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Pyrosequencing the Bemisia tabaci Transcriptome Reveals a Highly Diverse Bacterial Community and a Robust System for Insecticide Resistance

BACKGROUND: Bemisia tabaci (Gennadius) is a phloem-feeding insect poised to become one of the major insect pests in open field and greenhouse production systems throughout the world. The high level of resistance to insecticides is a main factor that hinders continued use of insecticides for suppress...

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Autores principales: Xie, Wen, Meng, Qing-shu, Wu, Qing-jun, Wang, Shao-li, Yang, Xin, Yang, Ni-na, Li, Ru-mei, Jiao, Xiao-guo, Pan, Hui-peng, Liu, Bai-ming, Su, Qi, Xu, Bao-yun, Hu, Song-nian, Zhou, Xu-guo, Zhang, You-jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3340392/
https://www.ncbi.nlm.nih.gov/pubmed/22558125
http://dx.doi.org/10.1371/journal.pone.0035181
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author Xie, Wen
Meng, Qing-shu
Wu, Qing-jun
Wang, Shao-li
Yang, Xin
Yang, Ni-na
Li, Ru-mei
Jiao, Xiao-guo
Pan, Hui-peng
Liu, Bai-ming
Su, Qi
Xu, Bao-yun
Hu, Song-nian
Zhou, Xu-guo
Zhang, You-jun
author_facet Xie, Wen
Meng, Qing-shu
Wu, Qing-jun
Wang, Shao-li
Yang, Xin
Yang, Ni-na
Li, Ru-mei
Jiao, Xiao-guo
Pan, Hui-peng
Liu, Bai-ming
Su, Qi
Xu, Bao-yun
Hu, Song-nian
Zhou, Xu-guo
Zhang, You-jun
author_sort Xie, Wen
collection PubMed
description BACKGROUND: Bemisia tabaci (Gennadius) is a phloem-feeding insect poised to become one of the major insect pests in open field and greenhouse production systems throughout the world. The high level of resistance to insecticides is a main factor that hinders continued use of insecticides for suppression of B. tabaci. Despite its prevalence, little is known about B. tabaci at the genome level. To fill this gap, an invasive B. tabaci B biotype was subjected to pyrosequencing-based transcriptome analysis to identify genes and gene networks putatively involved in various physiological and toxicological processes. METHODOLOGY AND PRINCIPAL FINDINGS: Using Roche 454 pyrosequencing, 857,205 reads containing approximately 340 megabases were obtained from the B. tabaci transcriptome. De novo assembly generated 178,669 unigenes including 30,980 from insects, 17,881 from bacteria, and 129,808 from the nohit. A total of 50,835 (28.45%) unigenes showed similarity to the non-redundant database in GenBank with a cut-off E-value of 10–5. Among them, 40,611 unigenes were assigned to one or more GO terms and 6,917 unigenes were assigned to 288 known pathways. De novo metatranscriptome analysis revealed highly diverse bacterial symbionts in B. tabaci, and demonstrated the host-symbiont cooperation in amino acid production. In-depth transcriptome analysis indentified putative molecular markers, and genes potentially involved in insecticide resistance and nutrient digestion. The utility of this transcriptome was validated by a thiamethoxam resistance study, in which annotated cytochrome P450 genes were significantly overexpressed in the resistant B. tabaci in comparison to its susceptible counterparts. CONCLUSIONS: This transcriptome/metatranscriptome analysis sheds light on the molecular understanding of symbiosis and insecticide resistance in an agriculturally important phloem-feeding insect pest, and lays the foundation for future functional genomics research of the B. tabaci complex. Moreover, current pyrosequencing effort greatly enriched the existing whitefly EST database, and makes RNAseq a viable option for future genomic analysis.
