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Genome-Wide Transcriptional Analysis and Functional Validation Linked a Cluster of Epsilon Glutathione S-Transferases with Insecticide Resistance in the Major Malaria Vector Anopheles funestus across Africa

Resistance is threatening the effectiveness of insecticide-based interventions in use for malaria control. Pinpointing genes associated with resistance is crucial for evidence-based resistance management targeting the major malaria vectors. Here, a combination of RNA-seq based genome-wide transcript...

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Autores principales: Kouamo, Mersimine F. M., Ibrahim, Sulaiman S., Hearn, Jack, Riveron, Jacob M., Kusimo, Michael, Tchouakui, Magellan, Ebai, Terence, Tchapga, Williams, Wondji, Murielle J., Irving, Helen, Boudjeko, Thaddée, Boyom, Fabrice F., Wondji, Charles S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8069850/
https://www.ncbi.nlm.nih.gov/pubmed/33924421
http://dx.doi.org/10.3390/genes12040561
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author Kouamo, Mersimine F. M.
Ibrahim, Sulaiman S.
Hearn, Jack
Riveron, Jacob M.
Kusimo, Michael
Tchouakui, Magellan
Ebai, Terence
Tchapga, Williams
Wondji, Murielle J.
Irving, Helen
Boudjeko, Thaddée
Boyom, Fabrice F.
Wondji, Charles S.
author_facet Kouamo, Mersimine F. M.
Ibrahim, Sulaiman S.
Hearn, Jack
Riveron, Jacob M.
Kusimo, Michael
Tchouakui, Magellan
Ebai, Terence
Tchapga, Williams
Wondji, Murielle J.
Irving, Helen
Boudjeko, Thaddée
Boyom, Fabrice F.
Wondji, Charles S.
author_sort Kouamo, Mersimine F. M.
collection PubMed
description Resistance is threatening the effectiveness of insecticide-based interventions in use for malaria control. Pinpointing genes associated with resistance is crucial for evidence-based resistance management targeting the major malaria vectors. Here, a combination of RNA-seq based genome-wide transcriptional analysis and RNA-silencing in vivo functional validation were used to identify key insecticide resistance genes associated with DDT and DDT/permethrin cross-resistance across Africa. A cluster of glutathione-S-transferase from epsilon group were found to be overexpressed in resistant populations of Anopheles funestus across Africa including GSTe1 [Cameroon (fold change, FC: 2.54), Ghana (4.20), Malawi (2.51)], GSTe2 [Cameroon (4.47), Ghana (7.52), Malawi (2.13)], GSTe3 [Cameroon (2.49), Uganda (2.60)], GSTe4 in Ghana (3.47), GSTe5 [Ghana (2.94), Malawi (2.26)], GSTe6 [Cameroun (3.0), Ghana (3.11), Malawi (3.07), Uganda (3.78)] and GSTe7 (2.39) in Ghana. Validation of GSTe genes expression profiles by qPCR confirmed that the genes are differentially expressed across Africa with a greater overexpression in DDT-resistant mosquitoes. RNAi-based knock-down analyses supported that five GSTe genes are playing a major role in resistance to pyrethroids (permethrin and deltamethrin) and DDT in An. funestus, with a significant recovery of susceptibility observed when GSTe2, 3, 4, 5 and GSTe6 were silenced. These findings established that GSTe3, 4, 5 and 6 contribute to DDT resistance and should be further characterized to identify their specific genetic variants, to help design DNA-based diagnostic assays, as previously done for the 119F-GSTe2 mutation. This study highlights the role of GSTes in the development of resistance to insecticides in malaria vectors and calls for actions to mitigate this resistance.
