevedo V, Caban B, Felix G, Mackay AJ (2014) Use of the CDC autocidal gravid ovitrap to control and prevent outbreaks of Aedes aegypti (Diptera: Culicidae). J Med Entomol 51:145–154
pubmed: 24605464
pmcid: 4631065
Batista EP, Costa EF, Silva AA (2014) Anopheles darlingi (Diptera: Culicidae) displays increased attractiveness to infected individuals with Plasmodium vivax gametocytes. Parasites Vectors 7:1–4
Batista EP, Ngowo H, Opiyo M et al (2018) Field evaluation of the BG-Malaria trap for monitoring malaria vectors in rural Tanzanian villages. PloS one 13:e0205358
pubmed: 30296287
pmcid: 6175526
Batista EP, Ngowo HS, Opiyo M, Shubis GK, Meza FC, Okumu FO, Eiras AE (2017) Semi-field assessment of the BG-Malaria trap for monitoring the African malaria vector, Anopheles arabiensis. PLoS One 12:e0186696
pubmed: 29045484
pmcid: 5646867
Bazin M, Williams CR (2018) Mosquito traps for urban surveillance: collection efficacy and potential for use by citizen scientists. J Vector Ecol 43:98–103
pubmed: 29757507
Beavers G, Hanafi H, Tetreault G (1998) Response of mosquitoes (Diptera: Culicidae) to carbon dioxide and octenol in Egypt. J Egyptian Soc Parasitol 28:303–312
Becker N, Zgomba M, Petric D, Ludwig M (1995) Comparison of carbon dioxide, octenol and a host-odour as mosquito attractants in the Upper Rhine Valley, Germany. Med Vet Entomol 9:377–380
pubmed: 8541587
Beehler J, Millar J, Mulla M (1993) Synergism between chemical attractants and visual cues influencing oviposition of the mosquito, Culex quinquefasciatus (Diptera: Culicidae). J Chem Ecol 19:635–644
pubmed: 24249007
Beehler J, Millar J, Mulla M (1994) Field evaluation of synthetic compounds mediating oviposition in Culex mosquitoes (Diptera: Culicidae). J Chem Ecol 20:281–291
pubmed: 24242053
Bentley MD, Day JF (1989) Chemical ecology and behavioral aspects of mosquito oviposition. Annu Rev Entomol 34:401–421
pubmed: 2564759
Bentley MD, McDaniel IN, Yatagai M, Lee H-P, Maynard R (1979) p-Cresol: an oviposition attractant of Aedes triseriatus. Environ Entomol 8:206–209
Bernier U, Kline D, Schreck C, Yost R, Barnard D (2002) Chemical analysis of human skin emanations: comparison of volatiles from humans that differ in attraction of Aedes aegypti (Diptera: Culicidae). J Am Mosq Control Assoc 18:186–195
pubmed: 12322940
Bernier UR, Kline DL, Allan SA, Barnard DR (2007) Laboratory comparison of Aedes aegypti attraction to human odors and to synthetic human odor compounds and blends. J Am Mosq Control Assoc 23:288–293
pubmed: 17939508
Bernier UR, Kline DL, Barnard DR, Posey KH, Booth MM, Yost RA (2001) Chemical composition that attract arthropods. US Patent No 6, 267, 953, Washington, DC
Bernier UR, Kline DL, Barnard DR, Schreck CE, Yost RA (2000) Analysis of human skin emanations by gas chromatography/mass spectrometry. 2. Identification of volatile compounds that are candidate attractants for the yellow fever mosquito (Aedes aegypti). Anal Chem 72:747–756
pubmed: 10701259
Bernier UR, Kline DL, Posey KH, Booth MM, Yost RA, Barnard DR (2003) Synergistic attraction of Aedes aegypti (L.) to binary blends of L-lactic acid and acetone, dichloromethane, or dimethyl disulfide. J Med Entomol 40:653–656
pubmed: 14596278
Best A, Lieberman DE, Kamilar JM (2019) Diversity and evolution of human eccrine sweat gland density. J Therm Biol 84:331–338
pubmed: 31466771
Bhalala HV, Smith JD, O'Dea BA, Arias JR (2010) The efficacy of the BG-Sentinel™ CO2 nozzle in collecting host-seeking mosquitoes in Fairfax County, Virginia. J Am Mosq Control Assoc 26:226–228
pubmed: 20649135
Blackwell A, Hansson B, Wadhams L, Pickett J (1993) A behavioural and electrophysiological study of ovi position cues for Culex quinquefasciatus. Physiol Entomol 18:343–348
Bohbot JD, Dickens JC (2009) Characterization of an enantioselective odorant receptor in the yellow fever mosquito Aedes aegypti. PLoS One 4:e7032
pubmed: 19753115
pmcid: 2737144
Bonizzoni M, Gasperi G, Chen X, James AA (2013) The invasive mosquito species Aedes albopictus: current knowledge and future perspectives. Trends Parasitol 29:460–468
pubmed: 23916878
pmcid: 3777778
Bosch OJ, Geier M, Boeckh J (2000) Contribution of fatty acids to olfactory host finding of female Aedes aegypti. Chem Senses 25:323–330
pubmed: 10866990
Bowen M (1992) Patterns of sugar feeding in diapausing and nondiapausing Culex pipiens (Diptera: Culicidae) females. J Med Entomol 29:843–849
pubmed: 1404264
Braks M, Anderson R, Knols B (1999) Infochemicals in mosquito host selection: human skin microflora and Plasmodium parasites. Parasitol Today 15:409–413
pubmed: 10481153
Braks M, Meijerink J, Takken W (2001) The response of the malaria mosquito, Anopheles gambiae, to two components of human sweat, ammonia and l-lactic acid, in an olfactometer. Physiol Entomol 26:142–148
Braks MA, Scholte EJ, Takken W, Dekker T (2000) Microbial growth enhances the attractiveness of human sweat for the malaria mosquito, Anopheles gambiae sensu stricto (Diptera: Culicidae). Chemoecology 10:129–134
Braks MA, Takken W (1999) Incubated human sweat but not fresh sweat attracts the malaria mosquito Anopheles gambiae sensu stricto. J Chem Ecol 25:663–672
Brouwer R (1960) Variations in human body odour as a cause of individual differences of attraction for malaria mosquitoes. Trop Geogr Med 12:186–192
Brown A (1951) Factors in the attractiveness of bodies for mosquitoes. Nature 167:202–202
pubmed: 14806426
Brown A, Carmichael A (1961) Lysine and alanine as mosquito attractants. J Econom Entomol 54:317–324
Brown A, Sarkaria D, Thompson R (1951) Studies on the responses of the female Aedes mosquito. Part I.—The search for attractant vapours. Bull Entomol Res 42:105–114
Brown AW (1966) The attraction of mosquitoes to hosts. JAMA 196:249–252
pubmed: 4379555
Burgess L, Brown A (1957) Studies on the Responses of the female Aedes Mosquito: Part VIII.—The attractiveness of beef blood to Aedes aegypti (L.). Bull Entomol Res 48:783–793
Burkett D, Lee WJ, Lee KW et al (2001) Light, carbon dioxide, and octenol-baited mosquito trap and host-seeking activity evaluations for mosquitoes in a malarious area of the Republic of Korea. J Am Mosq Control Assoc 17:196–205
pubmed: 14529088
Burkot T (1988) Non-random host selection by anopheline mosquitoes. Parasitol Today 4:156–162
pubmed: 15463075
Busula AO, Takken W, Loy DE, Hahn BH, Mukabana WR, Verhulst NO (2015) Mosquito host preferences affect their response to synthetic and natural odour blends. Malar J 14:133–142
pubmed: 25889954
pmcid: 4381365
Buttery RG, Kamm JA (1980) Volatile components of alfalfa: possible insect host plant attractants. J Agr Food Chem 28:978–981
Byrd AL, Belkaid Y, Segre JA (2018) The human skin microbiome. Nature Rev Microbiol 16:143
Canyon D, Hii J (1997) Efficacy of carbon dioxide, 1-octen-3-ol, and lactic acid in modified Fay-Prince traps as compared to man-landing catch of Aedes aegypti. J Am Mosq Control Assoc 13:66–70
pubmed: 9152877
Carlson DA, Smith N, Gouck HK, Godwin DR (1973) Yellowfever mosquitoes: compounds related to lactic acid that attract females. J Econom Entomol 66:329–331
Carnevale P, Frézil J, Bosseno M, Le Pont F, Lancien J, Organization WH (1976) Etude de l'agressivité d'Anopheles gambiae A en fonction de l'âge et du sexe des sujets humains. Bull World Health Organization 56:147
Caroprese A, Gabbanini S, Beltramini C, Lucchi E, Valgimigli L (2009) HS-SPME-GC-MS analysis of body odor to test the efficacy of foot deodorant formulations. Skin Res Technol 15:503–510
pubmed: 19832965
Chaiphongpachara T, Chitsawaeng C, Chansukh KK (2019) Comparison of the larvicidal and adult mosquito attractant efficacy between straw mushroom Volvariella volvacea extract and octenol (1-octen-3-ol) on mosquito vectors (Diptera: Culicidae). J Appl Pharm Sci 9:95–99
Chaiphongpachara T, Padidpoo O, Chansukh K, Sumruayphol S (2018) Efficacies of five edible mushroom extracts as odor baits for resting boxes to attract mosquito vectors: a field study in Samut Songkhram province, Thailand. Trop Biomed 35:653–663
pubmed: 33601752
Charpentier MJ, Barthes N, Proffit M, Bessière JM, Grison C (2012) Critical thinking in the chemical ecology of mammalian communication: roadmap for future studies. Funct Ecol 26:769–774
Chen W, Metsälä M, Vaittinen O, Halonen L (2014) The origin of mouth-exhaled ammonia. J Breath Res 8:036003
pubmed: 25080054
Chen Z, Kearney CM (2015) Nectar protein content and attractiveness to Aedes aegypti and Culex pipiens in plants with nectar/insect associations. Acta Trop 146:81–88
pubmed: 25792420
Choo YM, Xu P, Hwang JK et al (2018) Reverse chemical ecology approach for the identification of an oviposition attractant for Culex quinquefasciatus. Proc Natl Acad Sci USA 115:714–719
pubmed: 29311316
Cilek J, Ikediobi CO, Hallmon CF et al (2012) Evaluation of several novel alkynols, alkenols, and selected host odor blends as attractants to female Aedes albopictus and Culex quinquefasciatus. J Am Mosq Control Assoc 28:199–205
pubmed: 23833900
Clyde D, Shute G (1958) Selective feeding habits of anophelines amongst Africans of different ages. Am J Trop Med Hygiene 7:543–545
Codeço CT, Lima AWS, Araújo SC et al (2015) Surveillance of Aedes aegypti: comparison of house index with four alternative traps. PLoS Negl Trop Dis 9:e0003475
pubmed: 25668559
pmcid: 4323346
Cook J, Majeed S, Ignell R, Pickett J, Birkett M, Logan J (2011a) Enantiomeric selectivity in behavioural and electrophysiological responses of Aedes aegypti and Culex quinquefasciatus mosquitoes. Bull Entomol Res 101:541–550
pubmed: 21729394
Cook JI, Majeed S, Ignell R, Pickett JA, Birkett MA, Logan JG (2011b) Enantiomeric selectivity in behavioural and electrophysiological responses of Aedes aegypti and Culex quinquefasciatus mosquitoes. Bull Entomol Res 101:541–550
pubmed: 21729394
Cooper R, Frances S, Popat S, Waterson D (2004) The effectiveness of light, 1-octen-3-ol, and carbon dioxide as attractants for anopheline mosquitoes in Madang Province. Papua New Guinea. J Am Mosq Control Assoc 20:239–242
pubmed: 15532920
Cooperband M, Cardé R (2006) Orientation of Culex mosquitoes to carbon dioxide-baited traps: flight manoeuvres and trapping efficiency. Med Vet Entomol 20:11–26
pubmed: 16608486
Cooperband MF, McElfresh JS, Millar JG, Carde RT (2008) Attraction of female Culex quinquefasciatus Say (Diptera: Culicidae) to odors from chicken feces. J Insect Physiol 54:1184–1192
pubmed: 18634791
Cork A, Park K (1996) Identification of electrophysiologically-active compounds for the malaria mosquito, Anopheles gambiae, in human sweat extracts. Med Vet Entomol 10:269–276
pubmed: 8887339
Cornet S, Nicot A, Rivero A, Gandon S (2013) Malaria infection increases bird attractiveness to uninfected mosquitoes. Ecol Lett 16:323–329
pubmed: 23205903
