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Integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector Anopheles coluzzii

Insecticide resistance is a major threat to gains in malaria control, which have been stalling and potentially reversing since 2015. Studies into the causal mechanisms of insecticide resistance are painting an increasingly complicated picture, underlining the need to design and implement targeted st...

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Autores principales: Ingham, Victoria A., Tennessen, Jacob A., Lucas, Eric R., Elg, Sara, Yates, Henrietta Carrington, Carson, Jessica, Guelbeogo, Wamdaogo Moussa, Sagnon, N’Fale, Hughes, Grant L., Heinz, Eva, Neafsey, Daniel E., Ranson, Hilary
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8741062/
https://www.ncbi.nlm.nih.gov/pubmed/34941884
http://dx.doi.org/10.1371/journal.pgen.1009970
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author Ingham, Victoria A.
Tennessen, Jacob A.
Lucas, Eric R.
Elg, Sara
Yates, Henrietta Carrington
Carson, Jessica
Guelbeogo, Wamdaogo Moussa
Sagnon, N’Fale
Hughes, Grant L.
Heinz, Eva
Neafsey, Daniel E.
Ranson, Hilary
author_facet Ingham, Victoria A.
Tennessen, Jacob A.
Lucas, Eric R.
Elg, Sara
Yates, Henrietta Carrington
Carson, Jessica
Guelbeogo, Wamdaogo Moussa
Sagnon, N’Fale
Hughes, Grant L.
Heinz, Eva
Neafsey, Daniel E.
Ranson, Hilary
author_sort Ingham, Victoria A.
collection PubMed
description Insecticide resistance is a major threat to gains in malaria control, which have been stalling and potentially reversing since 2015. Studies into the causal mechanisms of insecticide resistance are painting an increasingly complicated picture, underlining the need to design and implement targeted studies on this phenotype. In this study, we compare three populations of the major malaria vector An. coluzzii: a susceptible and two resistant colonies with the same genetic background. The original colonised resistant population rapidly lost resistance over a 6-month period, a subset of this population was reselected with pyrethroids, and a third population of this colony that did not lose resistance was also available. The original resistant, susceptible and re-selected colonies were subject to RNAseq and whole genome sequencing, which identified a number of changes across the transcriptome and genome linked with resistance. Firstly, an increase in the expression of genes within the oxidative phosphorylation pathway were seen in both resistant populations compared to the susceptible control; this translated phenotypically through an increased respiratory rate, indicating that elevated metabolism is linked directly with resistance. Genome sequencing highlighted several blocks clearly associated with resistance, including the 2Rb inversion. Finally, changes in the microbiome profile were seen, indicating that the microbial composition may play a role in the resistance phenotype. Taken together, this study reveals a highly complicated phenotype in which multiple transcriptomic, genomic and microbiome changes combine to result in insecticide resistance.
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spelling pubmed-87410622022-01-08 Integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector Anopheles coluzzii Ingham, Victoria A. Tennessen, Jacob A. Lucas, Eric R. Elg, Sara Yates, Henrietta Carrington Carson, Jessica Guelbeogo, Wamdaogo Moussa Sagnon, N’Fale Hughes, Grant L. Heinz, Eva Neafsey, Daniel E. Ranson, Hilary PLoS Genet Research Article Insecticide resistance is a major threat to gains in malaria control, which have been stalling and potentially reversing since 2015. Studies into the causal mechanisms of insecticide resistance are painting an increasingly complicated picture, underlining the need to design and implement targeted studies on this phenotype. In this study, we compare three populations of the major malaria vector An. coluzzii: a susceptible and two resistant colonies with the same genetic background. The original colonised resistant population rapidly lost resistance over a 6-month period, a subset of this population was reselected with pyrethroids, and a third population of this colony that did not lose resistance was also available. The original resistant, susceptible and re-selected colonies were subject to RNAseq and whole genome sequencing, which identified a number of changes across the transcriptome and genome linked with resistance. Firstly, an increase in the expression of genes within the oxidative phosphorylation pathway were seen in both resistant populations compared to the susceptible control; this translated phenotypically through an increased respiratory rate, indicating that elevated metabolism is linked directly with resistance. Genome sequencing highlighted several blocks clearly associated with resistance, including the 2Rb inversion. Finally, changes in the microbiome profile were seen, indicating that the microbial composition may play a role in the resistance phenotype. Taken together, this study reveals a highly complicated phenotype in which multiple transcriptomic, genomic and microbiome changes combine to result in insecticide resistance. Public Library of Science 2021-12-23 /pmc/articles/PMC8741062/ /pubmed/34941884 http://dx.doi.org/10.1371/journal.pgen.1009970 Text en © 2021 Ingham et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Ingham, Victoria A.
Tennessen, Jacob A.
Lucas, Eric R.
Elg, Sara
Yates, Henrietta Carrington
Carson, Jessica
Guelbeogo, Wamdaogo Moussa
Sagnon, N’Fale
Hughes, Grant L.
Heinz, Eva
Neafsey, Daniel E.
Ranson, Hilary
Integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector Anopheles coluzzii
title Integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector Anopheles coluzzii
title_full Integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector Anopheles coluzzii
title_fullStr Integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector Anopheles coluzzii
title_full_unstemmed Integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector Anopheles coluzzii
title_short Integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector Anopheles coluzzii
title_sort integration of whole genome sequencing and transcriptomics reveals a complex picture of the reestablishment of insecticide resistance in the major malaria vector anopheles coluzzii
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8741062/
https://www.ncbi.nlm.nih.gov/pubmed/34941884
http://dx.doi.org/10.1371/journal.pgen.1009970
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