Cargando…
High-throughput genotyping of a full voltage-gated sodium channel gene via genomic DNA using target capture sequencing and analytical pipeline MoNaS to discover novel insecticide resistance mutations
In insects, the voltage-gated sodium channel (VGSC) is the primary target site of pyrethroid insecticides. Various amino acid substitutions in the VGSC protein, which are selected under insecticide pressure, are known to confer insecticide resistance. In the genome, the VGSC gene consists of more th...
Autores principales: | , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2019
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6886866/ https://www.ncbi.nlm.nih.gov/pubmed/31738756 http://dx.doi.org/10.1371/journal.pntd.0007818 |
_version_ | 1783474941077749760 |
---|---|
author | Itokawa, Kentaro Sekizuka, Tsuyoshi Maekawa, Yoshihide Yatsu, Koji Komagata, Osamu Sugiura, Masaaki Sasaki, Tomonori Tomita, Takashi Kuroda, Makoto Sawabe, Kyoko Kasai, Shinji |
author_facet | Itokawa, Kentaro Sekizuka, Tsuyoshi Maekawa, Yoshihide Yatsu, Koji Komagata, Osamu Sugiura, Masaaki Sasaki, Tomonori Tomita, Takashi Kuroda, Makoto Sawabe, Kyoko Kasai, Shinji |
author_sort | Itokawa, Kentaro |
collection | PubMed |
description | In insects, the voltage-gated sodium channel (VGSC) is the primary target site of pyrethroid insecticides. Various amino acid substitutions in the VGSC protein, which are selected under insecticide pressure, are known to confer insecticide resistance. In the genome, the VGSC gene consists of more than 30 exons sparsely distributed across a large genomic region, which often exceeds 100 kbp. Due to this complex genomic structure, it is often challenging to genotype full coding nucleotide sequences (CDSs) of VGSC from individual genomic DNA (gDNA). In this study, we designed biotinylated oligonucleotide probes from CDSs of VGSC of Asian tiger mosquito, Aedes albopictus. The probe set effectively concentrated (>80,000-fold) all targeted regions of gene VGSC from pooled barcoded Illumina libraries each constructed from individual A. albopictus gDNAs. The probe set also captured all orthologous VGSC CDSs, except some tiny exons, from the gDNA of other Culicinae mosquitos, A. aegypti and Culex pipiens complex, with comparable efficiency as a result of the high nucleotide-level conservation of VGSC. To improve efficiency of the downstream bioinformatic process, we developed an automated pipeline—MoNaS (Mosquito Na(+) channel mutation Search)—which calls amino acid substitutions in the VGSC from NGS reads and compares those to known resistance mutations. The proposed method and our bioinformatic tool should facilitate the discovery of novel amino acid variants conferring insecticide resistance on VGSC and population genetic studies on resistance alleles (with respect to the origin, selection, and migration etc.) in both clinically and agriculturally important insect pests. |
format | Online Article Text |
id | pubmed-6886866 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-68868662019-12-13 High-throughput genotyping of a full voltage-gated sodium channel gene via genomic DNA using target capture sequencing and analytical pipeline MoNaS to discover novel insecticide resistance mutations Itokawa, Kentaro Sekizuka, Tsuyoshi Maekawa, Yoshihide Yatsu, Koji Komagata, Osamu Sugiura, Masaaki Sasaki, Tomonori Tomita, Takashi Kuroda, Makoto Sawabe, Kyoko Kasai, Shinji PLoS Negl Trop Dis Research Article In insects, the voltage-gated sodium channel (VGSC) is the primary target site of pyrethroid insecticides. Various amino acid substitutions in the VGSC protein, which are selected under insecticide pressure, are known to confer insecticide resistance. In the genome, the VGSC gene consists of more than 30 exons sparsely distributed across a large genomic region, which often exceeds 100 kbp. Due to this complex genomic structure, it is often challenging to genotype full coding nucleotide sequences (CDSs) of VGSC from individual genomic DNA (gDNA). In this study, we designed biotinylated oligonucleotide probes from CDSs of VGSC of Asian tiger mosquito, Aedes albopictus. The probe set effectively concentrated (>80,000-fold) all targeted regions of gene VGSC from pooled barcoded Illumina libraries each constructed from individual A. albopictus gDNAs. The probe set also captured all orthologous VGSC CDSs, except some tiny exons, from the gDNA of other Culicinae mosquitos, A. aegypti and Culex pipiens complex, with comparable efficiency as a result of the high nucleotide-level conservation of VGSC. To improve efficiency of the downstream bioinformatic process, we developed an automated pipeline—MoNaS (Mosquito Na(+) channel mutation Search)—which calls amino acid substitutions in the VGSC from NGS reads and compares those to known resistance mutations. The proposed method and our bioinformatic tool should facilitate the discovery of novel amino acid variants conferring insecticide resistance on VGSC and population genetic studies on resistance alleles (with respect to the origin, selection, and migration etc.) in both clinically and agriculturally important insect pests. Public Library of Science 2019-11-18 /pmc/articles/PMC6886866/ /pubmed/31738756 http://dx.doi.org/10.1371/journal.pntd.0007818 Text en © 2019 Itokawa et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://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 Itokawa, Kentaro Sekizuka, Tsuyoshi Maekawa, Yoshihide Yatsu, Koji Komagata, Osamu Sugiura, Masaaki Sasaki, Tomonori Tomita, Takashi Kuroda, Makoto Sawabe, Kyoko Kasai, Shinji High-throughput genotyping of a full voltage-gated sodium channel gene via genomic DNA using target capture sequencing and analytical pipeline MoNaS to discover novel insecticide resistance mutations |
title | High-throughput genotyping of a full voltage-gated sodium channel gene via genomic DNA using target capture sequencing and analytical pipeline MoNaS to discover novel insecticide resistance mutations |
title_full | High-throughput genotyping of a full voltage-gated sodium channel gene via genomic DNA using target capture sequencing and analytical pipeline MoNaS to discover novel insecticide resistance mutations |
title_fullStr | High-throughput genotyping of a full voltage-gated sodium channel gene via genomic DNA using target capture sequencing and analytical pipeline MoNaS to discover novel insecticide resistance mutations |
title_full_unstemmed | High-throughput genotyping of a full voltage-gated sodium channel gene via genomic DNA using target capture sequencing and analytical pipeline MoNaS to discover novel insecticide resistance mutations |
title_short | High-throughput genotyping of a full voltage-gated sodium channel gene via genomic DNA using target capture sequencing and analytical pipeline MoNaS to discover novel insecticide resistance mutations |
title_sort | high-throughput genotyping of a full voltage-gated sodium channel gene via genomic dna using target capture sequencing and analytical pipeline monas to discover novel insecticide resistance mutations |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6886866/ https://www.ncbi.nlm.nih.gov/pubmed/31738756 http://dx.doi.org/10.1371/journal.pntd.0007818 |
work_keys_str_mv | AT itokawakentaro highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT sekizukatsuyoshi highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT maekawayoshihide highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT yatsukoji highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT komagataosamu highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT sugiuramasaaki highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT sasakitomonori highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT tomitatakashi highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT kurodamakoto highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT sawabekyoko highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations AT kasaishinji highthroughputgenotypingofafullvoltagegatedsodiumchannelgeneviagenomicdnausingtargetcapturesequencingandanalyticalpipelinemonastodiscovernovelinsecticideresistancemutations |