Costantini C, Birkett MA, Gibson G et al (2001) Electroantennogram and behavioural responses of the malaria vector Anopheles gambiae to human-specific sweat components. Med Vet Entomol 15:259–266
pubmed: 11583442
Costantini C, Gibson G, Sagnon NF, Torre AD, Brady J, Coluzzi M (1996) Mosquito responses to carbon dioxide in a West African Sudan savanna village. Med Vet Entomol 10:220–227
pubmed: 8887331
Costantini C, Sagnon NF, della Torre A, Diallo M, Brady J, Gibson G, Coluzzi M (1998) Odor-mediated host preferences of West African mosquitoes, with particular reference to malaria vectors. Am J Trop Med Hygiene 58:56–63
Crepeau TN, Healy SP, Bartlett-Healy K, Unlu I, Farajollahi A, Fonseca DM (2013) Effects of Biogents Sentinel trap field placement on capture rates of adult Asian tiger mosquitoes. Aedes albopictus. PloS one 8:e60524
Cribellier A, van Erp JA, Hiscox A, Lankheet MJ, van Leeuwen JL, Spitzen J, Muijres FT (2018) Flight behaviour of malaria mosquitoes around odour-baited traps: capture and escape dynamics. Royal Soc Open Sci 5:180246
Crumb S (1922) A Mosquito Attractant. Science (Washington) 4:1426
Curtis C (1986) Fact and fiction in mosquito attraction and repulsion. Parasitol Today 2:316–318
pubmed: 15462748
Czarnowski D, Gorski J, Jóźwiuk J, Boroń-Kaczmarska A (1992) Plasma ammonia is the principal source of ammonia in sweat European. J Appl Physiol Occup Physiol 65:135–137
da Cruz Ferreira DA, Degener CM, de Almeida Marques-Toledo C, Bendati MM, Fetzer LO, Teixeira CP, Eiras ÁE (2017) Meteorological variables and mosquito monitoring are good predictors for infestation trends of Aedes aegypti, the vector of dengue, chikungunya and Zika. Parasites Vectors 10:78
pubmed: 28193291
pmcid: 5307865
da Silva Paixão K, de Castro Pereira I, Lopes Alves Bottini L, Eduardo Eiras Á (2015) Volatile semiochemical-conditioned attraction of the male yellow fever mosquito, Aedes aegypti, to human hosts. J Vector Ecol 40:1–6
pubmed: 26047178
Davis EE, Sokolove PG (1976) Lactic acid-sensitive receptors on the antennae of the mosquito, Aedes aegypti. J Comp Physiol A 105:43–54
Davis TS, Crippen TL, Hofstetter RW, Tomberlin JK (2013) Microbial volatile emissions as insect semiochemicals. J Chem Ecol 39:840–859
pubmed: 23793954
Daykin P, Kellogg F, Wright R (1965) Host-finding and repulsion of Aedes aegypti. Can Entomol 97:239–263
De Boer JG, Robinson A, Powers SJ et al (2017) Odours of Plasmodium falciparum-infected participants influence mosquito-host interactions. Sci Rep 7:1–9
De Jong R, Knols B (1995) Selection of biting sites on man by two malaria mosquito species. Experientia 51:80–84
pubmed: 7843335
De Long DM, Davidson RH, Peffly RL et al (1949) Insect behaviour : mosquito attraction and repellency. Final Summary Report, Project. Office of the Quartermaster-General, Washington, p 272
de Melo DPO, Scherrer LR, Eiras AE (2012) Dengue fever occurrence and vector detection by larval survey, ovitrap and MosquiTRAP: a space-time clusters analysis. PloS one 7:e42125
pubmed: 22848729
pmcid: 3405049
De Moraes CM, Stanczyk NM, Betz HS, Pulido H, Sim DG, Read AF, Mescher MC (2014) Malaria-induced changes in host odors enhance mosquito attraction. Proc Natl Acad Sci 111:11079–11084
pubmed: 24982164
De Moraes CM, Wanjiku C, Stanczyk NM et al (2018) Volatile biomarkers of symptomatic and asymptomatic malaria infection in humans. Proc Natl Acad Sci 115:5780–5785
pubmed: 29760095
Debboun M, Strickman D (2013) Insect repellents and associated personal protection for a reduction in human disease. Med Vet Entomol 27:1–9
pubmed: 22624654
Degener C, Eiras AE, Azara TMF et al (2014) Evaluation of the effectiveness of mass trapping with BG-sentinel traps for dengue vector control: a cluster randomized controlled trial in Manaus, Brazil. J Med Entomol 51:408–420
pubmed: 24724291
Degener CM, Geier M, Kline D et al (2019) Field trials to evaluate the effectiveness of the Biogents®-Sweetscent lure in combination with several commercial mosquito traps and to assess the effectiveness of the Biogents-Mosquitaire trap with and without carbon dioxide. J Am Mosq Control Assoc 35:32–39
pubmed: 31442187
DeGennaro M, McBride CS, Seeholzer L et al (2013) orco mutant mosquitoes lose strong preference for humans and are not repelled by volatile DEET. Nature 498:487–491
pubmed: 23719379
pmcid: 3696029
Dekker T, Carde RT (2011) Moment-to-moment flight manoeuvres of the female yellow fever mosquito (Aedes aegypti L.) in response to plumes of carbon dioxide and human skin odour. J Exp Biol 214:3480–3494
pubmed: 21957112
Dekker T, Geier M, Carde RT (2005) Carbon dioxide instantly sensitizes female yellow fever mosquitoes to human skin odours. J Exp Biol 208:2963–2972
pubmed: 16043601
Dekker T, Steib B, Cardé R, Geier M (2002) L-lactic acid: a human-signifying host cue for the anthropophilic mosquito Anopheles gambiae. Med Vet Entomol 16:91–98
pubmed: 11963986
Dekker T, Takken W (1998) Differential responses of mosquito sibling species Anopheles arabiensis and An. quadriannulatus to carbon dioxide, a man or a calf. Med Vet Entomol 12:136–140
pubmed: 9622366
Dekker T, Takken W, Knols BG, Bouman E, van de Laak S, de Bever A, Huisman PW (1998) Selection of biting sites on a human host by Anopheles gambiae ss, An. arabiensis and An. quadriannulatus. Entomol Exp Appl 87:295-300
Derbyshire PJ, Barr H, Davis F, Higson SP (2012) Lactate in human sweat: a critical review of research to the present day. J Physiol Sci 62:429–440
pubmed: 22678934
Dethier V, Browne BL, Smith CN (1960) The designation of chemicals in terms of the responses they elicit from insects. J Econom Entomol 53:134–136
Diaz-Santiz E, Rojas JC, Casas-Martinez M, Cruz-Lopez L, Malo EA (2020) Rat volatiles as an attractant source for the Asian tiger mosquito, Aedes albopictus. Sci Rep 10:5170
pubmed: 32198359
pmcid: 7083917
Dickschat JS (2017) Fungal volatiles–a survey from edible mushrooms to moulds. Nat Prod Rep 34:310–328
pubmed: 28205661
Diez-Fernandez A, Martinez-de la Puente J, Gangoso L, Lopez P, Soriguer R, Martin J, Figuerola J (2020) Mosquitoes are attracted by the odour of Plasmodium-infected birds. Int J Parasitol
Ding YM, Hu Y, Yu BT, Mo XC, Mo JC (2016) Laboratory evaluation of differential attraction of Culex pipiens pallens to fruit-based sugar baits. Acta Trop 163:20–25
pubmed: 27456936
Dormont L, Bessiere JM, Cohuet A (2013) Human skin volatiles: a review. J Chem Ecol 39:569–578
pubmed: 23615881
Duchemin JB, Tsy JMLP, Rabarison P, Roux J, Coluzzi M, Costantini C (2001) Zoophily of Anopheles arabiensis and An. gambiae in Madagascar demonstrated by odour-baited entry traps. Med Vet Entomol 15:50–57
pubmed: 11297101
Duffield GE, Acri DJ, George GF, Sheppard AD, Beebe NW, Ritchie SA, Burkot TR (2019) Diel flight activity of wild-caught Anopheles farauti (ss) and An. hinesorum malaria mosquitoes from northern Queensland, Australia. Parasites Vectors 12(48)
Duvall LB, Ramos-Espiritu L, Barsoum KE, Glickman JF, Vosshall LB (2019) Small-molecule agonists of Aedes aegypti neuropeptide Y receptor block mosquito biting. Cell 176:687–701
pubmed: 30735632
pmcid: 6369589
Dye-Braumuller K, Fredregill C, Debboun M (2020) Mosquito control. In: Mosquitoes, Communities, and Public Health in Texas. pp 249-278.
Edman JD (1979) Orientation of some Florida mosquitoes (Diptera: Culicidae) toward small vertebrates and carbon dioxide in the field. J Med Entomol 15:292–296
Eiras Á, Rose A, Geier M (2004) New tools for monitoring gravid females of the mosquitoes Aedes aegypti and Aedes albopictus (Diptera: Culicidae), vectors of dengue and other arboviral diseases International. J Med Entomol 293(51)
Eiras A, Santanna A (2001) Atraentes de Oviposição de Mosquitos. Patente; Privilégio e Inovação. n. PI0106701-0 Atraentes de Oviposição de Mosquitos. 20 de dez de:2001
Eiras AE, Jepson P (1994) Responses of female Aedes aegypti (Diptera: Culicidae) to host odours and convection currents using an olfactometer bioassay. Bull Entomol Res 84:207–211
Eiras AE, Jepson PC (1991) Host location by Aedes aegypti (Diptera: Culicidae): a wind tunnel study of chemical cues. Bull Entomol Res 81:151–160
Eiras ÁE, Resende MC (2009) Preliminary evaluation of the" Dengue-MI" technology for Aedes aegypti monitoring and control. Cadernos de Saúde Pública 25:S45–S58
pubmed: 19287866
El-Sisi AG, Mahmoud HI, Abdel-Hamid YM, Moselh WA, Taha RH (2019) Laboratory evaluation of some local components as attractants to the mosquito, Culex pipiens females. Egyptian Acad J Biol Sci E Med Entomol Parasitol 11:75–85
Emami SN, Lindberg BG, Hua S et al (2017) A key malaria metabolite modulates vector blood seeking, feeding, and susceptibility to infection. Science 355:1076–1080
pubmed: 28183997
Englbrecht C, Gordon S, Venturelli C, Rose A, Geier M (2015) Evaluation of BG-Sentinel trap as a management tool to reduce Aedes albopictus nuisance in an urban environment in Italy. J Am Mosq Control Assoc 31:16–25
pubmed: 25843172
Erb M, Veyrat N, Robert CA, Xu H, Frey M, Ton J, Turlings TC (2015) Indole is an essential herbivore-induced volatile priming signal in maize. Nature Comm 6:1–10
Essen PV, Kemme J, Ritchie S, Kay B (1994) Differential responses of Aedes and Culex mosquitoes to octenol or light in combination with carbon dioxide in Queensland, Australia. Med Vet Entomol 8:63–67
pubmed: 8161847
Evans MV, Hintz CW, Jones L, Shiau J, Solano N, Drake JM, Murdock CC (2019) Microclimate and larval habitat density predict adult Aedes albopictus abundance in urban areas. Am J Trop Med Hygiene 101:362–370
Farajollahi A, Kesavaraju B, Price DC, Williams GM, Healy SP, Gaugler R, Nelder MP (2009) Field efficacy of BG-Sentinel and industry-standard traps for Aedes albopictus (Diptera: Culicidae) and West Nile virus surveillance. J Med Entomol 46:919–925
pubmed: 19645298
Fávaro EA, Dibo MR, Mondini A et al (2006) Physiological state of Aedes (Stegomyia) aegypti mosquitoes captured with MosquiTRAPs™ in Mirassol, São Paulo, Brazil. J Vector Ecol 31:285–291
pubmed: 17249346
Fernandez-Grandon GM, Gezan SA, Armour JA, Pickett JA, Logan JG (2015) Heritability of attractiveness to mosquitoes. PLoS One 10:e0122716
pubmed: 25901606
pmcid: 4406498
Fierer N, Hamady M, Lauber CL, Knight R (2008) The influence of sex, handedness, and washing on the diversity of hand surface bacteria. Proc Natl Acad Sci 105:17994–17999
pubmed: 19004758
Foster WA (1995) Mosquito sugar feeding and reproductive energetics. Annu Rev Entomol 40:443–474
pubmed: 7810991
Foster W, Takken W (2004a) Nectar-related vs. human-related volatiles: behavioural response and choice by female and male Anopheles gambiae (Diptera: Culicidae) between emergence and first feeding. Bull Entomol Res 94:145–157
pubmed: 15153297
Foster WA, Takken W (2004b) Nectar-related vs. human-related volatiles: behavioural response and choice by female and male Anopheles gambiae (Diptera: Culicidae) between emergence and first feeding. Bull Entomol Res 94:145–157
