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Under-Expression of Chemosensory Genes in Domiciliary Bugs of the Chagas Disease Vector Triatoma brasiliensis

Authors :
Jane Costa
Emmanuelle Jacquin-Joly
Myriam Harry
Carlos Eduardo Almeida
Axelle Marchant
Florence Mougel
UFR Sciences
Université d'Angers (UA)
Evolution ,Genomes Comportement et Ecologie
Université Paris Sud (Paris 11)
Centre National de la Recherche Scientifique (CNRS)
Institut de Recherche pour le Développement (IRD [France-Ouest])
UFR Science
Evolution, Génomes, Comportement et Ecologie (EGCE)
Université Paris-Saclay
Institut d'écologie et des sciences de l'environnement de Paris (IEES)
Centre National de la Recherche Scientifique (CNRS)-Université Paris-Est Créteil Val-de-Marne - Paris 12 (UPEC UP12)-Université Pierre et Marie Curie - Paris 6 (UPMC)-Institut National de la Recherche Agronomique (INRA)
Fundação Oswaldo Cruz (FIOCRUZ)
Réseau International des Instituts Pasteur (RIIP)
Laboratorio de Biodiversid ade Entomologica
Réseau International des Instituts Pasteur (RIIP)-Réseau International des Instituts Pasteur (RIIP)
Universidade Federal da Paraiba (UFPB)
Universidade Estadual de Campinas (UNICAMP)
Conselho Nacional de Desenvolvimento Cientifico e Tecnologico (CNPq)
Fundacao de Amparo a Pesquisa do Estado de Sao Paulo (FAPESP) [2010/17027-0, 2011/22378-0, 2016/08176-9]
French Agence Nationale de la Recherche (ADAPTANTHROP project) [ANR-097-PEXT-009]
labex BASC (University Paris Saclay, France)
Idex Paris Saclay, France
Évolution, génomes, comportement et écologie (EGCE)
Centre National de la Recherche Scientifique (CNRS)-IRD-Université Paris-Sud - Paris 11 (UP11)
Institut d'écologie et des sciences de l'environnement de Paris (iEES)
Laboratório de Biodiversidade Entomológica [Rio de Janeiro]
Instituto Oswaldo Cruz / Oswaldo Cruz Institute [Rio de Janeiro] (IOC)
Réseau International des Instituts Pasteur (RIIP)-Réseau International des Instituts Pasteur (RIIP)-Fundação Oswaldo Cruz (FIOCRUZ)
Université Paris-Sud - Paris 11 (UP11)-IRD-Centre National de la Recherche Scientifique (CNRS)
Institut National de la Recherche Agronomique (INRA)-Université Pierre et Marie Curie - Paris 6 (UPMC)-Université Paris-Est Créteil Val-de-Marne - Paris 12 (UPEC UP12)-Centre National de la Recherche Scientifique (CNRS)
Fundação Oswaldo Cruz / Oswaldo Cruz Foundation (FIOCRUZ)
Réseau International des Instituts Pasteur (RIIP)-Réseau International des Instituts Pasteur (RIIP)-Fundação Oswaldo Cruz / Oswaldo Cruz Foundation (FIOCRUZ)
Universidade Estadual de Campinas = University of Campinas (UNICAMP)
Source :
PLoS Neglected Tropical Diseases, PLoS Neglected Tropical Diseases, Public Library of Science, 2016, 10 (10), pp.1-26. ⟨10.1371/journal.pntd.0005067⟩, PLoS Neglected Tropical Diseases, 2016, 10 (10), pp.1-26. ⟨10.1371/journal.pntd.0005067⟩, Plos Neglected Tropical Diseases 10 (10), 1-26. (2016), PLoS Neglected Tropical Diseases, Vol 10, Iss 10, p e0005067 (2016)
Publication Year :
2016
Publisher :
Public Library of Science (PLoS), 2016.

Abstract

Background In Latin America, the bloodsucking bugs Triatominae are vectors of Trypanosoma cruzi, the parasite that causes Chagas disease. Chemical elimination programs have been launched to control Chagas disease vectors. However, the disease persists because native vectors from sylvatic habitats are able to (re)colonize houses—a process called domiciliation. Triatoma brasiliensis is one example. Because the chemosensory system allows insects to interact with their environment and plays a key role in insect adaption, we conducted a descriptive and comparative study of the chemosensory transcriptome of T. brasiliensis samples from different ecotopes. Methodology/Principal Finding In a reference transcriptome built using de novo assembly, we found transcripts encoding 27 odorant-binding proteins (OBPs), 17 chemosensory proteins (CSPs), 3 odorant receptors (ORs), 5 transient receptor potential channel (TRPs), 1 sensory neuron membrane protein (SNMPs), 25 takeout proteins, 72 cytochrome P450s, 5 gluthatione S-transferases, and 49 cuticular proteins. Using protein phylogenies, we showed that most of the OBPs and CSPs for T. brasiliensis had well supported orthologs in the kissing bug Rhodnius prolixus. We also showed a higher number of these genes within the bloodsucking bugs and more generally within all Hemipterans compared to the other species in the super-order Paraneoptera. Using both DESeq2 and EdgeR software, we performed differential expression analyses between samples of T. brasiliensis, taking into account their environment (sylvatic, peridomiciliary and domiciliary) and sex. We also searched clusters of co-expressed contigs using HTSCluster. Among differentially expressed (DE) contigs, most were under-expressed in the chemosensory organs of the domiciliary bugs compared to the other samples and in females compared to males. We clearly identified DE genes that play a role in the chemosensory system. Conclusion/Significance Chemosensory genes could be good candidates for genes that contribute to adaptation or plastic rearrangement to an anthropogenic system. The domiciliary environment probably includes less diversity of xenobiotics and probably has more stable abiotic parameters than do sylvatic and peridomiciliary environments. This could explain why both detoxification and cuticle protein genes are less expressed in domiciliary bugs. Understanding the molecular basis for how vectors adapt to human dwellings may reveal new tools to control disease vectors; for example, by disrupting chemical communication.<br />Author Summary In Latin America, bloodsucking bugs are vectors of Trypanosoma cruzi, the parasite that causes Chagas disease, which is one of the most important public health problems for rural human populations. Though chemical control campaigns have been effective against vectors, the disease persists because native vectors from natural habitats have been able to recolonize human habitations. This is the case of Triatoma brasiliensis. Its capacity to adapt to a new habitat could be linked to changes in the number and/or the expression of chemosensory system genes, particularly those encoding odorant-binding proteins (OBPs) and chemosensory proteins (CSPs), which are important for detecting odor stimuli. This study looks at the chemosensory system of Triatominae in an attempt to document the adaptation process and the domiciliation of disease vectors. We used RNAseq to annotate chemosensory genes and to evidence differential gene expression in T. brasiliensis samples from different habitats.

Details

ISSN :
19352735 and 19352727
Volume :
10
Database :
OpenAIRE
Journal :
PLOS Neglected Tropical Diseases
Accession number :
edsair.doi.dedup.....dae47e2c82e3a0d2f9b36558eecf0e16
Full Text :
https://doi.org/10.1371/journal.pntd.0005067