Behavioral response of insecticide-resistant mosquitoes against spatial repellent: A modified self-propelled particle model simulation.

Rapidly increasing pyrethroid insecticide resistance and changes in vector biting and resting behavior pose serious challenges in malaria control. Mosquito repellents, especially spatial repellents, have received much attention from industry. We attempted to simulate interactions between mosquitoes...

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Main Authors: Guofa Zhou, Leonard Yu, Xiaoming Wang, Daibin Zhong, Ming-Chieh Lee, Solomon Kibret, Guiyun Yan
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0244447
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spelling doaj-d2aa8a79138d4517bd96b65cd59d0ca02021-07-10T04:30:58ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-011512e024444710.1371/journal.pone.0244447Behavioral response of insecticide-resistant mosquitoes against spatial repellent: A modified self-propelled particle model simulation.Guofa ZhouLeonard YuXiaoming WangDaibin ZhongMing-Chieh LeeSolomon KibretGuiyun YanRapidly increasing pyrethroid insecticide resistance and changes in vector biting and resting behavior pose serious challenges in malaria control. Mosquito repellents, especially spatial repellents, have received much attention from industry. We attempted to simulate interactions between mosquitoes and repellents using a machine learning method, the Self-Propelled Particle (SPP) model, which we modified to include attractiveness/repellency effects. We simulated a random walk scenario and scenarios with insecticide susceptible/resistant mosquitoes against repellent alone and against repellent plus attractant (to mimic a human host). Simulation results indicated that without attractant/repellent, mosquitoes would fly anywhere in the cage at random. With attractant, all mosquitoes were attracted to the source of the odor by the end. With repellent, all insecticide-susceptible mosquitoes eventually moved to the corner of the cage farthest from the repellent release point, whereas, a high proportion of highly resistant mosquitoes might reach the attractant release point (the human) earlier in the simulation. At fixed concentration, a high proportion of mosquitoes could be able to reach the host when the relative repellency efficacy (compare to attractant efficacy) was <1, whereas, no mosquitoes reached the host when the relative repellency efficacy was > 1. This result implies that repellent may not be sufficient against highly physiologically insecticide resistant mosquitoes, since very high concentrations of repellent are neither practically feasible nor cost-effective.https://doi.org/10.1371/journal.pone.0244447
collection DOAJ
language English
format Article
sources DOAJ
author Guofa Zhou
Leonard Yu
Xiaoming Wang
Daibin Zhong
Ming-Chieh Lee
Solomon Kibret
Guiyun Yan
spellingShingle Guofa Zhou
Leonard Yu
Xiaoming Wang
Daibin Zhong
Ming-Chieh Lee
Solomon Kibret
Guiyun Yan
Behavioral response of insecticide-resistant mosquitoes against spatial repellent: A modified self-propelled particle model simulation.
PLoS ONE
author_facet Guofa Zhou
Leonard Yu
Xiaoming Wang
Daibin Zhong
Ming-Chieh Lee
Solomon Kibret
Guiyun Yan
author_sort Guofa Zhou
title Behavioral response of insecticide-resistant mosquitoes against spatial repellent: A modified self-propelled particle model simulation.
title_short Behavioral response of insecticide-resistant mosquitoes against spatial repellent: A modified self-propelled particle model simulation.
title_full Behavioral response of insecticide-resistant mosquitoes against spatial repellent: A modified self-propelled particle model simulation.
title_fullStr Behavioral response of insecticide-resistant mosquitoes against spatial repellent: A modified self-propelled particle model simulation.
title_full_unstemmed Behavioral response of insecticide-resistant mosquitoes against spatial repellent: A modified self-propelled particle model simulation.
title_sort behavioral response of insecticide-resistant mosquitoes against spatial repellent: a modified self-propelled particle model simulation.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2020-01-01
description Rapidly increasing pyrethroid insecticide resistance and changes in vector biting and resting behavior pose serious challenges in malaria control. Mosquito repellents, especially spatial repellents, have received much attention from industry. We attempted to simulate interactions between mosquitoes and repellents using a machine learning method, the Self-Propelled Particle (SPP) model, which we modified to include attractiveness/repellency effects. We simulated a random walk scenario and scenarios with insecticide susceptible/resistant mosquitoes against repellent alone and against repellent plus attractant (to mimic a human host). Simulation results indicated that without attractant/repellent, mosquitoes would fly anywhere in the cage at random. With attractant, all mosquitoes were attracted to the source of the odor by the end. With repellent, all insecticide-susceptible mosquitoes eventually moved to the corner of the cage farthest from the repellent release point, whereas, a high proportion of highly resistant mosquitoes might reach the attractant release point (the human) earlier in the simulation. At fixed concentration, a high proportion of mosquitoes could be able to reach the host when the relative repellency efficacy (compare to attractant efficacy) was <1, whereas, no mosquitoes reached the host when the relative repellency efficacy was > 1. This result implies that repellent may not be sufficient against highly physiologically insecticide resistant mosquitoes, since very high concentrations of repellent are neither practically feasible nor cost-effective.
url https://doi.org/10.1371/journal.pone.0244447
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