pubmed: 15153297
Frei J, Krober T, Troccaz M, Starkenmann C, Guerin PM (2017) Behavioral response of the malaria mosquito, Anopheles gambiae, to human sweat inoculated with axilla bacteria and to volatiles composing human axillary odor. Chem Senses 42:121–131
pubmed: 27789516
Gallagher M, Wysocki CJ, Leyden JJ, Spielman A, Sun X, Preti G (2008) Analyses of volatile organic compounds from human skin. British J Dermatol 159:780–791
Ganesan K, Mendki MJ, Suryanarayana MV, Prakash S, Malhotra RC (2006) Studies of Aedes aegypti (Diptera: Culicidae) ovipositional responses to newly identified semiochemicals from conspecific eggs. Austral J Entomol 45:75–80
Geier M, Boeckh J (1999) A new Y-tube olfactometer for mosquitoes to measure the attractiveness of host odours. Entomol Exp Appl 92:9–19
Geier M, Bosch OJ, Boeckh J (1999a) Ammonia as an attractive component of host odour for the yellow fever mosquito, Aedes aegypti. Chem Senses 24:647–653
Geier M, Bosch OJ, Boeckh J (1999b) Influence of odour plume structure on upwind flight of mosquitoes towards hosts. J Exp Biol 202:1639–1648
pubmed: 10333509
Geier M, Bosh O, Steib B, Rose A, Boeckh J (2002) Odour-guides host finding mosquitoes: identification of new attractants on human skin. In: Proc Int Conf Urban pests, 2002. Citeseer, pp 37-46
Geier M, Rose A, Eiras A (2004a) Insektenfalle. Worldwide patent no. WO 04/054358 A2
Geier M, Rose A, Eiras Á (2004b) A new lure for host-seeking anthropophilic mosquitoes and a novel type of a simple, non-CO2 mosquito trap. Int J Med Microbiol 293:50
Geier M, Sass H, Boeckh J (1996) A search for components in human body odour that attract females of Aedes aegypti. In: Olfaction in mosquitoes-host interactions. Ciba Fundation Symposium. pp 132-148
Ghaninia M, Majeed S, Dekker T, Hill SR, Ignell R (2019) Hold your breath - Differential behavioral and sensory acuity of mosquitoes to acetone and carbon dioxide. PLoS One 14:e0226815
pubmed: 31887129
pmcid: 6936819
Gillies M (1980) The role of carbon dioxide in host-finding by mosquitoes (Diptera: Culicidae): a review. Bull Entomol Res 70:525–532
Gillies M, Wilkes T (1969) A comparison of the range of attraction of animal baits and of carbon dioxide for some West African mosquitoes. Bull Entomol Res 59:441–456
pubmed: 4393126
Gillies M, Wilkes T (1970) The range of attraction of single baits for some West African mosquitoes. Bull Entomol Res 60:225–235
pubmed: 22894841
Gjullin C (1961) Oviposition responses of Culex pipiens quinquefasciatus Say to waters treated with various chemicals. Mosq News 21:2
Gjullin C, Johnsen J, Plapp J (1965) The effect of odors released by various waters on the oviposition sites selected by two species of Culex. Mosq News 25:3
Gladden L (2004) Lactate metabolism: a new paradigm for the third millennium. J Physiol 558:5–30
pubmed: 15131240
pmcid: 1664920
Gonzalez PV, González Audino PA, Masuh HM (2014) Electrophysiological and behavioural response of Aedes albopictus to n-heinecosane, an ovipositional pheromone of Aedes aegypti. Entomol Exp Appl 151:191–197
Gouagna LC, Poueme RS, Dabiré KR, Ouédraogo JB, Fontenille D, Simard F (2010) Patterns of sugar feeding and host plant preferences in adult males of An. gambiae (Diptera: Culicidae). J Vector Ecol 35:267–276
pubmed: 21175931
Govella NJ, Maliti DF, Mlwale AT et al (2016) An improved mosquito electrocuting trap that safely reproduces epidemiologically relevant metrics of mosquito human-feeding behaviours as determined by human landing catch. Malar J 15:465
pubmed: 27618941
pmcid: 5020444
Grice EA, Kong HH, Conlan S et al (2009) Topographical and temporal diversity of the human skin microbiome. Science 324:1190–1192
pubmed: 19478181
pmcid: 2805064
Grison C, Carrasco D, Pelissier F, Moderc A (2020) Reflexion on bio-sourced mosquito repellents: nature, activity and preparation, Front Ecol Evol 8
Guha L, Seenivasagan T, Iqbal ST, Agrawal OP, Parashar BD (2014) Behavioral and electrophysiological responses of Aedes albopictus to certain acids and alcohols present in human skin emanations. Parasitol Res 113:3781–3787
pubmed: 25049052
Haddow A (1942) The mosquito fauna and climate of native huts at Kisumu, Kenya. Bull Entomol Res 33:91–142
Hall D, Beevor P, Cork A, Nesbitt BF, Vale G (1984) 1-Octen-3-ol. A potent olfactory stimulant and attractant for tsetse isolated from cattle odours. Int J Trop Insect Sci 5:335–339
Hao H, Sun J, Dai J (2012) Preliminary analysis of several attractants and spatial repellents for the mosquito, Aedes albopictus using an olfactometer. J Insect Sci 12:76
pubmed: 23418948
pmcid: 3593697
Hao H, Sun J, Dai J (2013) Dose-dependent behavioral response of the mosquito Aedes albopictus to floral odorous compounds. J Insect Sci 13:127
pubmed: 24779928
pmcid: 4014037
Hapairai LK, Joseph H, Sang MAC et al (2013) Field evaluation of selected traps and lures for monitoring the filarial and arbovirus vector, Aedes polynesiensis (Diptera: Culicidae), in French Polynesia. J Med Entomol 50:731–739
pubmed: 23926770
Hawaria D, Santiago D, Yewhalaw D (2016) Efficient attractants and simple odor-baited sticky trap for surveillance of Anopheles arabiensis Patton mosquito in Ethiopia. J Inf Develop Countries 10:82–89
Hawkes F, Young S, Gibson G (2012) Modification of spontaneous activity patterns in the malaria vector Anopheles gambiae sensu stricto when presented with host-associated stimuli. Physiol Entomol 37:233–240
Hawkes FM, Dabire RK, Sawadogo SP, Torr SJ, Gibson G (2017) Exploiting Anopheles responses to thermal, odour and visual stimuli to improve surveillance and control of malaria. Sci Rep 7:17283
pubmed: 29229938
pmcid: 5725576
Headlee TJ (1934) Mosquito work in New Jersey for the year 1933. Proc New Jers Mosq Exterm Assoc 21:8–37
Healy T, Copland M (1995) Activation of Anopheles gambiae mosquitoes by carbon dioxide and human breath. Med Vet Entomol 9:331–336
pubmed: 7548953
Healy T, Copland M (2000) Human sweat and 2-oxopentanoic acid elicit a landing response from Anopheles gambiae. Med Vet Entomol 14:195–200
pubmed: 10872864
Healy T, Copland M, Cork A, Przyborowska A, Halket J (2002) Landing responses of Anopheles gambiae elicited by oxocarboxylic acids. Med Vet Entomol 16:126–132
pubmed: 12109705
Healy T, Jepson P (1988) The location of floral nectar sources by mosquitoes: the long-range responses of Anopheles arabiensis Patton (Diptera: Culicidae) to Achillea millefolium flowers and isolated floral odour. Bull Entomol Res 78:651–657
Himeidan YE, Elbashir MI, Adam I (2004) Attractiveness of pregnant women to the malaria vector, Anopheles arabiensis, in Sudan. Ann Trop Med Parasitol 98:631–633
pubmed: 15324469
Hiscox A, Otieno B, Kibet A et al (2014) Development and optimization of the Suna trap as a tool for mosquito monitoring and control. Mal J 13:257
Hiwat H, Andriessen R, Md R, Koenraadt CJM, Takken W (2011) Carbon dioxide baited trap catches do not correlate with human landing collections of Anopheles aquasalis in Suriname. Memórias do Instituto Oswaldo Cruz 106:360–364
pubmed: 21655826
Hoel D, Kline D, Allan S, Grant A (2007) Evaluation of carbon dioxide, 1-octen-3-ol, and lactic acid as baits in mosquito magnet™ pro traps for Aedes albopictus in north central Florida. J Am Mosq Control Assoc 23:11–18
pubmed: 17536362
Hoel DF, Dunford JC, Kline DL et al (2015) A Comparison of carbon dioxide sources for mosquito capture in Centers for Disease Control and Prevention light traps on the Florida Gulf Coast. J Am Mosq Control Assoc 31:248–258
pubmed: 26375906
Hoel DF, Marika JA, Dunford JC, Irish SR, Geier M, Obermayr U, Wirtz RA (2014a) Optimizing collection of Anopheles gambiae s.s. (Diptera: Culicidae) in Biogents Sentinel traps. J Med Entomol 51:1268–1275
pubmed: 26309317
Hoel DF, Marika JA, Dunford JC, Irish SR, Geier M, Obermayr U, Wirtz RA (2014b) Optimizing collection of Anopheles gambiae ss (Diptera: Culicidae) in biogents sentinel traps. J Med Entomol 51:1268–1275
pubmed: 26309317
Homan T, Hiscox A, Mweresa CK et al (2016) The effect of mass mosquito trapping on malaria transmission and disease burden (SolarMal): a stepped-wedge cluster-randomised trial. TLancet 388:1193–1201
Howlett F (1910) The influence of temperature upon the biting of mosquitoes. Parasitology 3:479–484
Huffaker CB (1942) Developments in mosquito control: tests with carbon dioxide and light as attractants for mosquitoes, with species emphasis on the malaria mosquito, Anopheles quadrimaculatus. Mosq News 2:28–31
Huffaker CB, Back RC (1943) A study of methods of sampling mosquito populations. J Econom Entomol 36:561–569
Ibáñez-Justicia A, Smitz N, den Hartog W et al (2020) Detection of exotic mosquito species (Diptera: Culicidae) at international airports in Europe. Int J Environ Res Public Health 17:3450
pmcid: 7277938
Irish S, Batengana B, Eiras A, Cameron M (2015) Evaluation of the AtrAedes™ lure for collection of Culex quinquefasciatus in gravid traps. J Am Mosq Control Assoc 31:107–109
pubmed: 25843185
Irish SR, Chandre F, N'Guessan R (2008) Comparison of octenol-and BG Lure®-baited Biogents Sentinel traps and an encephalitis virus surveillance trap in Portland. J Am Mosq Control Assoc 24:393–398
pubmed: 18939691
Jackson TC, Zhang YV, Sime PJ, Phipps RP, Kottmann RM (2017) Development of an accurate and sensitive method for lactate analysis in exhaled breath condensate by LC MS/MS. J Chrom B 1061:468–473
Jacob JW, Tchouassi DP, Lagat ZO, Mathenge EM, Mweresa CK, Torto B (2018) Independent and interactive effect of plant-and mammalian-based odors on the response of the malaria vector, Anopheles gambiae. Acta trop 185:98–106
pubmed: 29709631
Jaleta KT, Hill SR, Birgersson G, Tekie H, Ignell R (2016) Chicken volatiles repel host-seeking malaria mosquitoes. Malaria J 15:1–9
James A, Casey J, Hyliands D, Mycock G (2004) Fatty acid metabolism by cutaneous bacteria and its role in axillary malodour. World J Microbiol Biotechn 20:787–793
James AG, Austin CJ, Cox DS, Taylor D, Calvert R (2013) Microbiological and biochemical origins of human axillary odour. FEMS Microbiol Ecol 83:527–540
pubmed: 23278215
Jawara M, Awolola TS, Pinder M, Jeffries D, Smallegange RC, Takken W, Conway DJ (2011) Field testing of different chemical combinations as odour baits for trapping wild mosquitoes in The Gambia. PLoS One 6:e19676
pubmed: 21637337
pmcid: 3102657
Jawara M, Smallegange RC, Jeffries D et al (2009) Optimizing odor-baited trap methods for collecting mosquitoes during the malaria season in The Gambia. PLoS One 4:e8167
pubmed: 19997640
pmcid: 2780730
Jerry DCT, Mohammed T, Mohammed A (2017) Yeast-generated CO
Jhumur US, Dötterl S, Jürgens A (2006) Naive and conditioned responses of Culex pipiens pipiens biotype molestus (Diptera: Culicidae) to flower odors. J Med Entomol 43:1164–1170
