Literature DB >> 15794759

Oxidative folding of conotoxins sharing an identical disulfide bridging framework.

Erika Fuller1, Brad R Green, Phil Catlin, Olga Buczek, Jacob S Nielsen, Baldomero M Olivera, Grzegorz Bulaj.   

Abstract

Conotoxins are short, disulfide-rich peptide neurotoxins produced in the venom of predatory marine cone snails. It is generally accepted that an estimated 100,000 unique conotoxins fall into only a handful of structural groups, based on their disulfide bridging frameworks. This unique molecular diversity poses a protein folding problem of relationships between hypervariability of amino acid sequences and mechanism(s) of oxidative folding. In this study, we present a comparative analysis of the folding properties of four conotoxins sharing an identical pattern of cysteine residues forming three disulfide bridges, but otherwise differing significantly in their primary amino acid sequence. Oxidative folding properties of M-superfamily conotoxins GIIIA, PIIIA, SmIIIA and RIIIK varied with respect to kinetics and thermodynamics. Based on rates for establishing the steady-state distribution of the folding species, two distinct folding mechanisms could be distinguished: first, rapid-collapse folding characterized by very fast, but low-yield accumulation of the correctly folded form; and second, slow-rearrangement folding resulting in higher accumulation of the properly folded form via the reshuffling of disulfide bonds within folding intermediates. Effects of changing the folding conditions indicated that the rapid-collapse and the slow-rearrangement mechanisms were mainly determined by either repulsive electrostatic or productive noncovalent interactions, respectively. The differences in folding kinetics for these two mechanisms were minimized in the presence of protein disulfide isomerase. