Literature DB >> 24373874

P-I class metalloproteinase from Bothrops moojeni venom is a post-proline cleaving peptidase with kininogenase activity: insights into substrate selectivity and kinetic behavior.

Débora N Okamoto1, Marcia Y Kondo1, Lilian C G Oliveira1, Rodrigo V Honorato2, Leticia M Zanphorlin3, Monika A Coronado4, Mariana S Araújo5, Guacyara da Motta5, Camila L Veronez5, Sheila S Andrade6, Paulo S L Oliveira2, Raghuvir K Arni4, Adelia C O Cintra7, Suely V Sampaio7, Maria A Juliano1, Luiz Juliano1, Mário T Murakami8, Iuri E Gouvea9.   

Abstract

Snake venom metalloproteinases (SVMPs) belonging to P-I class are able to hydrolyze extracellular matrix proteins and coagulation factors triggering local and systemic reactions by multiple molecular mechanisms that are not fully understood. BmooMPα-I, a P-I class SMVP from Bothrops moojeni venom, was active upon neuro- and vaso-active peptides including angiotensin I, bradykinin, neurotensin, oxytocin and substance P. Interestingly, BmooMPα-I showed a strong bias towards hydrolysis after proline residues, which is unusual for most of characterized peptidases. Moreover, the enzyme showed kininogenase activity similar to that observed in plasma and cells by kallikrein. FRET peptide assays indicated a relative promiscuity at its S2-S'2 subsites, with proline determining the scissile bond. This unusual post-proline cleaving activity was confirmed by the efficient hydrolysis of the synthetic combinatorial library MCA-GXXPXXQ-EDDnp, described as resistant for canonical peptidases, only after Pro residues. Structural analysis of the tripeptide LPL complexed with BmooMPα-I, generated by molecular dynamics simulations, assisted in defining the subsites and provided the structural basis for subsite preferences such as the restriction of basic residues at the S2 subsite due to repulsive electrostatic effects and the steric impediment for large aliphatic or aromatic side chains at the S1 subsite. These new functional and structural findings provided a further understanding of the molecular mechanisms governing the physiological effects of this important class of enzymes in envenomation process.
Copyright © 2014 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  FRET peptides; Kininogenase activity; Molecular dynamics simulations; Snake venom metalloproteinase; Substrate specificity

Mesh:

Substances:

Year:  2013        PMID: 24373874     DOI: 10.1016/j.bbapap.2013.12.014

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  4 in total

1.  P-I metalloproteinases and L-amino acid oxidases from Bothrops species inhibit angiogenesis.

Authors:  Shreesha K Bhat; Manjunath B Joshi; Sampara Vasishta; Rajesh N Jagadale; Setlur G Biligiri; Monika A Coronado; Raghuvir K Arni; Kapaettu Satyamoorthy
Journal:  J Venom Anim Toxins Incl Trop Dis       Date:  2021-08-18

2.  Rapid purification of a new P-I class metalloproteinase from Bothrops moojeni venom with antiplatelet activity.

Authors:  Mayara R de Queiroz; Carla C Neves Mamede; Kelly C Fonseca; Nadia C G de Morais; Bruna B de Sousa; Norival A Santos-Filho; Marcelo E Beletti; Eliane C Arantes; Leonilda Stanziola; Fábio de Oliveira
Journal:  Biomed Res Int       Date:  2014-06-01       Impact factor: 3.411

3.  Interaction between TNF and BmooMP-Alpha-I, a Zinc Metalloprotease Derived from Bothrops moojeni Snake Venom, Promotes Direct Proteolysis of This Cytokine: Molecular Modeling and Docking at a Glance.

Authors:  Maraisa Cristina Silva; Tamires Lopes Silva; Murilo Vieira Silva; Caroline Martins Mota; Fernanda Maria Santiago; Kelly Cortes Fonseca; Fábio Oliveira; Tiago Wilson Patriarca Mineo; José Roberto Mineo
Journal:  Toxins (Basel)       Date:  2016-07-20       Impact factor: 4.546

4.  Bothrops moojeni Venom and Its Components Strongly Affect Osteoclasts' Maturation and Protein Patterns.

Authors:  Fernanda D'Amélio; Hugo Vigerelli; Álvaro Rossan de Brandão Prieto-da-Silva; Eduardo Osório Frare; Isabel de Fátima Correia Batista; Daniel Carvalho Pimenta; Irina Kerkis
Journal:  Toxins (Basel)       Date:  2021-06-30       Impact factor: 4.546

  4 in total

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