pubmed: 17162948
Jhumur US, Dötterl S, Jürgens A (2007) Electrophysiological and behavioural responses of mosquitoes to volatiles of Silene otites (Caryophyllaceae). Arthropod-Plant Interact 1:245–254
Johnson BJ, Ritchie SA, Fonseca DM (2017) The state of the art of lethal oviposition trap-based mass interventions for arboviral control. Insects 8:5
pmcid: 5371933
Kawada H, Honda S, Takagi M (2007) Comparative laboratory study on the reaction of Aedes aegypti and Aedes albopictus to different attractive cues in a mosquito trap. J Med Entomol 44:427–432
pubmed: 17547227
Kearney J, Harnby D, Gowland G, Holland K (1984) The follicular distribution and abundance of resident bacteria on human skin. Microbiol 130:797–801
Kelly M, Su C-Y, Schaber C, Crowley JR, Hsu F-F, Carlson JR, Odom AR (2015) Malaria parasites produce volatile mosquito attractants. MBio 6:2
Kemibala EE, Mafra-Neto A, Dekker T et al (2020) A zooprophylaxis strategy using L-lactic acid (Abate) to divert host-seeking malaria vectors from human host to treated non-host animals. Malar J 19:52
pubmed: 32000782
pmcid: 6993509
Kemme J, Van Essen P, Ritchie S, Kay B (1993) Response of mosquitoes to carbon dioxide and 1-octen-3-ol in southeast Queensland. Aus J Am Mosq Control Assoc 9:431–435
Khan A, Maibach HI, Strauss WG (1969) Gross variations in the response to man among yellow-fever mosquito populations in the laboratory. J Econom Entomol 62:96–98
Kitau J, Pates H, Rwegoshora TR et al (2010) The effect of Mosquito Magnet® Liberty Plus trap on the human mosquito biting rate under semi-field conditions. J Am Mosq Control Assoc 26:287–294
pubmed: 21033055
Kline D, Allan S, Bernier U, Welch C (2007) Evaluation of the enantiomers of 1-octen-3-ol and 1-octyn-3-ol as attractants for mosquitoes associated with a freshwater swamp in Florida. USA. Med Vet Entomol 21:323–331
Kline D, Dame D, Meisch M (1991a) Evaluation of 1-octen-3-ol and carbon dioxide as attractants for mosquitoes associated with irrigated rice fields in Arkansas. J Am Mosq Control Assoc 7:165–169
pubmed: 1680151
Kline D, Takken W, Wood J, Carlson D (1990a) Field studies on the potential of butanone, carbon dioxide, honey extract, l-octen-3-ol, L-lactic acid and phenols as attractants for mosquitoes. Med Vet Entomol 4:383–391
pubmed: 1983456
Kline D, Wood J, Cornell J (1991b) Interactive effects of l-octen-3-ol and carbon dioxide on mosquito (Diptera: Culicidae) surveillance and control. J Med Entomol 28:254–258
pubmed: 1905355
Kline D, Wood J, Morris C (1990b) Evaluation of 1-octen-3-ol as an attractant for Coquillettidia perturbans, Mansonia spp. and Culex spp. associated with phosphate mining operations. J Am Mosq Control Assoc 6:605–611
pubmed: 1983016
Kline DL (1999) Comparison of two American biophysics mosquito traps: the professional and a new counterflow geometry trap. J Am Mosq Control Assoc - Mosq News 15:276–282
Kline DL (2002) Evaluation of various models of propane-powered mosquito traps. J Vector Ecol 27:1–7
pubmed: 12125861
Kline DL (2006) Traps and trapping techniques for adult mosquito control. J Am Mosq Control Assoc 22:490–496
pubmed: 17067051
Kline DL (2007) Semiochemicals, traps/targets and mass trapping technology for mosquito management. J Am Mosq Control Assoc 23:241–251
pubmed: 17853609
Kline DL, Bernier UR, Hogsette JA (2012) Efficacy of three attractant blends tested in combination with carbon dioxide against natural populations of mosquitoes and biting flies at the Lower Suwannee Wildlife Refuge. J Am Mosq Control Assoc 28:123–127
pubmed: 22894125
Kline DL, Mann MO (1998) Evaluation of butanone, carbon dioxide, and 1-octen-3-ol as attractants for mosquitoes associated with north central Florida bay and cypress swamps. J Am Mosq Control Assoc 14:289–297
pubmed: 9813827
Klun JA, Kramer M, Debboun M (2013) Four simple stimuli that induce host-seeking and blood-feeding behaviors in two mosquito species, with a clue to DEET's mode of action. J Vector Ecol 38:143–153
pubmed: 23701619
Knols B, De Jong R (1996) Limburger cheese as an attractant for the malaria mosquito Anopheles gambiae ss. Parasitol Today 12:159–161
pubmed: 15275226
Knols BG, de Jong R, Takken W (1995) Differential attractiveness of isolated humans to mosquitoes in Tanzania. Trans Roy Soc Trop Med Hygiene 89:604–606
Knols BG, van Loon JJA, Cork A et al (1997) Behavioural and electrophysiological responses of the female malaria mosquito Anopheles gambiae (Diptera: Culicidae) to Limburger cheese volatiles. Bull Entomol Res 87:151–159
Knudsen JT, Eriksson R, Gershenzon J, Ståhl B (2006) Diversity and distribution of floral scent. Bot Rev 72(1)
Kramer WL, Mulla MS (1979) Oviposition attractants and repellents of mosquitoes: oviposition responses of Culex mosquitoes to organic infusions. Environ Entomol 8:1111–1117
Kröckel U, Rose A, Eiras ÁE, Geier M (2006) New tools for surveillance of adult yellow fever mosquitoes: comparison of trap catches with human landing rates in an urban environment. J Am Mosq Control Assoc 22:229–238
pubmed: 17019768
Kusakabe Y, Ikeshoji T (1990) Comparative attractancy of physical and chemical stimuli to aedine mosquitoes. Med Entomol Zool 41:219–225
Kweka EJ, Mahande AM (2009) Comparative evaluation of four mosquitoes sampling methods in rice irrigation schemes of lower Moshi northern Tanzania. Malaria J 8:1–5
Kweka EJ, Mwang'onde BJ, Kimaro E, Msangi S, Massenga CP, Mahande AM (2009) A resting box for outdoor sampling of adult Anopheles arabiensis in rice irrigation schemes of lower Moshi, northern Tanzania. Malaria J 8:1–6
Laarman J (1958) The host-seeking behaviour of anopheline mosquitoes. Trop Geog Med 10:293–305
Lacey ES, Carde RT (2011) Activation, orientation and landing of female Culex quinquefasciatus in response to carbon dioxide and odour from human feet: 3-D flight analysis in a wind tunnel. Med Vet Entomol 25:94–103
pubmed: 21118282
Lacey ES, Carde RT (2012) Location of and landing on a source of human body odour by female Culex quinquefasciatus in still and moving air. Physiol Entomol 37:153–159
pubmed: 26472918
pmcid: 4603279
Lacroix R, Mukabana WR, Gouagna LC, Koella JC (2005) Malaria infection increases attractiveness of humans to mosquitoes. PLoS Biol 3:e298
pubmed: 16076240
pmcid: 1182690
Lahondere C, Vinauger C, Okubo RP, Wolff GH, Chan JK, Akbari OS, Riffell JA (2020) The olfactory basis of orchid pollination by mosquitoes. Proc Natl Acad Sci USA 117:708–716
pubmed: 31871198
Lawal O, Ahmed WM, Nijsen TM, Goodacre R, Fowler SJ (2017) Exhaled breath analysis: a review of ‘breath-taking’methods for off-line analysis. Metabolomics 13:110
pubmed: 28867989
pmcid: 5563344
Le Goff G, Damiens D, Ruttee AH et al (2017) Comparison of efficiency of BG-Sentinel traps baited with mice, mouse-litter, and CO
Leal HM, Hwang JK, Tan K, Leal WS (2017) Attraction of Culex mosquitoes to aldehydes from human emanations. Sci Rep 7:1–10
Lefevre T, Gouagna LC, Dabire KR, Elguero E, Fontenille D, Costantini C, Thomas F (2009) Evolutionary lability of odour-mediated host preference by the malaria vector Anopheles gambiae. Trop Med Int Health 14:228–236
pubmed: 19187525
Lega J, Brown H, Barrera R (2020) A 70% reduction in mosquito populations does not require removal of 70% of mosquitoes. J Med Entomol 57:1668–1670
pubmed: 32300803
pmcid: 7566742
Li CX, Dong YD, Zhang XL et al (2010) Evaluation of octenol and Lurex as baits in Mosquito Magnet Pro traps to collect vector mosquitoes in China. J Am Mosq Control Assoc 26:449–451
pubmed: 21290944
Lima JBP, Galardo AKR, Bastos LS, Lima AWS, Rosa-Freitas MG (2017) MosqTent: An individual portable protective double-chamber mosquito trap for anthropophilic mosquitoes. PLoS Negl Trop Dis 11:e0005245
pubmed: 28278171
pmcid: 5344318
Lindh JM, Okal MN, Herrera-Varela M, Borg-Karlson AK, Torto B, Lindsay SW, Fillinger U (2015) Discovery of an oviposition attractant for gravid malaria vectors of the Anopheles gambiae species complex. Malar J 14:119
pubmed: 25885703
pmcid: 4404675
Lindsay S, Adiamah J, Miller J, Pleass R, Armstrong J (1993) Variation in attractiveness of human subjects to malaria mosquitoes (Diptera: Culicidae) in The Gambia. J Med Entomol 30:368–373
pubmed: 8459413
Lindsay S, Ansell J, Selman C, Cox V, Hamilton K, Walraven G (2000) Effect of pregnancy on exposure to malaria mosquitoes. Lancet 355:1972
pubmed: 10859048
Liu H, Dixon D, Bibbs CS, Xue R-D (2019) Autocidal gravid ovitrap incorporation with attractants for control of gravid and host-seeking Aedes aegypti (Diptera: Culicidae). J Med Entomol 56:576–578
pubmed: 30462293
Liu N (2015) Insecticide resistance in mosquitoes: impact, mechanisms, and research directions. Annu Rev Entomol 60:537–559
pubmed: 25564745
Logan JG, Birkett MA, Clark SJ et al (2008) Identification of human-derived volatile chemicals that interfere with attraction of Aedes aegypti mosquitoes. J Chem Ecol 34:308
pubmed: 18306972
Logan JG, Stanczyk NM, Hassanali A et al (2010) Arm-in-cage testing of natural human-derived mosquito repellents. Malar J 9:239
pubmed: 20727149
pmcid: 2931528
Lorenz LM, Keane A, Moore JD et al (2013) Taxis assays measure directional movement of mosquitoes to olfactory cues. Parasites Vectors 6:131
pubmed: 23642138
pmcid: 3652730
Lothrop HD, Wheeler SS, Fang Y, Reisen WK (2012) Use of scented sugar bait stations to track mosquito-borne arbovirus transmission in California. J Med Entomol 49:1466–1472
pubmed: 23270177
pmcid: 3544359
Maciel-de-Freitas R, Eiras ÁE, Lourenço-de-Oliveira R (2006) Field evaluation of effectiveness of the BG-Sentinel, a new trap for capturing adult Aedes aegypti (Diptera: Culicidae). Mem Inst Oswaldo Cruz 101:321–325
pubmed: 16862330
Maciel-de-Freitas R, Peres RC, Alves F, Brandolini MB (2008) Mosquito traps designed to capture Aedes aegypti (Diptera: Culicidae) females: preliminary comparison of Adultrap, MosquiTRAP and backpack aspirator efficiency in a dengue-endemic area of Brazil. Mem Inst Oswaldo Cruz 103:602–605
pubmed: 18949333
Maciel-de-Freitas R, Lourenço-de-Oliveira R (2011) Does targeting key-containers effectively reduce Aedes aegypti population density? Trop Med Int Health 16:965–973
pubmed: 21605290
Mackay AJ, Amador M, Barrera R (2013) An improved autocidal gravid ovitrap for the control and surveillance of Aedes aegypti. Parasites Vectors 6:225
pubmed: 23919568
pmcid: 3750875
Mafra-Neto A, Dekker T (2019) Novel odor-based strategies for integrated management of vectors of disease. Curr Opin Insect Sci 34:105–111
pubmed: 31247410
pmcid: 6717672
Maibach HI, Skinner W, Strauss WG, Khan A (1966) Factors that attract and repel mosquitoes in human skin. JAMA 196:263–266
pubmed: 4379556
Majeed S, Hill SR, Birgersson G, Ignell R (2016) Detection and perception of generic host volatiles by mosquitoes modulate host preference: context dependence of (R)-1-octen-3-ol. R Soc Open Sci 3:160467
