A comparative genomic analysis of Xanthomonas arboricola pv. juglandis strains reveal hallmarks of mobile genetic elements in the adaptation and accelerated evolution of virulence
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DC Field | Value | Language |
---|---|---|
dc.contributor | (LCC) Lab. Ciclo Celular | pt_BR |
dc.contributor.author | Assis, Renata A.B. | pt_BR |
dc.contributor.author | Varani, Alessandro M. | pt_BR |
dc.contributor.author | Sagawa, Cintia H.D. | pt_BR |
dc.contributor.author | Patané, José Salvatore Leister | pt_BR |
dc.contributor.author | Setubal, João Carlos | pt_BR |
dc.contributor.author | Uceda-Campos, Guillermo | pt_BR |
dc.contributor.author | Silva, Aline Maria da | pt_BR |
dc.contributor.author | Zaini, Paulo A. | pt_BR |
dc.contributor.author | Almeida, Nalvo F. | pt_BR |
dc.contributor.author | Moreira, Leandro Marcio | pt_BR |
dc.contributor.author | Dandekar, Abhaya M. | pt_BR |
dc.date.accessioned | 2021-06-18T14:08:09Z | - |
dc.date.available | 2021-06-18T14:08:09Z | - |
dc.date.issued | 2021 | pt_BR |
dc.identifier.citation | Assis RA.B., Varani AM., Sagawa CH.D., Patané JSL, Setubal JC, Uceda-Campos G, et al. A comparative genomic analysis of Xanthomonas arboricola pv. juglandis strains reveal hallmarks of mobile genetic elements in the adaptation and accelerated evolution of virulence. Genomics. 2021 July;113(4):2513-2525. doi:10.1016/j.ygeno.2021.06.003. | pt_BR |
dc.identifier.uri | https://repositorio.butantan.gov.br/handle/butantan/3854 | - |
dc.description.abstract | Xanthomonas arboricola pv. juglandis (Xaj) is the most significant aboveground walnut bacterial pathogen. Disease management uses copper-based pesticides which induce pathogen resistance. We examined the genetic repertoire associated with adaptation and virulence evolution in Xaj. Comparative genomics of 32 Xaj strains reveal the possible acquisition and propagation of virulence factors via insertion sequences (IS). Fine-scale annotation revealed a Tn3 transposon (TnXaj417) encoding copper resistance genes acquired by horizontal gene transfer and associated with adaptation and tolerance to metal-based pesticides commonly used to manage pathogens in orchard ecosystems. Phylogenomic analysis reveals IS involvement in acquisition and diversification of type III effector proteins ranging from two to eight in non-pathogenic strains, 16 to 20 in pathogenic strains, besides six other putative effectors with a reduced identity degree found mostly among pathogenic strains. Yersiniabactin, xopK, xopAI, and antibiotic resistance genes are also located near ISs or inside genomic islands and structures resembling composite transposons. | pt_BR |
dc.description.sponsorship | (CAPES) Coordenação de Aperfeiçoamento de Pessoal de Nível Superior | pt_BR |
dc.description.sponsorship | (CNPq) Conselho Nacional de Desenvolvimento Científico e Tecnológico | pt_BR |
dc.description.sponsorship | (FUNDECT) Fundação de Apoio ao Desenvolvimento do Ensino, Ciência e Tecnologia do Estado de Mato Grosso do Sul | pt_BR |
dc.format.extent | 2513-2525 | pt_BR |
dc.language.iso | English | pt_BR |
dc.relation.ispartof | Genomics | pt_BR |
dc.rights | Open access | pt_BR |
dc.rights.uri | https://creativecommons.org/licenses/by-nc-nd/4.0/ | pt_BR |
dc.title | A comparative genomic analysis of Xanthomonas arboricola pv. juglandis strains reveal hallmarks of mobile genetic elements in the adaptation and accelerated evolution of virulence | pt_BR |
dc.type | Article | pt_BR |
dc.rights.license | CC BY-NC-ND | pt_BR |
dc.identifier.doi | 10.1016/j.ygeno.2021.06.003 | pt_BR |
dc.identifier.url | https://doi.org/10.1016/j.ygeno.2021.06.003 | pt_BR |
dc.contributor.external | (UFOP) Universidade Federal de Ouro Preto | pt_BR |
dc.contributor.external | (UC) University of California | pt_BR |
dc.contributor.external | (UNESP) Universidade Estadual Paulista Júlio de Mesquita Filho | pt_BR |
dc.contributor.external | (USP) Universidade de São Paulo | pt_BR |
dc.contributor.external | (UFMS) Universidade Federal de Mato Grosso do Sul | pt_BR |
dc.identifier.citationvolume | 113 | pt_BR |
dc.identifier.citationissue | 4 | pt_BR |
dc.subject.keyword | T3SS effectors | pt_BR |
dc.subject.keyword | copper resistance | pt_BR |
dc.subject.keyword | lateral gene transfer | pt_BR |
dc.subject.keyword | mobile genetic elements | pt_BR |
dc.subject.keyword | replicative transposition | pt_BR |
dc.subject.keyword | genome evolution | pt_BR |
dc.relation.ispartofabbreviated | Genomics | pt_BR |
dc.identifier.citationabnt | v. 113, n. 4, p. 2513-2525, jul. 2021 | pt_BR |
dc.identifier.citationvancouver | 2021 July;113(4):2513-2525 | pt_BR |
dc.contributor.butantan | Patané, José Salvatore Leister|:Pesquisador|:Laboratório Especial de Ciclo Celular | pt_BR |
dc.sponsorship.butantan | (CAPES) Coordenação de Aperfeiçoamento de Pessoal de Nível Superior¦¦3385/2013 | pt_BR |
dc.sponsorship.butantan | (CNPq) Conselho Nacional de Desenvolvimento Científico e Tecnológico¦¦ | pt_BR |
dc.sponsorship.butantan | Fundação de Apoio ao Desenvolvimento do Ensino, Ciência e Tecnologia do Estado de Mato Grosso do Sul (FUNDECT)¦¦141/2016 | pt_BR |
dc.sponsorship.butantan | Fundação de Apoio ao Desenvolvimento do Ensino, Ciência e Tecnologia do Estado de Mato Grosso do Sul (FUNDECT)¦¦007/2015 | pt_BR |
dc.identifier.bvscc | BR78.1 | pt_BR |
dc.identifier.bvsdb | IBProd | pt_BR |
dc.description.dbindexed | Yes | pt_BR |
item.fulltext | Com Texto completo | - |
item.openairetype | Article | - |
item.languageiso639-1 | English | - |
item.grantfulltext | open | - |
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