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spelling pubmed-33403922012-05-03 Pyrosequencing the Bemisia tabaci Transcriptome Reveals a Highly Diverse Bacterial Community and a Robust System for Insecticide Resistance Xie, Wen Meng, Qing-shu Wu, Qing-jun Wang, Shao-li Yang, Xin Yang, Ni-na Li, Ru-mei Jiao, Xiao-guo Pan, Hui-peng Liu, Bai-ming Su, Qi Xu, Bao-yun Hu, Song-nian Zhou, Xu-guo Zhang, You-jun PLoS One Research Article BACKGROUND: Bemisia tabaci (Gennadius) is a phloem-feeding insect poised to become one of the major insect pests in open field and greenhouse production systems throughout the world. The high level of resistance to insecticides is a main factor that hinders continued use of insecticides for suppression of B. tabaci. Despite its prevalence, little is known about B. tabaci at the genome level. To fill this gap, an invasive B. tabaci B biotype was subjected to pyrosequencing-based transcriptome analysis to identify genes and gene networks putatively involved in various physiological and toxicological processes. METHODOLOGY AND PRINCIPAL FINDINGS: Using Roche 454 pyrosequencing, 857,205 reads containing approximately 340 megabases were obtained from the B. tabaci transcriptome. De novo assembly generated 178,669 unigenes including 30,980 from insects, 17,881 from bacteria, and 129,808 from the nohit. A total of 50,835 (28.45%) unigenes showed similarity to the non-redundant database in GenBank with a cut-off E-value of 10–5. Among them, 40,611 unigenes were assigned to one or more GO terms and 6,917 unigenes were assigned to 288 known pathways. De novo metatranscriptome analysis revealed highly diverse bacterial symbionts in B. tabaci, and demonstrated the host-symbiont cooperation in amino acid production. In-depth transcriptome analysis indentified putative molecular markers, and genes potentially involved in insecticide resistance and nutrient digestion. The utility of this transcriptome was validated by a thiamethoxam resistance study, in which annotated cytochrome P450 genes were significantly overexpressed in the resistant B. tabaci in comparison to its susceptible counterparts. CONCLUSIONS: This transcriptome/metatranscriptome analysis sheds light on the molecular understanding of symbiosis and insecticide resistance in an agriculturally important phloem-feeding insect pest, and lays the foundation for future functional genomics research of the B. tabaci complex. Moreover, current pyrosequencing effort greatly enriched the existing whitefly EST database, and makes RNAseq a viable option for future genomic analysis. Public Library of Science 2012-04-30 /pmc/articles/PMC3340392/ /pubmed/22558125 http://dx.doi.org/10.1371/journal.pone.0035181 Text en Xie 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
Xie, Wen
Meng, Qing-shu
Wu, Qing-jun
Wang, Shao-li
Yang, Xin
Yang, Ni-na
Li, Ru-mei
Jiao, Xiao-guo
Pan, Hui-peng
Liu, Bai-ming
Su, Qi
Xu, Bao-yun
Hu, Song-nian
Zhou, Xu-guo
Zhang, You-jun
Pyrosequencing the Bemisia tabaci Transcriptome Reveals a Highly Diverse Bacterial Community and a Robust System for Insecticide Resistance
title Pyrosequencing the Bemisia tabaci Transcriptome Reveals a Highly Diverse Bacterial Community and a Robust System for Insecticide Resistance
title_full Pyrosequencing the Bemisia tabaci Transcriptome Reveals a Highly Diverse Bacterial Community and a Robust System for Insecticide Resistance
title_fullStr Pyrosequencing the Bemisia tabaci Transcriptome Reveals a Highly Diverse Bacterial Community and a Robust System for Insecticide Resistance
title_full_unstemmed Pyrosequencing the Bemisia tabaci Transcriptome Reveals a Highly Diverse Bacterial Community and a Robust System for Insecticide Resistance
title_short Pyrosequencing the Bemisia tabaci Transcriptome Reveals a Highly Diverse Bacterial Community and a Robust System for Insecticide Resistance
title_sort pyrosequencing the bemisia tabaci transcriptome reveals a highly diverse bacterial community and a robust system for insecticide resistance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3340392/
https://www.ncbi.nlm.nih.gov/pubmed/22558125
http://dx.doi.org/10.1371/journal.pone.0035181
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