pubmed: 28018630
pmcid: 5180128
Majeed S, Hill SR, Dekker T, Ignell R (2017) Detection and perception of generic host volatiles by mosquitoes: responses to CO2 constrains host-seeking behaviour. R Soc Open Sci 4:170189
pubmed: 28573028
pmcid: 5451829
Majeed S, Hill SR, Ignell R (2014) Impact of elevated CO
pubmed: 24198270
Marek E, Volke J, Hawener I, Platen P, Mückenhoff K, Marek W (2010) Measurements of lactate in exhaled breath condensate at rest and after maximal exercise in young and healthy subjects. J Breath Res 4:017105
pubmed: 21386210
Mathew N, Ayyanar E, Shanmugavelu S, Muthuswamy K (2013) Mosquito attractant blends to trap host seeking Aedes aegypti. Parasitol Res 112:1305–1312
pubmed: 23306388
Matowo NS, Koekemoer LL, Moore SJ, Mmbando AS, Mapua SA, Coetzee M, Okumu FO (2016) Combining synthetic human odours and low-cost electrocuting grids to attract and kill outdoor-biting mosquitoes: field and semi-field evaluation of an improved mosquito landing box. PloS one 11:e0145653
pubmed: 26789733
pmcid: 4720432
Mauer DJ, Rowley WA (1999) Attraction of Culex pipiens pipiens (Diptera: Culicidae) to flower volatiles. J Med Entomol 36:503–507
pubmed: 10467780
Mayer M, James J (1969) Attraction of Aedes aegypti (L.): responses to human arms, carbon dioxide, and air currents in a new type of olfactometer. Bull Entomol Res 58:629–642
Mboera L, Takken W (1997) Carbon dioxide chemotropism in mosquitoes (Diptera: Culicidae) and its potential in vector surveillance and management programmes. Med Vet Entomol 7:355–368
Mboera L, Takken W (1999) Odour-mediated host preference of Culex quinquefasciatus in Tanzania. Entomol Exp Appl 92:83–88
Mboera L, Takken W, Mdira K, Chuwa G, Pickett J (2000a) Oviposition and behavioral responses of Culex quinquefasciatus to skatole and synthetic oviposition pheromone in Tanzania. J Chem Ecol 26:1193–1203
Mboera L, Takken W, Mdira K, Pickett J (2000b) Sampling gravid Culex quinquefasciatus (Diptera: Culicidae) in Tanzania with traps baited with synthetic oviposition pheromone and grass infusions. J Med Entomol 37:172–176
pubmed: 15218923
Mboera L, Takken W, Sambu E (2000c) The response of Culex quinquefasciatus (Diptera: Culicidae) to traps baited with carbon dioxide, 1-octen-3-ol, acetone, butyric acid and human foot odour in Tanzania. Bull Entomol Res 90:155–159
pubmed: 10948375
Mburu MM, Mweresa CK, Omusula P, Hiscox A, Takken W, Mukabana WR (2017) 2-Butanone as a carbon dioxide mimic in attractant blends for the Afrotropical malaria mosquitoes Anopheles gambiae and Anopheles funestus. Malar J 16:351
pubmed: 28836977
pmcid: 5571623
McBride CS, Baier F, Omondi AB et al (2014) Evolution of mosquito preference for humans linked to an odorant receptor. Nature 515:222–227
pubmed: 25391959
pmcid: 4286346
McCall P, Harding G, Roberts J, Auty B (1996) Attraction and trapping of Aedes aegypti (Diptera: Culicidae) with host odors in the laboratory. J Med Entomol 33:177–179
pubmed: 8906926
McIver SB, McElligott PE (1989) Effects of release rates on the range of attraction of carbon dioxide to some southwestern Ontario mosquito species. J Am Mosq Control Assoc 5:6–9
pubmed: 2565369
Mclver SB (1968) Host preferences and discrimination by the mosquitoes Aedes aegypti and Culex tarsalis (Diptera: Culicidae). J Med Entomol 5:422–428
McMeniman CJ, Corfas RA, Matthews BJ, Ritchie SA, Vosshall LB (2014) Multimodal integration of carbon dioxide and other sensory cues drives mosquito attraction to humans. Cell 156:1060–1071
pubmed: 24581501
pmcid: 4007582
McPhatter L, Gerry AC (2017) Effect of CO
pubmed: 28504452
Meeraus WH, Armistead JS, Arias JR (2008) Field comparison of novel and gold standard traps for collecting Aedes albopictus in northern Virginia. J Am Mosq Control Assoc 24:244–248
pubmed: 18666532
Meijerink J, Braks MAH, Brack AA et al (2000) Identification of olfactory stimulants for Anopheles gambiae from human sweat samples. J Chem Ecol 26:1367–1382
Meijerink J, Braks M, Van Loon J (2001) Olfactory receptors on the antennae of the malaria mosquito Anopheles gambiae are sensitive to ammonia and other sweat-borne components. J Insect Physiol 47:455–464
pubmed: 11166310
Meijerink J, van Loon JJ (1999) Sensitivities of antennal olfactory neurons of the malaria mosquito, Anopheles gambiae, to carboxylic acids. J Insect Physiol 45:365–373
pubmed: 12770362
Melo N, Wolff GH, Costa-da-Silva AL et al (2020) Geosmin Attracts Aedes aegypti Mosquitoes to Oviposition Sites. Curr Biol 30:127–134
pubmed: 31839454
Menger DJ, Omusula P, Holdinga M et al (2015) Field evaluation of a push-pull system to reduce malaria transmission. PLoS One 10:e0123415
pubmed: 25923114
pmcid: 4414508
Menger DJ, Otieno B, de Rijk M, Mukabana WR, van Loon JJ, Takken W (2014a) A push-pull system to reduce house entry of malaria mosquitoes. Malar J 13:119
pubmed: 24674451
pmcid: 3986670
Menger DJ, van Loon JJ, Takken W (2014b) Assessing the efficacy of candidate mosquito repellents against the background of an attractive source that mimics a human host. Med Vet Entomol 28:407–413
pubmed: 24797537
Mer G, Birnbaum D, Aioub A, Bachi R (1947) The attraction of mosquitoes by human beings. Statistical analysis of data. Parasitol 38:1–9
Meza FC, Roberts JM, Sobhy IS, Okumu FO, Tripet F, Bruce TJA (2020) Behavioural and electrophysiological responses of female Anopheles gambiae mosquitoes to volatiles from a Mango bait. J Chem Ecol 46:387–396
pubmed: 32274623
pmcid: 7205772
Michael E, Ramaiah KD, Hoti SL et al (2001) Quantifying mosquito biting patterns on humans by DNA fingerprinting of bloodmeals. Am J trop Med Hygiene 65:722–728
Michalet S, Minard G, Chevalier W et al (2019) Identification of human skin bacteria attractive to the Asian Tiger mosquito. Environ Microbiol 21:4662–4674
pubmed: 31464044
Millar JG, Chaney JD, Mulla MS (1992) Identification of oviposition attractants for Culex quinquefasciatus from fermented Bermuda grass infusions. J Am Mosq Control Assoc 8:11–17
pubmed: 1583482
Montagna W (1985) The anatomy of sweat glands. J Human Evol 14:3–22
Mozūraitis R, Hajkazemian M, Zawada JW et al (2020) Male swarming aggregation pheromones increase female attraction and mating success among multiple African malaria vector mosquito species. Nature Ecol Evol 4:1395–1401
Muirhead-Thomson R (1951a) Distribution of anopheline mosquito bites among different age groups. British Med J 1:1114
Muirhead-Thomson RC (1951b) Mosquito behaviour in relation to malaria transmission and control in the tropics. Arnold, London
Mukabana WR, Mweresa CK, Omusula P, Orindi BO, Smallegange RC, van Loon JJ, Takken W (2012a) Evaluation of low density polyethylene and nylon for delivery of synthetic mosquito attractants. Parasites Vectors 5:202
pubmed: 22992518
pmcid: 3480916
Mukabana WR, Mweresa CK, Otieno B, Omusula P, Smallegange RC, Van Loon JJ, Takken W (2012b) A novel synthetic odorant blend for trapping of malaria and other African mosquito species. J Chem Ecol 38:235–244
pubmed: 22426893
pmcid: 3310138
Mukabana WR, Takken W, Killeen GF, Knols BG (2004) Allomonal effect of breath contributes to differential attractiveness of humans to the African malaria vector Anopheles gambiae. Malar J 3(1)
Mullens BA, Gerry AC (1998) Comparison of bait cattle and carbon dioxide-baited suction traps for collecting Culicoides variipennis sonorensis (Diptera: Ceratopogonidae) and Culex quinquefasciatus Diptera: Culicidae. J Med Entomol 35:245–250
pubmed: 9615542
Müller GC, Beier JC, Traore SF et al (2010) Field experiments of Anopheles gambiae attraction to local fruits/seedpods and flowering plants in Mali to optimize strategies for malaria vector control in Africa using attractive toxic sugar bait methods. Malar J 9:262
pubmed: 20854666
pmcid: 2949744
Müller W (1968) Die Distanz-und Kontakt-Orientierung der Stechmücken (Aedes aegypti) (Wirtsfindung, Stechverhalten und Blutmahlzeit). Zeit Ver Physiol 58:241–303
Murphy MW, Dunton RF, Perich MJ, Rowley WA (2001) Attraction of Anopheles (Diptera: culicidae) to volatile chemicals in Western Kenya. J Med Entomol 38:242–244
pubmed: 11296830
Mweresa CK, Mukabana W, van Loon J, Dicke M, Takken W (2020) Use of semiochemicals for surveillance and control of hematophagous insects. Chemoecology 30:1–10
Mweresa CK, Mukabana WR, Omusula P, Otieno B, Van Loon JJ, Takken W (2016) Enhancing attraction of African malaria vectors to a synthetic odor blend. J Chem Ecol 42:508–516
pubmed: 27349651
Mweresa CK, Omusula P, Otieno B, Van Loon JJ, Takken W, Mukabana WR (2014) Molasses as a source of carbon dioxide for attracting the malaria mosquitoes Anopheles gambiae and Anopheles funestus. Malar J 13:160
pubmed: 24767543
pmcid: 4020376
Mweresa CK, Otieno B, Omusula P et al (2015) Understanding the long-lasting attraction of malaria mosquitoes to odor baits. PLoS One 10:e0121533
pubmed: 25798818
pmcid: 4370609
Mwingira V, Mboera LE, Dicke M, Takken W (2020) Exploiting the chemical ecology of mosquito oviposition behavior in mosquito surveillance and control: a review. J Vector Ecol 45:155–179
pubmed: 33207066
Newhouse VF, Chamberlain R, Johnston J, Sudia WD (1966) Use of dry ice to increase mosquito catches of the CDC miniature light trap. Mosq News 26:30–35
Nicolaides N, Fu HC, Rice GR (1968) The skin surface lipids of man compared with those of eighteen species of animals. J Inv Dermatol 51:83–89
Nikbakhtzadeh MR, Terbot JW, Otienoburu PE, Foster WA (2014) Olfactory basis of floral preference of the malaria vector Anopheles gambiae (Diptera: Culicidae) among common African plants. J Vector Ecol 39:372–383
pubmed: 25424267
Njiru BN, Mukabana WR, Takken W, Knols BG (2006) Trapping of the malaria vector Anopheles gambiae with odour-baited MM-X traps in semi-field conditions in western Kenya. Malar J 5:39
pubmed: 16700902
pmcid: 1475871
Norris EJ, Coats JR (2017) Current and future Repellent technologies: the potential of spatial repellents and their place in mosquito-borne disease control. Int J Environ Res Public Health 14
Nyasembe VO, Tchouassi DP, Mbogo CM, Sole CL, Pirk C, Torto B (2015) Linalool oxide: generalist plant based lure for mosquito disease vectors. Parasites Vectors 8:1–8
Nyasembe VO, Teal PE, Mukabana WR, Tumlinson JH, Torto B (2012) Behavioural response of the malaria vector Anopheles gambiae to host plant volatiles and synthetic blends. Parasites Vectors 5:234
pubmed: 23069316
pmcid: 3523964
Nyasembe VO, Torto B (2014) Volatile phytochemicals as mosquito semiochemicals. Phytochem Lett 8:196–201
pubmed: 25383131
pmcid: 4222249
Obenauer PJ, Abdel-Dayem MS, Stoops CA et al (2013) Field responses of Anopheles gambiae complex (Diptera: Culicidae) in Liberia using yeast-generated carbon dioxide and synthetic lure-baited light traps. J Med Entomol 50:863–870
pubmed: 23926786
