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Structures of N-Glycans of Bothrops Venoms Revealed as Molecular Signatures that Contribute to Venom Phenotype in Viperid Snakes.
Andrade-Silva, Débora; Ashline, David; Tran, Thuy; Lopes, Aline Soriano; Travaglia Cardoso, Silvia Regina; Reis, Marcelo da Silva; Zelanis, André; Serrano, Solange M T; Reinhold, Vernon.
Afiliação
  • Andrade-Silva D; From the ‡Laboratório Especial de Toxinologia Aplicada.
  • Ashline D; §The Glycomics Center, University of New Hampshire, Durham, NH 03824.
  • Tran T; §The Glycomics Center, University of New Hampshire, Durham, NH 03824.
  • Lopes AS; ‖Departamento de Química, Instituto de Ciências Ambientais, Químicas e Farmacêuticas, Universidade Federal de São Paulo, Diadema, 09913-030 Brazil.
  • Travaglia Cardoso SR; **Museu Biológico, Instituto Butantan, São Paulo, 05503-900, Brazil.
  • Reis MDS; ¶Laboratório Especial de Ciclo Celular, Center of Toxins, Immune-Response, and Cell Signaling (CeTICS), Instituto Butantan, São Paulo, 05503-900, Brazil.
  • Zelanis A; ‡‡Instituto de Ciência e Tecnologia, Universidade Federal de São Paulo (ICT-UNIFESP), São José dos Campos, 12231-280, Brazil.
  • Serrano SMT; From the ‡Laboratório Especial de Toxinologia Aplicada, solange.serrano@butantan.gov.br vnr@unh.edu.
  • Reinhold V; §The Glycomics Center, University of New Hampshire, Durham, NH 03824; solange.serrano@butantan.gov.br vnr@unh.edu.
Mol Cell Proteomics ; 17(7): 1261-1284, 2018 07.
Article em En | MEDLINE | ID: mdl-29716988
The complexity of snake venoms has long been investigated to explore a myriad of biologically active proteins and peptides that are used for immobilizing or killing prey, and are responsible for the pathological effects observed on envenomation. Glycosylation is the main post-translational modification (PTM) of viperid venoms but currently there is little understanding of how protein glycosylation impacts the variation of venom proteomes. We have previously reported that Bothrops venom glycoproteomes contain a core of components that markedly define their composition and parallel their phylogenetic classification. Here we extend those observations to eight Bothrops species evaluating the N-glycomes by LC-MS as assigned cartoon structures and detailing those structures separately as methylated analogs using ion-trap mass spectrometry (MSn). Following ion disassembly through multiple steps provided sequence and linkage isomeric details that characterized 52 unique compositions in Bothrops venoms. These occurred as 60 structures, of which 26 were identified in the venoms of the Jararaca Complex (B. alcatraz, B. insularis, and B. jararaca), 20 in B. erythromelas, B. jararacussu, B. moojeni and B. neuwiedi venoms, and 22 in B. cotiara venom. Further, quantitative analysis of these N-glycans showed variable relative abundances in the venoms. For the first time a comprehensive set of N-glycan structures present in snake venoms are defined. Despite the fact that glycosylation is not template-defined, the N-glycomes of these venoms mirror the phylogeny cladograms of South American bothropoid snakes reported in studies on morphological, molecular data and feeding habits, exhibiting distinct molecular signatures for each venom. Considering the complexity of N-glycan moieties generally found in glycoproteins, characterized by different degrees of branching, isomer structures, and variable abundances, our findings point to these factors as another level of complexity in Bothrops venoms, features that could dramatically contribute to their distinct biological activities.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Polissacarídeos / Bothrops / Venenos de Crotalídeos Tipo de estudo: Prognostic_studies Limite: Animals Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Polissacarídeos / Bothrops / Venenos de Crotalídeos Tipo de estudo: Prognostic_studies Limite: Animals Idioma: En Ano de publicação: 2018 Tipo de documento: Article