Outcomes from international field trials with Male Aedes Sound Traps: Frequency-dependent effectiveness in capturing target species in relation to bycatch abundance.
Journal
PLoS neglected tropical diseases
ISSN: 1935-2735
Titre abrégé: PLoS Negl Trop Dis
Pays: United States
ID NLM: 101291488
Informations de publication
Date de publication:
02 2021
02 2021
Historique:
received:
06
10
2020
accepted:
09
12
2020
entrez:
25
2
2021
pubmed:
26
2
2021
medline:
23
6
2021
Statut:
epublish
Résumé
Aedes aegypti and Aedes albopictus vector dengue, chikungunya and Zika viruses. With both species expanding their global distributions at alarming rates, developing effective surveillance equipment is a continuing priority for public health researchers. Sound traps have been shown, in limited testing, to be highly species-specific when emitting a frequency corresponding to a female mosquito wingbeat. Determining male mosquito capture rates in sound traps based on lure frequencies in endemic settings is the next step for informed deployment of these surveillance tools. We field-evaluated Male Aedes Sound Traps (MASTs) set to either 450 Hz, 500 Hz, 550 Hz or 600 Hz for sampling Aedes aegypti and/or Aedes albopictus and compared catch rates to BG-Sentinel traps within Pacific (Madang, Papua New Guinea) and Latin American (Molas, Mexico and Orange Walk Town, Belize) locations. MASTs set to 450-550 Hz consistently caught male Ae. aegypti at rates comparable to BG-Sentinel traps in all locations. A peak in male Ae. albopictus captures in MASTs set at 550 Hz was observed, with the lowest mean abundance recorded in MASTs set to 450 Hz. While significantly higher abundances of male Culex were sampled in MASTs emitting lower relative frequencies in Molas, overall male Culex were captured in significantly lower abundances in the MASTs, relative to BG-Sentinel traps within all locations. Finally, significant differences in rates at which male Aedes and Culex were positively detected in trap-types per weekly collections were broadly consistent with trends in abundance data per trap-type. MASTs at 550 Hz effectively captured both male Ae. aegypti and Ae. albopictus while greatly reducing bycatch, especially male Culex, in locations where dengue transmission has occurred. This high species-specificity of the MAST not only reduces staff-time required to sort samples, but can also be exploited to develop an accurate smart-trap system-both outcomes potentially reducing public health program expenses.
Identifiants
pubmed: 33630829
doi: 10.1371/journal.pntd.0009061
pii: PNTD-D-20-01765
pmc: PMC7906331
doi:
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
e0009061Déclaration de conflit d'intérêts
I have read the journal’s policy and the authors of this manuscript have the following competing interests. KMS, MT, WX, and SAR were funded by Verily Life Sciences. JEC, JL, MD, PH and NS were all paid employees of Verily Life Sciences, a for profit company developing products for mosquito control, at the time they performed research for this study. The trap, for which a prototype is described in this manuscript, has a patent application (pending and actual), belonging to Verily Life Sciences on which SAR, KMS, NS, JL, JEC and MD are listed as inventors and from which JEC, JL, MD, PH and NS may potentially benefit.
Références
J Am Mosq Control Assoc. 2015 Dec;31(4):384-7
pubmed: 26675464
PLoS One. 2019 Feb 22;14(2):e0212688
pubmed: 30794670
Asia Pac J Public Health. 2015 Oct;27(7):705-14
pubmed: 25186807
Western Pac Surveill Response J. 2013 Jun 04;4(2):8-10
pubmed: 24015365
Parasit Vectors. 2019 Sep 6;12(1):417
pubmed: 31488182
Am J Trop Med Hyg. 2020 Nov;103(5):2108-2112
pubmed: 32748782
J Am Mosq Control Assoc. 2013 Dec;29(4):358-68
pubmed: 24551969
J Med Entomol. 2017 Sep 1;54(5):1415-1419
pubmed: 28399312
PLoS Negl Trop Dis. 2016 Mar 03;10(3):e0004543
pubmed: 26938868
Am J Trop Med Hyg. 2018 Jun;98(6):1563-1565
pubmed: 29557341
PLoS Negl Trop Dis. 2017 Jun 12;11(6):e0005656
pubmed: 28604781
Parasit Vectors. 2019 Jul 3;12(1):333
pubmed: 31269965
J Med Entomol. 1994 Sep;31(5):700-3
pubmed: 7966173
Appl Phys B. 2018 Mar;124(3):
pubmed: 30505073
J Med Entomol. 2017 Sep 1;54(5):1116-1121
pubmed: 28402550
Elife. 2015 Jun 30;4:e08347
pubmed: 26126267
J Am Mosq Control Assoc. 2019 Sep;35(3):169-177
pubmed: 31647706
PLoS One. 2018 Dec 31;13(12):e0210122
pubmed: 30596764
Med Vet Entomol. 2004 Sep;18(3):215-27
pubmed: 15347388
PLoS Negl Trop Dis. 2015 Jul 02;9(7):e0003864
pubmed: 26135160
PLoS Negl Trop Dis. 2015 Jan 08;9(1):e0003383
pubmed: 25569303
J Am Mosq Control Assoc. 2020 Mar;36(1):16-21
pubmed: 32497478
J Med Entomol. 2016 Jan;53(1):245-8
pubmed: 26502754
Parasit Vectors. 2014 Dec 11;7:580
pubmed: 25499569
J Med Entomol. 2020 May 4;57(3):957-961
pubmed: 31799614
J Vector Ecol. 2019 Dec;44(2):216-222
pubmed: 31729803
Nat Biotechnol. 2020 Apr;38(4):482-492
pubmed: 32265562
Elife. 2017 Oct 31;6:
pubmed: 29087296
Parasit Vectors. 2020 Mar 6;13(1):121
pubmed: 32143711
J Med Entomol. 2021 Mar 12;58(2):708-716
pubmed: 33179740
J Am Mosq Control Assoc. 1988 Dec;4(4):536-8
pubmed: 3066845
J Am Mosq Control Assoc. 2006 Jun;22(2):229-38
pubmed: 17019768
Mem Inst Oswaldo Cruz. 2014 Sep;109(6):787-96
pubmed: 25317707
J Med Entomol. 2021 Jan 12;58(1):408-415
pubmed: 32740655
Acta Trop. 2016 Dec;164:448-454
pubmed: 27609638
Am J Trop Med Hyg. 1949 Sep;29(5):811-25
pubmed: 18148579
J Med Entomol. 2013 Jul;50(4):723-30
pubmed: 23926769
Annu Rev Genet. 2019 Dec 3;53:93-116
pubmed: 31505135