Okumu F, Biswaro L, Mbeleyela E, Killeen GF, Mukabana R, Moore SJ (2010a) Using nylon strips to dispense mosquito attractants for sampling the malaria vector Anopheles gambiae s. J Med Entomol 47:274–282
pubmed: 20380310
Okumu FO, Killeen GF, Ogoma S et al (2010b) Development and field evaluation of a synthetic mosquito lure that is more attractive than humans. PloS one 5:e8951
pubmed: 20126628
pmcid: 2812511
Olagbemiro TO, Birkett MA, Mordue AJ, Pickett JA (2004) Laboratory and field responses of the mosquito, Culex quinquefasciatus, to plant-derived Culex spp. oviposition pheromone and the oviposition cue skatole. J Chem Ecol 30:965–976
pubmed: 15274442
Olanga EA, Okal MN, Mbadi PA, Kokwaro ED, Mukabana WR (2010) Attraction of Anopheles gambiae to odour baits augmented with heat and moisture. Malar J 9(6)
Oli K, Jeffery J, Vythilingam I (2005) Research note: a comparative study of adult mosquito trapping using dry ice and yeast generated carbon dioxide. Trop Biomed 22:249–251
pubmed: 16883295
Omer S (1979) Responses of females of Anopheles arabiensis and Culex pipiens fatigans to air currents, carbon dioxide and human hands in a flight-tunnel. Entomol Exp Appl 26:142–151
Omolo M, Njiru B, Ndiege I, Musau R, Hassanali A (2013) Differential attractiveness of human foot odours to Anopheles gambiae Giles sensu stricto (Diptera: Culicidae) and variation in their chemical composition. Acta Trop 128:144–148
pubmed: 23906610
Omondi WP, Owino EA, Odongo D, Mwangangi JM, Torto B, Tchouassi DP (2019) Differential response to plant- and human-derived odorants in field surveillance of the dengue vector, Aedes aegypti. Acta Trop 200:105163
pubmed: 31494122
Omrani S-M, Vatandoost H, Oshaghi M-A, Rahimi A (2012) Upwind responses of Anopheles stephensi to carbon dioxide and L-lactic acid: an olfactometer study. East Mediter Health J 18:1134–1142
Omrani S-M, Vatandoost H, Oshaghi MA et al (2010) Fabrication of an olfactometer for mosquito behavioural studies. J Vector Borne Dis 47:17–25
pubmed: 20231769
Ortega-Morales AI, Méndez-López R, Garza-Hernández JA et al (2019) The mosquitoes (Diptera: Culicidae) of Tabasco, Mexico. J Vector Ecol 44:57–67
pubmed: 31124227
Ortiz DG, Borges DA, Trinca LA, Eunice A, Gordon U, Geier M, Pinto MC (2020) Comparison of BG-Lure and BG-Sweetscents attractants for field sampling of phlebotomine sand flies. Acta Trop 202:105224
pubmed: 31629825
Otienoburu PE, Ebrahimi B, Phelan PL, Foster WA (2012) Analysis and optimization of a synthetic milkweed floral attractant for mosquitoes. J Chem Ecol 38:873–881
pubmed: 22711028
pmcid: 3402659
Otienoburu PE, Nikbakhtzadeh MR, Foster WA (2016) Orientation of Anopheles gambiae (Diptera: Culicidae) to plant-host volatiles in a novel diffusion-cage olfactometer. J Med Entomol 53:237–240
pubmed: 26502752
Owino EA, Sang R, Sole CL, Pirk C, Mbogo C, Torto B (2014) Field evaluation of natural human odours and the biogent-synthetic lure in trapping Aedes aegypti, vector of dengue and chikungunya viruses in Kenya. Parasites Vectors 7:451
pubmed: 25246030
pmcid: 4261536
Owino EA, Sang R, Sole CL, Pirk C, Mbogo C, Torto B (2015) An improved odor bait for monitoring populations of Aedes aegypti-vectors of dengue and chikungunya viruses in Kenya. Parasites Vectors 8:253
pubmed: 25924877
pmcid: 4418051
Paiva MHS, Barbosa RMR, Santos SA, Silva NM, Paula MB, Ayres CFJ, Leal WS (2019) An unsettling explanation for the failure of skatole-baited ovitraps to capture Culex mosquitoes. Insect Sci 26:873–880
pubmed: 29442435
Pappenberger B, Geier M, Boeckh J (1996) Responses of antennal olfactory receptors in the yellow fever mosquito Aedes aegypti to human body odours. In: Bock GR, Cardew G (eds) Olfaction in mosquito-host interactions, Ciba Foundation Symposia. John Wiley and Sons, New York, pp 254–266
Parker AH (1948) Stimuli involved in the attraction of Aedes aegypti, L., to man. Bull Entomol Res 39:387–397
pubmed: 18104364
Paskewitz S, Irwin P, Konwinski N, Larson S (2018) Impact of consumption of bananas on attraction of Anopheles stephensi to humans. Insects 9:129
pmcid: 6315685
Pates H, Takken W, Stuke K, Curtis C (2001) Differential behaviour of Anopheles gambiae sensu stricto (Diptera: Culicidae) to human and cow odours in the laboratory. Bull Entomol Res 91:289–296
pubmed: 11587625
Paula AR, Silva LE, Ribeiro A, Butt TM, Silva CP, Samuels RI (2018) Improving the delivery and efficiency of fungus-impregnated cloths for control of adult Aedes aegypti using a synthetic attractive lure. Parasites Vectors 11:1–9
Paupy C, Delatte H, Bagny L, Corbel V, Fontenille D (2009) Aedes albopictus, an arbovirus vector: from the darkness to the light. Microb Infect 11:1177–1185
Peach DA, Gries R, Young N et al (2019a) Attraction of Female Aedes aegypti (L.) to Aphid Honeydew. Insects 10(43)
Peach DA, Gries R, Zhai H, Young N, Gries G (2019b) Multimodal floral cues guide mosquitoes to tansy inflorescences. Sci Rep 9:1–10
Pezzin A, Sy V, Puggioli A, Veronesi R, Carrieri M, Maccagnani B, Bellini R (2016) Comparative study on the effectiveness of different mosquito traps in arbovirus surveillance with a focus on WNV detection. Acta Trop 153:93–100
pubmed: 26466982
Philippe-Janon JC, van den Hurk AF, Francis DP, Shivas MA, Jansen CC (2015) Field comparison of cyclopentanone versus carbon dioxide as an attractant for adult mosquitoes in Southeast Queensland, Australia. J Med Entomol 52:483–490
pubmed: 26334825
Pitts RJ, Mozūraitis R, Gauvin-Bialecki A, Lempérière G (2014) The roles of kairomones, synomones and pheromones in the chemically-mediated behaviour of male mosquitoes. Acta Trop 132:S26–S34
pubmed: 24055544
Plimmer J, Inscoe M, McGovern T (1982) Insect attractants. Annu Rev Pharmacol Toxicol 22:297–320
pubmed: 7044287
Pombi M, Jacobs F, Verhulst NO, Caputo B, della Torre A, Takken W (2014) Field evaluation of a novel synthetic odour blend and of the synergistic role of carbon dioxide for sampling host-seeking Aedes albopictus adults in Rome, Italy. Parasites Vectors 7:580
pubmed: 25499569
pmcid: 4271472
Ponlawat A, Khongtak P, Jaichapor B, Pongsiri A, Evans BP (2017) Field evaluation of two commercial mosquito traps baited with different attractants and colored lights for malaria vector surveillance in Thailand. Parasites Vectors 10:378
pubmed: 28784149
pmcid: 5547504
Ponnusamy L, Xu N, Böröczky K, Wesson DM, Ayyash LA, Schal C, Apperson CS (2010) Oviposition responses of the mosquitoes Aedes aegypti and Aedes albopictus to experimental plant infusions in laboratory bioassays. J Chem Ecol 36:709–719
pubmed: 20521087
pmcid: 4562425
Ponnusamy L, Xu N, Nojima S, Wesson DM, Schal C, Apperson CS (2008) Identification of bacteria and bacteria-associated chemical cues that mediate oviposition site preferences by Aedes aegypti. Proc Natl Acad Sci 105:9262–9267
pubmed: 18607006
Price GD, Smith N, Carlson DA (1979) The attraction of female mosquitoes (Anopheles quadrimaculatus Say) to stored human emanations in conjunction with adjusted levels of relative humidity, temperature, and carbon dioxide. J Chem Ecol 5:383–395
Proffit M, Lapeyre B, Buatois B et al (2020) Chemical signal is in the blend: bases of plant-pollinator encounter in a highly specialized interaction. Sci Rep 10:1–11
Puri SN, Mendki MJ, Sukumaran D, Ganesan K, Prakash S, Sekhar K (2006) Electroantennogram and behavioral responses of Culex quinquefasciatus (Diptera: Culicidae) females to chemicals found in human skin emanations. J Med Entomol 43:207–213
pubmed: 16619600
Qiu Y, Smallegange R, Van Loon J, Takken W (2011) Behavioural responses of Anopheles gambiae sensu stricto to components of human breath, sweat and urine depend on mixture composition and concentration. Med Vet Entomol 25:247–255
pubmed: 21108650
Qiu Y, Smallegange R, Van Loon J, Ter Braak C, Takken W (2006a) Interindividual variation in the attractiveness of human odours to the malaria mosquito Anopheles gambiae ss. Med Vet Entomol 20:280–287
pubmed: 17044878
Qiu YT, Smallegange RC, Smid HM et al (2004) GC-EAG analysis of human odours that attract the malaria mosquito Anopheles gambiae sensu stricto. Proc Netherlands Entomol Soc Meeting 15:59–64
Qiu YT, Smallegange RC, Van Loon JJ, Ter Braak CJ, Takken W (2006b) Interindividual variation in the attractiveness of human odours to the malaria mosquito Anopheles gambiae s. Med Vet Entomol 20:280–287
pubmed: 17044878
Qualls WA, Mullen GR (2007) Evaluation of the Mosquito Magnet Pro
pubmed: 17847844
Raji JI, Melo N, Castillo JS, Gonzalez S, Saldana V, Stensmyr MC, DeGennaro M (2019) Aedes aegypti mosquitoes detect acidic volatiles found in human odor using the IR8a pathway. Curr Biol 29:1253–1262
pubmed: 30930038
pmcid: 6482070
Ramoni R, Vincent F, Grolli S et al (2001) The insect attractant 1-octen-3-ol is the natural ligand of bovine odorant-binding protein. J Biol Chem 276:7150–7155
pubmed: 11114310
Reeves W (1951) Field studies on carbon dioxide as a possible host simulant to mosquitoes. Proc Soc Exp Biol Med 77:64–66
pubmed: 14844396
Reeves W (1953) Quantitative field studies on a carbon dioxide chemotropism of mosquitoes. Am J Trop Med Hygiene 2:325–331
Reiter P, Colon M (1991) Enhancement of the CDC ovitrap with hay infusions for daily monitoring of Aedes aegypti populations. J Am Mosq Control Assoc 7:52–55
pubmed: 2045808
Resende MC, TMFd Á, Costa IO, Heringer LC, MRd A, Acebal JL, Eiras ÁE (2012) Field optimisation of MosquiTRAP sampling for monitoring Aedes aegypti Linnaeus (Diptera: Culicidae). Mem Inst Oswaldo Cruz 107:294–302
pubmed: 22510823
Resende MC, IMd S, Eiras ÁE (2010) Avaliação da operacionalidade da armadilha MosquiTRAP no monitoramento de Aedes aegypti. Epidemiologia e Serviços de Saúde 19:329–338
Reuter J (1936) Oriënteerend onderzoek naar de oorzaak van het gedrag van Anopheles maculipennis Meigen bij de voedselkeuze, . Luctor et Emergo, Dissertation. University of Leiden, Leiden 118pp
Ribbands C (1949) Studies on the attractiveness of human populations to anophelines. Bull Entomol Res 40:227–238
pubmed: 18139177
Robinson A, Busula AO, Voets MA et al (2018) Plasmodium-associated changes in human odor attract mosquitoes. Proc Natl Acad Sci 115:E4209–E4218
pubmed: 29666273
Rochlin I, Kawalkowski M, Ninivaggi DV (2016) Comparison of Mosquito Magnet and Biogents Sentinel traps for operational surveillance of container-inhabiting Aedes (Diptera: Culicidae) species. J Med Entomol 53:454–459
pubmed: 26520482
Roiz D, Duperier S, Roussel M, Boussès P, Fontenille D, Simard F, Paupy C (2016) Trapping the Tiger: efficacy of the novel BG-Sentinel 2 with several attractants and carbon dioxide for collecting Aedes albopictus (Diptera: Culicidae) in Southern France. J Med Entomol 53:460–465
pubmed: 26581402
Roque RA, Eiras ÁE (2008) Calibration and evaluation of field cage for oviposition study with Aedes (Stegomyia) aegypti female (L.)(Diptera: Culicidae). Neotrop Entomol 37:478–485