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spelling pubmed-80698502021-04-26 Genome-Wide Transcriptional Analysis and Functional Validation Linked a Cluster of Epsilon Glutathione S-Transferases with Insecticide Resistance in the Major Malaria Vector Anopheles funestus across Africa Kouamo, Mersimine F. M. Ibrahim, Sulaiman S. Hearn, Jack Riveron, Jacob M. Kusimo, Michael Tchouakui, Magellan Ebai, Terence Tchapga, Williams Wondji, Murielle J. Irving, Helen Boudjeko, Thaddée Boyom, Fabrice F. Wondji, Charles S. Genes (Basel) Article Resistance is threatening the effectiveness of insecticide-based interventions in use for malaria control. Pinpointing genes associated with resistance is crucial for evidence-based resistance management targeting the major malaria vectors. Here, a combination of RNA-seq based genome-wide transcriptional analysis and RNA-silencing in vivo functional validation were used to identify key insecticide resistance genes associated with DDT and DDT/permethrin cross-resistance across Africa. A cluster of glutathione-S-transferase from epsilon group were found to be overexpressed in resistant populations of Anopheles funestus across Africa including GSTe1 [Cameroon (fold change, FC: 2.54), Ghana (4.20), Malawi (2.51)], GSTe2 [Cameroon (4.47), Ghana (7.52), Malawi (2.13)], GSTe3 [Cameroon (2.49), Uganda (2.60)], GSTe4 in Ghana (3.47), GSTe5 [Ghana (2.94), Malawi (2.26)], GSTe6 [Cameroun (3.0), Ghana (3.11), Malawi (3.07), Uganda (3.78)] and GSTe7 (2.39) in Ghana. Validation of GSTe genes expression profiles by qPCR confirmed that the genes are differentially expressed across Africa with a greater overexpression in DDT-resistant mosquitoes. RNAi-based knock-down analyses supported that five GSTe genes are playing a major role in resistance to pyrethroids (permethrin and deltamethrin) and DDT in An. funestus, with a significant recovery of susceptibility observed when GSTe2, 3, 4, 5 and GSTe6 were silenced. These findings established that GSTe3, 4, 5 and 6 contribute to DDT resistance and should be further characterized to identify their specific genetic variants, to help design DNA-based diagnostic assays, as previously done for the 119F-GSTe2 mutation. This study highlights the role of GSTes in the development of resistance to insecticides in malaria vectors and calls for actions to mitigate this resistance. MDPI 2021-04-13 /pmc/articles/PMC8069850/ /pubmed/33924421 http://dx.doi.org/10.3390/genes12040561 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kouamo, Mersimine F. M.
Ibrahim, Sulaiman S.
Hearn, Jack
Riveron, Jacob M.
Kusimo, Michael
Tchouakui, Magellan
Ebai, Terence
Tchapga, Williams
Wondji, Murielle J.
Irving, Helen
Boudjeko, Thaddée
Boyom, Fabrice F.
Wondji, Charles S.
Genome-Wide Transcriptional Analysis and Functional Validation Linked a Cluster of Epsilon Glutathione S-Transferases with Insecticide Resistance in the Major Malaria Vector Anopheles funestus across Africa
title Genome-Wide Transcriptional Analysis and Functional Validation Linked a Cluster of Epsilon Glutathione S-Transferases with Insecticide Resistance in the Major Malaria Vector Anopheles funestus across Africa
title_full Genome-Wide Transcriptional Analysis and Functional Validation Linked a Cluster of Epsilon Glutathione S-Transferases with Insecticide Resistance in the Major Malaria Vector Anopheles funestus across Africa
title_fullStr Genome-Wide Transcriptional Analysis and Functional Validation Linked a Cluster of Epsilon Glutathione S-Transferases with Insecticide Resistance in the Major Malaria Vector Anopheles funestus across Africa
title_full_unstemmed Genome-Wide Transcriptional Analysis and Functional Validation Linked a Cluster of Epsilon Glutathione S-Transferases with Insecticide Resistance in the Major Malaria Vector Anopheles funestus across Africa
title_short Genome-Wide Transcriptional Analysis and Functional Validation Linked a Cluster of Epsilon Glutathione S-Transferases with Insecticide Resistance in the Major Malaria Vector Anopheles funestus across Africa
title_sort genome-wide transcriptional analysis and functional validation linked a cluster of epsilon glutathione s-transferases with insecticide resistance in the major malaria vector anopheles funestus across africa
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8069850/
https://www.ncbi.nlm.nih.gov/pubmed/33924421
http://dx.doi.org/10.3390/genes12040561
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