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Ribosomal Protein S29 Regulates Metabolic Insecticide Resistance through Binding and Degradation of CYP6N3

BACKGROUND: Many diseases are transmitted by mosquitoes, including malaria, dengue fever, yellow fever, filariasis, and West Nile fever. Chemical control plays a major role in managing mosquito-borne diseases. However, excessive and continuous application of insecticides has caused the development o...

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Autores principales: Yu, Jing, Hu, Shengli, Ma, Kai, Sun, Linchun, Hu, Hongxia, Zou, Feifei, Guo, Qin, Lei, Zhentao, Zhou, Dan, Sun, Yan, Zhang, Donghui, Ma, Lei, Shen, Bo, Zhu, Changliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3984272/
https://www.ncbi.nlm.nih.gov/pubmed/24728095
http://dx.doi.org/10.1371/journal.pone.0094611
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author Yu, Jing
Hu, Shengli
Ma, Kai
Sun, Linchun
Hu, Hongxia
Zou, Feifei
Guo, Qin
Lei, Zhentao
Zhou, Dan
Sun, Yan
Zhang, Donghui
Ma, Lei
Shen, Bo
Zhu, Changliang
author_facet Yu, Jing
Hu, Shengli
Ma, Kai
Sun, Linchun
Hu, Hongxia
Zou, Feifei
Guo, Qin
Lei, Zhentao
Zhou, Dan
Sun, Yan
Zhang, Donghui
Ma, Lei
Shen, Bo
Zhu, Changliang
author_sort Yu, Jing
collection PubMed
description BACKGROUND: Many diseases are transmitted by mosquitoes, including malaria, dengue fever, yellow fever, filariasis, and West Nile fever. Chemical control plays a major role in managing mosquito-borne diseases. However, excessive and continuous application of insecticides has caused the development of insecticide resistance in many species including mosquito, and this has become the major obstacle to controlling mosquito-borne diseases. Insecticide resistance is the result of complex polygenic inheritance, and the mechanisms are not well understood. Ribosomal protein RPS29 was found to be associated with DM resistance in our previous study. In this study, we aim to further investigate the involvement of RPS29 in deltamethrin resistance. METHODOLOGY AND PRINCIPAL FINDINGS: In this study, tandem affinity purification was used to identify proteins that can interact with RPS29. Among the candidate proteins, CYP6N3, a member of the CYP450 superfamily, was identified, and binding to RPS29 was confirmed in vitro and in vivo by GST pull-down and immunofluorescence. CCK-8 assay was used to investigate the RPS29-CTP6N3 interaction in relation to DM resistance. CYP6N3 overexpression significantly enhanced DM resistance and insect cell viability, but this was reversed by RPS29 overexpression. Western blot was used to study the mechanism of interaction between RPS29 and CYP6N3. RPS29 increases CYP6N3 protein degradation through the proteasome. CONCLUSIONS AND SIGNIFICANCE: These observations indicate that CYP6N3, a novel RPS29-interacting partner, could stimulate deltamethrin resistance in mosquito cells and RPS29 overexpression targeted CYP6N3 for proteosomal degradation, abrogating the CYP6N3-associated resistence to deltamethrin. Our findings provide a novel mechanism associated with CYP450s mediated DM resistance.
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spelling pubmed-39842722014-04-15 Ribosomal Protein S29 Regulates Metabolic Insecticide Resistance through Binding and Degradation of CYP6N3 Yu, Jing Hu, Shengli Ma, Kai Sun, Linchun Hu, Hongxia Zou, Feifei Guo, Qin Lei, Zhentao Zhou, Dan Sun, Yan Zhang, Donghui Ma, Lei Shen, Bo Zhu, Changliang PLoS One Research Article BACKGROUND: Many diseases are transmitted by mosquitoes, including malaria, dengue fever, yellow fever, filariasis, and West Nile fever. Chemical control plays a major role in managing mosquito-borne diseases. However, excessive and continuous application of insecticides has caused the development of insecticide resistance in many species including mosquito, and this has become the major obstacle to controlling mosquito-borne diseases. Insecticide resistance is the result of complex polygenic inheritance, and the mechanisms are not well understood. Ribosomal protein RPS29 was found to be associated with DM resistance in our previous study. In this study, we aim to further investigate the involvement of RPS29 in deltamethrin resistance. METHODOLOGY AND PRINCIPAL FINDINGS: In this study, tandem affinity purification was used to identify proteins that can interact with RPS29. Among the candidate proteins, CYP6N3, a member of the CYP450 superfamily, was identified, and binding to RPS29 was confirmed in vitro and in vivo by GST pull-down and immunofluorescence. CCK-8 assay was used to investigate the RPS29-CTP6N3 interaction in relation to DM resistance. CYP6N3 overexpression significantly enhanced DM resistance and insect cell viability, but this was reversed by RPS29 overexpression. Western blot was used to study the mechanism of interaction between RPS29 and CYP6N3. RPS29 increases CYP6N3 protein degradation through the proteasome. CONCLUSIONS AND SIGNIFICANCE: These observations indicate that CYP6N3, a novel RPS29-interacting partner, could stimulate deltamethrin resistance in mosquito cells and RPS29 overexpression targeted CYP6N3 for proteosomal degradation, abrogating the CYP6N3-associated resistence to deltamethrin. Our findings provide a novel mechanism associated with CYP450s mediated DM resistance. Public Library of Science 2014-04-11 /pmc/articles/PMC3984272/ /pubmed/24728095 http://dx.doi.org/10.1371/journal.pone.0094611 Text en © 2014 Yu 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Yu, Jing
Hu, Shengli
Ma, Kai
Sun, Linchun
Hu, Hongxia
Zou, Feifei
Guo, Qin
Lei, Zhentao
Zhou, Dan
Sun, Yan
Zhang, Donghui
Ma, Lei
Shen, Bo
Zhu, Changliang
Ribosomal Protein S29 Regulates Metabolic Insecticide Resistance through Binding and Degradation of CYP6N3
title Ribosomal Protein S29 Regulates Metabolic Insecticide Resistance through Binding and Degradation of CYP6N3
title_full Ribosomal Protein S29 Regulates Metabolic Insecticide Resistance through Binding and Degradation of CYP6N3
title_fullStr Ribosomal Protein S29 Regulates Metabolic Insecticide Resistance through Binding and Degradation of CYP6N3
title_full_unstemmed Ribosomal Protein S29 Regulates Metabolic Insecticide Resistance through Binding and Degradation of CYP6N3
title_short Ribosomal Protein S29 Regulates Metabolic Insecticide Resistance through Binding and Degradation of CYP6N3
title_sort ribosomal protein s29 regulates metabolic insecticide resistance through binding and degradation of cyp6n3
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3984272/
https://www.ncbi.nlm.nih.gov/pubmed/24728095
http://dx.doi.org/10.1371/journal.pone.0094611
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