Discovery and characterization of a potent and selective inhibitor of Aedes aegypti inward rectifier potassium channels.

Vector-borne diseases such as dengue fever and malaria, which are transmitted by infected female mosquitoes, affect nearly half of the world's population. The emergence of insecticide-resistant mosquito populations is reducing the effectiveness of conventional insecticides and threatening curre...

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Main Authors: Rene Raphemot, Matthew F Rouhier, Daniel R Swale, Emily Days, C David Weaver, Kimberly M Lovell, Leah C Konkel, Darren W Engers, Sean R Bollinger, Corey Hopkins, Peter M Piermarini, Jerod S Denton
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4222822?pdf=render
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spelling doaj-e02339d3e86b4ec08682a15b3ac994af2020-11-25T02:15:26ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-01911e11077210.1371/journal.pone.0110772Discovery and characterization of a potent and selective inhibitor of Aedes aegypti inward rectifier potassium channels.Rene RaphemotMatthew F RouhierDaniel R SwaleEmily DaysC David WeaverKimberly M LovellLeah C KonkelDarren W EngersSean R BollingerCorey HopkinsPeter M PiermariniJerod S DentonVector-borne diseases such as dengue fever and malaria, which are transmitted by infected female mosquitoes, affect nearly half of the world's population. The emergence of insecticide-resistant mosquito populations is reducing the effectiveness of conventional insecticides and threatening current vector control strategies, which has created an urgent need to identify new molecular targets against which novel classes of insecticides can be developed. We previously demonstrated that small molecule inhibitors of mammalian Kir channels represent promising chemicals for new mosquitocide development. In this study, high-throughput screening of approximately 30,000 chemically diverse small-molecules was employed to discover potent and selective inhibitors of Aedes aegypti Kir1 (AeKir1) channels heterologously expressed in HEK293 cells. Of 283 confirmed screening 'hits', the small-molecule inhibitor VU625 was selected for lead optimization and in vivo studies based on its potency and selectivity toward AeKir1, and tractability for medicinal chemistry. In patch clamp electrophysiology experiments of HEK293 cells, VU625 inhibits AeKir1 with an IC50 value of 96.8 nM, making VU625 the most potent inhibitor of AeKir1 described to date. Furthermore, electrophysiology experiments in Xenopus oocytes revealed that VU625 is a weak inhibitor of AeKir2B. Surprisingly, injection of VU625 failed to elicit significant effects on mosquito behavior, urine excretion, or survival. However, when co-injected with probenecid, VU625 inhibited the excretory capacity of mosquitoes and was toxic, suggesting that the compound is a substrate of organic anion and/or ATP-binding cassette (ABC) transporters. The dose-toxicity relationship of VU625 (when co-injected with probenecid) is biphasic, which is consistent with the molecule inhibiting both AeKir1 and AeKir2B with different potencies. This study demonstrates proof-of-concept that potent and highly selective inhibitors of mosquito Kir channels can be developed using conventional drug discovery approaches. Furthermore, it reinforces the notion that the physical and chemical properties that determine a compound's bioavailability in vivo will be critical in determining the efficacy of Kir channel inhibitors as insecticides.http://europepmc.org/articles/PMC4222822?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Rene Raphemot
Matthew F Rouhier
Daniel R Swale
Emily Days
C David Weaver
Kimberly M Lovell
Leah C Konkel
Darren W Engers
Sean R Bollinger
Corey Hopkins
Peter M Piermarini
Jerod S Denton
spellingShingle Rene Raphemot
Matthew F Rouhier
Daniel R Swale
Emily Days
C David Weaver
Kimberly M Lovell
Leah C Konkel
Darren W Engers
Sean R Bollinger
Corey Hopkins
Peter M Piermarini
Jerod S Denton
Discovery and characterization of a potent and selective inhibitor of Aedes aegypti inward rectifier potassium channels.
PLoS ONE
author_facet Rene Raphemot
Matthew F Rouhier
Daniel R Swale
Emily Days
C David Weaver
Kimberly M Lovell
Leah C Konkel
Darren W Engers
Sean R Bollinger
Corey Hopkins
Peter M Piermarini
Jerod S Denton
author_sort Rene Raphemot
title Discovery and characterization of a potent and selective inhibitor of Aedes aegypti inward rectifier potassium channels.
title_short Discovery and characterization of a potent and selective inhibitor of Aedes aegypti inward rectifier potassium channels.
title_full Discovery and characterization of a potent and selective inhibitor of Aedes aegypti inward rectifier potassium channels.
title_fullStr Discovery and characterization of a potent and selective inhibitor of Aedes aegypti inward rectifier potassium channels.
title_full_unstemmed Discovery and characterization of a potent and selective inhibitor of Aedes aegypti inward rectifier potassium channels.
title_sort discovery and characterization of a potent and selective inhibitor of aedes aegypti inward rectifier potassium channels.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Vector-borne diseases such as dengue fever and malaria, which are transmitted by infected female mosquitoes, affect nearly half of the world's population. The emergence of insecticide-resistant mosquito populations is reducing the effectiveness of conventional insecticides and threatening current vector control strategies, which has created an urgent need to identify new molecular targets against which novel classes of insecticides can be developed. We previously demonstrated that small molecule inhibitors of mammalian Kir channels represent promising chemicals for new mosquitocide development. In this study, high-throughput screening of approximately 30,000 chemically diverse small-molecules was employed to discover potent and selective inhibitors of Aedes aegypti Kir1 (AeKir1) channels heterologously expressed in HEK293 cells. Of 283 confirmed screening 'hits', the small-molecule inhibitor VU625 was selected for lead optimization and in vivo studies based on its potency and selectivity toward AeKir1, and tractability for medicinal chemistry. In patch clamp electrophysiology experiments of HEK293 cells, VU625 inhibits AeKir1 with an IC50 value of 96.8 nM, making VU625 the most potent inhibitor of AeKir1 described to date. Furthermore, electrophysiology experiments in Xenopus oocytes revealed that VU625 is a weak inhibitor of AeKir2B. Surprisingly, injection of VU625 failed to elicit significant effects on mosquito behavior, urine excretion, or survival. However, when co-injected with probenecid, VU625 inhibited the excretory capacity of mosquitoes and was toxic, suggesting that the compound is a substrate of organic anion and/or ATP-binding cassette (ABC) transporters. The dose-toxicity relationship of VU625 (when co-injected with probenecid) is biphasic, which is consistent with the molecule inhibiting both AeKir1 and AeKir2B with different potencies. This study demonstrates proof-of-concept that potent and highly selective inhibitors of mosquito Kir channels can be developed using conventional drug discovery approaches. Furthermore, it reinforces the notion that the physical and chemical properties that determine a compound's bioavailability in vivo will be critical in determining the efficacy of Kir channel inhibitors as insecticides.
url http://europepmc.org/articles/PMC4222822?pdf=render
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