pubmed: 18813752
Rose A, Kröckel U, Bergbauer R, Geier M, Eiras ÁE (2006) Der BG-sentinel, eine neuartige stechmückenfalle für forschung und überwachung. Mitt Dtsch Ges Allg Angew Entomol 15:345–348
Rössler ME (1961) Ernährungsphysiologische Untersuchungen an Scarabaeidenlarven (Oryctes nasicornis L., Melolontha melolontha L.). J Insect Physiol 6:62–80
Rubio-Palis Y (1996) Evaluation of light traps combined with carbon dioxide and 1-octen-3-ol to collect anophelines in Venezuela. J Am Mosq Control Assoc 12(91)
Rudolfs W (1922) Chemotropism of mosquitoes. Bull New Jersey Agric Exp Stn 367:4–23
Rueda LM, Harrison BA, Brown JS, Whitt PB, Harrison RL, Gardner RC (2001) Evaluation of 1-octen-3-ol, carbon dioxide, and light as attractants for mosquitoes associated with two distinct habitats in North Carolina. J Am Mosq Control Assoc -Mosq News 17:61–66
Russell RC (2004) The relative attractiveness of carbon dioxide and octenol in CDC-and EVS-type light traps for sampling the mosquitoes Aedes aegypti (L.), Aedes polynesiensis Marks, and Culex quinquefasciatus Say in Moorea, French Polynesia. J Vector Ecol 29:309
pubmed: 15707289
Saitoh Y, Hattori J, Chinone S, Nihei N, Tsuda Y, Kurahashi H, Kobayashi M (2004) Yeast-generated CO
pubmed: 15532924
Saratha R, Mathew N (2016) Development of a mosquito attractant blend of small molecules against host-seeking Aedes aegypti. Parasitol Res 115:1529–1536
pubmed: 26693718
Schaerffenberg B, Kupka E (1959) Der attractive factor des blutes fur blutsagende insekten. Naturwiss 46:457–458
Schmied WH, Takken W, Killeen GF, Knols BG, Smallegange RC (2008) Evaluation of two counterflow traps for testing behaviour-mediating compounds for the malaria vector Anopheles gambiae s.s. under semi-field conditions in Tanzania. Malar J 7:230
pubmed: 18980669
pmcid: 2585591
Schoelitsz B, Mwingira V, Mboera LEG et al (2020) Chemical mediation of oviposition by Anopheles mosquitoes: a push-pull system driven by volatiles associated with larval stages. J Chem Ecol 46:397–409
pubmed: 32240482
pmcid: 7205850
Schreck C, James J (1968) Broth cultures of bacteria that attract female mosquitoes. Mosq News 28
Schreck C, Kline D, Carlson D (1990) Mosquito attraction to substances from the skin of different humans. J Am Mosq Control Assoc 6:406–410
pubmed: 2230769
Schreck C, Smith N, Carlson D, Price G, Haile D, Godwin D (1982) A material isolated from human hands that attracts female mosquitoes. J Chem Ecol 8:429–438
pubmed: 24414954
Scott-Fiorenzano JM, Fulcher AP, Seeger KE et al (2017) Evaluations of dual attractant toxic sugar baits for surveillance and control of Aedes aegypti and Aedes albopictus in Florida. Parasites Vectors 10:9
pubmed: 28057066
pmcid: 5217587
Scott JJ, Crans SC, Crans WJ (2001) Use of an infusion-baited gravid trap to collect adult Ochlerotatus japonicus. J Am Mosq Control Assoc 17:142
pubmed: 11480823
Scott TW, Githeko AK, Fleisher A, Harrington LC, Yan G (2006) DNA profiling of human blood in anophelines from lowland and highland sites in western Kenya. Am J Trop Med Hygiene 75:231–237
Seenivasagan T, Guha L, Parashar B, Agrawal O, Sukumaran D (2014) Olfaction in Asian tiger mosquito Aedes albopictus: flight orientation response to certain saturated carboxylic acids in human skin emanations. Parasitol res 113:1927–1932
pubmed: 24619069
Seenivasagan T, Sharma KR, Prakash S (2012) Electroantennogram, flight orientation and oviposition responses of Anopheles stephensi and Aedes aegypti to a fatty acid ester-propyl octadecanoate. Acta Trop 124:54–61
pubmed: 22750483
Seenivasagan T, Sharma KR, Sekhar K, Ganesan K, Prakash S, Vijayaraghavan R (2009) Electroantennogram, flight orientation, and oviposition responses of Aedes aegypti to the oviposition pheromone n-heneicosane. Parasitol Res 104:827–833
pubmed: 19018567
Sharma KR, Seenivasagan T, Rao A, Ganesan K, Agarwal O, Malhotra R, Prakash S (2008) Oviposition responses of Aedes aegypti and Aedes albopictus to certain fatty acid esters. Parasitol Res 103:1065–1073
pubmed: 18661154
Sharma KR, Seenivasagan T, Rao A, Ganesan K, Agrawal O, Prakash S (2009) Mediation of oviposition responses in the malaria mosquito Anopheles stephensi Liston by certain fatty acid esters. Parasitol Res 104:281–286
pubmed: 18795330
Shelley WB, Hurley HJ, Nichols AC (1953) Axillary odor: experimental study of the role of bacteria, apocrine sweat, and deodorants. Am Arch Dermatol Syphilol 68:430–446
Shirai Y, Kamimura K, Seki T, Morohashi M (2001) L-lactic acid as a mosquito (Diptera: Culicidae) repellent on human and mouse skin. J Med Entomol 38:51–54
pubmed: 11268691
Shone SM, Ferrao PN, Lesser CR, Glass GE, Norris DE (2003) Evaluation of carbon dioxide -and 1-octen-3-ol- baited Centers for Disease Control Fay–Prince traps to collect Aedes albopictus. J Am Mosq Control Assoc 19:445
pubmed: 14710753
pmcid: 4152314
Silva IM, Eiras ÁE, Kline DL, Bernier UR (2005) Laboratory evaluation of mosquito traps baited with a synthetic human odor blend to capture Aedes aegypti. J Am Mosq Control Assoc 21:229–233
pubmed: 16033129
Sivakumar R, Jebanesan A, Govindarajan M, Rajasekar P (2011) Oviposition attractancy of dodecanoic, hexadecanoic and tetradecanoic acids against Aedes aegypti and Culex quinquefasciatus (Diptera: Culicidae). Eur Rev Med Pharmacol Sci 15:1172–1175
pubmed: 22165678
Skinner W, Tong H, Johnson H, Maibach H, Skidmore D (1968) Human sweat components—attractancy and repellency to mosquitoes. Experientia 24:679–680
pubmed: 5705224
Smallegange R, Geier M, Takken W (2002) Behavioural responses of Anopheles gambiae to ammonia, lactic acid and a fatty acid in a y-tube olfactometer. Proc Exp Appl Entomol 13:147–152
Smallegange R, Qiu YT, Galimard A, Posthumus M, Van Beek T, van Loon J, Takken W (2003) Why humans are attractive to malaria mosquitoes. Entomol Bericht 63:50-53
Smallegange RC, Bukovinszkine-Kiss G, Otieno B, Mbadi PA, Takken W, Mukabana WR, Van Loon JJ (2012) Identification of candidate volatiles that affect the behavioural response of the malaria mosquito Anopheles gambiae sensu stricto to an active kairomone blend: laboratory and semi-field assays. Physiol Entomol 37:60–71
Smallegange RC, Qiu YT, Bukovinszkine-Kiss G, Van Loon JJ, Takken W (2009) The effect of aliphatic carboxylic acids on olfaction-based host-seeking of the malaria mosquito Anopheles gambiae sensu stricto. J Chem Ecol 35:933–943
pubmed: 19626371
pmcid: 2746306
Smallegange RC, Qiu YT, van Loon JJ, Takken W (2005) Synergism between ammonia, lactic acid and carboxylic acids as kairomones in the host-seeking behaviour of the malaria mosquito Anopheles gambiae sensu stricto (Diptera: Culicidae). Chem Senses 30:145–152
pubmed: 15703334
Smallegange RC, Schmied WH, van Roey KJ, Verhulst NO, Spitzen J, Mukabana WR, Takken W (2010) Sugar-fermenting yeast as an organic source of carbon dioxide to attract the malaria mosquito Anopheles gambiae. Malar J 9:292
pubmed: 20973963
pmcid: 2984570
Smallegange RC, Takken W (2010) Host-seeking behaviour of mosquitoes: responses to olfactory stimuli in the laboratory. In: Olfaction in vector-host interactions. vol 2. Wageningen Academic Publishers, pp 143-180
Smallegange RC, van Gemert GJ, van de Vegte-Bolmer M, Gezan S, Takken W, Sauerwein RW, Logan JG (2013) Malaria infected mosquitoes express enhanced attraction to human odor. PLoS One 8:e63602
Smart M, Brown A (1956) Studies on the responses of the female Aedes mosquito. Part VII.—The effect of skin temperature, hue and moisture on the attractiveness of the human hand. Bull Entomol Res 47:89–100
Smith CN, Smith N, Gouck HK et al (1970) L-lactic acid as a factor in the attraction of Aedes aegypti (Diptera: Culicidae) to human hosts. Ann Entomol Soc Am 63:760–770
pubmed: 5440497
Smith SM, Eng RH, Buccini F (1986) Use of D-lactic acid measurements in the diagnosis of bacterial infections. J Infect Dis 154:658–664
pubmed: 3528318
Snetselaar J, Andriessen R, Suer RA, Osinga AJ, Knols BG, Farenhorst M (2014) Development and evaluation of a novel contamination device that targets multiple life-stages of Aedes aegypti. Parasites Vectors 7:200
pubmed: 24766772
pmcid: 4005817
Spanoudis CG, Andreadis SS, Bray DP, Savopoulou-Soultani M, Ignell R (2020) Behavioural response of the house mosquitoes Culex quinquefasciatus and Culex pipiens molestus to avian odours and its reliance on carbon dioxide. Med Vet Entomol 34:129–137
pubmed: 31912522
Spitzen J, Smallegange RC, Takken W (2008) Effect of human odours and positioning of CO
Steib BM, Geier M, Boeckh J (2001) The effect of lactic acid on odour-related host preference of yellow fever mosquitoes. Chem Senses 26:523–528
pubmed: 11418498
Sukumaran D (2016) A review on use of attractants and traps for host seeking Aedes aegypti mosquitoes. Indian J Nat Prod Resources 7:207–214
Sukumaran D, Ponmariappan S, Sharma AK, Jha HK, Wasu YH, Sharma AK (2016) Application of biogenic carbon dioxide produced by yeast with different carbon sources for attraction of mosquitoes towards adult mosquito traps. Parasitol Res 115:1453–1462
pubmed: 26677098
Suman DS (2019) Evaluation of enhanced oviposition attractant formulations against Aedes and Culex vector mosquitoes in urban and semi-urban areas. Parasitol Res 118:743–750
pubmed: 30719534
Sumba LA, Guda TO, Deng AL, Hassanali A, Beier JC, Knols BG (2004) Mediation of oviposition site selection in the African malaria mosquito Anopheles gambiae (Diptera: Culicidae) by semiochemicals of microbial origin International. J Trop Insect Sci 24:260–265
Syed Z (2015) Chemical ecology and olfaction in arthropod vectors of diseases. Curr Opin Insect Sci 10:83–89
pubmed: 29588018
Syed Z, Leal WS (2009) Acute olfactory response of Culex mosquitoes to a human-and bird-derived attractant. Proc Natl Acad Sci 106:18803–18808
pubmed: 19858490
Takken W (1991) The role of olfaction in host-seeking of mosquitoes: a review. Int J Trop Insect Sci 12:287–295
Takken W, Dekker T, Wijnholds Y (1997) Odor-mediated flight behavior of Anopheles gambiae giles sensus stricto and An. stephensi liston in response to CO
Takken W, Kline D (1989) Carbon dioxide and 1-octen-3-ol as mosquito attractants. J Am Mosq Control Assoc 5:311–316
pubmed: 2573687
Takken W, Knols BG (1999) Odor-mediated behavior of Afrotropical malaria mosquitoes. Annu Rev Entomol 44:131–157
pubmed: 9990718
Takken W, Knols BG (2010) Olfaction in vector-host interactions, vol 2. Wageningen Academic Pub, The Netherlands
Takken W, Verhulst NO (2017) Chemical signaling in mosquito-host interactions: the role of human skin microbiota. Curr Opin Insect Sci 20:68–74
pubmed: 28602238
Tangena J-AA, Thammavong P, Hiscox A, Lindsay SW, Brey PT (2015) The human-baited double net trap: an alternative to human landing catches for collecting outdoor biting mosquitoes in Lao PDR. PLoS One 10:e0138735
pubmed: 26381896
pmcid: 4575072
Tauxe GM, MacWilliam D, Boyle SM, Guda T, Ray A (2013) Targeting a dual detector of skin and CO
pubmed: 24315103
pmcid: 3899525
Tchouassi DP, Sang R, Sole CL, Bastos AD, Teal PE, Borgemeister C, Torto B (2013) Common host-derived chemicals increase catches of disease-transmitting mosquitoes and can improve early warning systems for Rift Valley fever virus. PLoS Negl Trop Dis 7:e2007
pubmed: 23326620
pmcid: 3542179
Thomas T (1951) Biting activity of Anopheles gambiae. British Med J 2:1402
Thompson R, Brown A (1955) The attractiveness of human sweat to mosquitoes and the role of carbon dioxide. Mosq News 15:80–84
Thornton JH, Batengana BM, Eiras AE, Irish SR (2016) Evaluation of collection methods for Culex quinquefasciatus, Aedes aegypti, and Aedes simpsoni in northeastern Tanzania. J Vector Ecol 41:265–270
pubmed: 27860009
Tian J, Mao J, Yu B, Fouad H, Ga'al H, Mao G, Mo J (2018) Laboratory and field evaluation of multiple compound attractants to Culex pipiens pallens. J Med Entomol 55:787–794
pubmed: 29566214
Torr S, Della Torre A, Calzetta M, Costantini C, Vale G (2008) Towards a fuller understanding of mosquito behaviour: use of electrocuting grids to compare the odour-orientated responses of Anopheles arabiensis and An. quadriannulatus in the field. Med Vet Entomol 22:93–108
pubmed: 18498608
Torres-Estrada JL, Meza-Alvarez RA, Cibrián-Tovar J, Rodríguez-Lopez MH, Arredondo-jimenez JI, Cruz-López L, Rojas-Leon JC (2005) Vegetation-derived cues for the selection of oviposition substrates by Anopheles albimanus under laboratory conditions. J Am Mosq Control Assoc 21:344–349
pubmed: 16506557
Trexler JD, Apperson CS, Gemeno C, Perich MJ, Carlson D, Schal C (2003) Field and laboratory evaluations of potential oviposition attractants for Aedes albopictus (Diptera: Culicidae). J Am Mosq Control Assoc 19:228–235
pubmed: 14524544
Trexler JD, Apperson CS, Schal C (1998) Laboratory and field evaluations of oviposition responses of Aedes albopictus and Aedes triseriatus (Diptera: Culicidae) to oak leaf infusions. J Med Entomol 35:967–976
pubmed: 9835688
Tseng W-H, Hsiao W-C, Juan D, Chan C-H, Hsiao W-S, Ma H-Y, Lee H-Y (2019) Secondary freeform lens device design with stearic acid for a low-glare mosquito-trapping system with ultraviolet light-emitting diodes. Electronics 8:624
Turner SL, Li N, Guda T, Githure J, Carde RT, Ray A (2011) Ultra-prolonged activation of CO
pubmed: 21637258
pmcid: 3150595
Ugwu FSO, Onwuzurike JC (2018) Palm wines as potent attractant to mosquitoes. Anim Res Int 15:3055–3064
Unlu I, Faraji A, Indelicato N, Rochlin I (2016) TrapTech R-octenol lure does not improve the capture rates of Aedes albopictus (Diptera: Culicidae) and other container-inhabiting species in Biogents Sentinel traps. J Med Entomol 53:982–985
pubmed: 27273239
Unlu I, Farajollahi A (2014) A multiyear surveillance for Aedes albopictus with Biogents Sentinel trap counts for males and species composition of other mosquito species. J Am Mosq Control Assoc 30:122–125
pubmed: 25102596
van Breugel F, Riffell J, Fairhall A, Dickinson MH (2015) Mosquitoes use vision to associate odor plumes with thermal targets. Curr Biol 25:2123–2129
pubmed: 26190071
pmcid: 4546539
van de Straat B, Hiscox A, Takken W, Burkot TR (2019) Evaluating synthetic odours and trap designs for monitoring Anopheles farauti in Queensland, Australia. Malar J 18:299
pubmed: 31477123
pmcid: 6721334
van Loon JJ, Smallegange RC, Bukovinszkiné-Kiss G et al (2015) Mosquito attraction: crucial role of carbon dioxide in formulation of a five-component blend of human-derived volatiles. J Chem Ecol 41:567–573
pubmed: 26026743
pmcid: 4463982
Van Thiel P, Weurman C (1947) L'attraction exercée sur Anopheles maculipennis atroparvus par l'acide carbonique dans l'appareil de choix II. Acta Leidensia 18:219–228
Van Thiel PH (1937) Quelles sont les excitations incitant l'" Anopheles maculipennis atroparvus" à visiter ou à piquer l'homme ou le bétail? Bull Soc Path Exot 30:193–209
Vaníčková L, Canale A, Benelli G (2017) Sexual chemoecology of mosquitoes (Diptera, Culicidae): current knowledge and implications for vector control programs. Parasitol Int 66:190–195
pubmed: 27692501
Vargo AM, Foster WA (1982) Responsiveness of female Aedes aegypti (Diptera: Culicidae) to flower extracts. J med Entomol 19:710–718
Venkatesh P, Sen A (2017) Laboratory evaluation of synthetic blends of L-(+)-lactic acid, ammonia, and ketones as potential attractants for Aedes aegypti. J Am Mosq Control Assoc 33:301–308
pubmed: 29369028
Verhulst NO, Andriessen R, Groenhagen U et al (2010a) Differential attraction of malaria mosquitoes to volatile blends produced by human skin bacteria. PLoS One 5:e15829
pubmed: 21209854
pmcid: 3012726
Verhulst NO, Bakker JW, Hiscox A (2015) Modification of the Suna trap for improved survival and quality of mosquitoes in support of epidemiological studies. J Am Mosq Control Assoc 31:223–232
pubmed: 26375903
Verhulst NO, Beijleveld H, Knols BG, Takken W, Schraa G, Bouwmeester HJ, Smallegange RC (2009) Cultured skin microbiota attracts malaria mosquitoes. Malar J 8:302
pubmed: 20017925
pmcid: 2804688
Verhulst NO, Beijleveld H, Qiu YT et al (2013) Relation between HLA genes, human skin volatiles and attractiveness of humans to malaria mosquitoes. Infect Genet Evol 18:87–93
pubmed: 23688850
Verhulst NO, Mbadi PA, Kiss GB, Mukabana WR, van Loon JJ, Takken W, Smallegange RC (2011a) Improvement of a synthetic lure for Anopheles gambiae using compounds produced by human skin microbiota. Malar J 10(28)
Verhulst NO, Qiu YT, Beijleveld H et al (2011b) Composition of human skin microbiota affects attractiveness to malaria mosquitoes. PloS one 6:e28991
pubmed: 22216154
pmcid: 3247224
Verhulst NO, Takken W, Dicke M, Schraa G, Smallegange RC (2010b) Chemical ecology of interactions between human skin microbiota and mosquitoes. FEMS Microbiol Ecol 74:1–9
pubmed: 20840217
Verhulst NO, Weldegergis BT, Menger D, Takken W (2016) Attractiveness of volatiles from different body parts to the malaria mosquito Anopheles coluzzii is affected by deodorant compounds. Sci Rep 6:27141
pubmed: 27251017
pmcid: 4890431
Vezenegho SB, Adde A, Gaborit P et al (2014) Mosquito magnet® liberty plus trap baited with octenol confirmed best candidate for Anopheles surveillance and proved promising in predicting risk of malaria transmission in French Guiana. Malar J 13:384
pubmed: 25260354
pmcid: 4193128
Vythilingam I, Lian CG, Thim CS (1992) Evaluation of carbon dioxide and 1-octen-3-ol as mosquito attractants. Southeast Asian J Trop Med Public Health 23:328–331
pubmed: 1359652
Wagner S, Guidi V, Torgerson PR, Mathis A, Schaffner F (2018) Diversity and seasonal abundances of mosquitoes at potential arboviral transmission sites in two different climate zones in Switzerland. Med Vet Entomol 32:175–185
pubmed: 29424446
Wagner S, Mathis A (2016) Laboratory colonisation of Aedes geniculatus. J Eur Mosq Control Assoc 34:1–4
Walker V (2014) Ammonia metabolism and hyperammonemic disorders. In: Advances in clinical chemistry, Elsevier, pp 73-150
Wang J-N, Hou J, Zhong JY et al (2020) Relationships between traditional larval indices and meteorological factors with the adult density of Aedes albopictus captured by BG-mosquito trap. Plos One 15:e0234555
pubmed: 32525905
pmcid: 7289416
Wang Z, Mo J, Zhang S (2006) Laboratory and field evaluations of potential human host odors for Aedes albopictus Skuse (Diptera: Culicidae). J Agric Urban Entomol 23:57–64
Webster B, Lacey ES, Cardé RT (2015) Waiting with bated breath: opportunistic orientation to human odor in the malaria mosquito, Anopheles gambiae, is modulated by minute changes in carbon dioxide concentration. J Chem Ecol 41:59–66
pubmed: 25572756
Williams CR, Bergbauer R, Geier M, Kline DL, Bernier UR, Russell RC, Ritchie SA (2006a) Laboratory and field assessment of some kairomone blends for host-seeking Aedes aegypti. J Am Mosq Control Assoc 22:641–647
pubmed: 17304931
Williams CR, Ritchie SA, Russell RC, Eiras AE, Kline DL, Geier M (2006b) Geographic variation in attraction to human odor compounds by Aedes aegypti mosquitoes (Diptera: Culicidae): a laboratory study. J Chem Ecol 32:1625
pubmed: 16868835
Willis ER (1947) The olfactory responses of female mosquitoes. J Econom Entomol 40:769–778
Wondwosen B, Birgersson G, Seyoum E et al (2016) Rice volatiles lure gravid malaria mosquitoes, Anopheles arabiensis. Sci Rep 6:1–8
Wondwosen B, Hill SR, Birgersson G, Seyoum E, Tekie H, Ignell R (2017) A(maize)ing attraction: gravid Anopheles arabiensis are attracted and oviposit in response to maize pollen odours. Malar J 16:39
pubmed: 28114992
pmcid: 5259891
Wooding M, Naude Y, Rohwer E, Bouwer M (2020) Controlling mosquitoes with semiochemicals: a review. Parasites Vectors 13:80
pubmed: 32066499
pmcid: 7027039
Wright R (1962) The attraction and repulsion of mosquitoes. Wld Rev Pest Contr 1:1–12
Wright R (1975) Why mosquito repellents repel. Sci Am 233:104–111
pubmed: 238282
Wurzenberger M, Grosch W (1984) Stereochemistry of the cleavage of the 10-hydroperoxide isomer of linoleic acid to 1-octen-3-ol by a hydroperoxide lyase from mushrooms (Psalliota bispora). Biochim Bioph Acta (BBA )-Lipids Lipid Metabol 795:163–165
Xie L, Yang W, Liu H et al (2019) Enhancing attraction of the vector mosquito Aedes albopictus by using a novel synthetic odorant blend. Parasites Vectors 12:382
pubmed: 31362759
pmcid: 6668062
Xu P, Zhu F, Buss GK, Leal WS (2015) 1-octen-3-ol - the attractant that repels. F1000Research 4:156. 10.12688/f1000research.6646.1
Xue R-D, Doyle MA, Kline DL (2008) Field evaluation of CDC and Mosquito Magnet® X traps baited with dry ice, CO2 sachet, and octenol against mosquitoes. J Am Mosq Control Assoc 24:249–252
pubmed: 18666533
Xue RD, Qualls WA, Kline DL, Zhao T-Y (2010) Evaluation of Lurex 3™, octenol, and CO
pubmed: 21033066
Yu B-T, Ding Y-M, Hu Y, Tian J-X, Song X-G, Li Z-G, Mo J-C (2019) Attraction of Culex pipiens pallens (Diptera: Culicidae) to floret volatiles and synthetic blends of its nectar host plant Abelia chinensis Rubiales: Caprifoliaceae. J Med Entomol 56:29–34
pubmed: 30304503
Yu B-T, Huang S-Q, Ding Y-M, Fouad H, Li H-J, Mo J-C (2017) Laboratory evaluation of differential attraction of Culex pipiens pallens to the volatiles of flowers, fruits, and seed pods. J Asia-Pacific Entomol 20:1372–1376
Yu BT, Ding YM, Mo JC (2015) Behavioural response of female Culex pipiens pallens to common host plant volatiles and synthetic blends. Parasites Vectors 8:598
pubmed: 26577584
pmcid: 4650194
Zohdy S, Derfus K, Andrianjafy MT, Wright PC, Gillespie TR (2015) Field evaluation of synthetic lure (3-methyl-1-butanol) when compared to non odor-baited control in capturing Anopheles mosquitoes in varying land-use sites in Madagascar. Parasites vectors 8:145
pubmed: 25889982
pmcid: 4359513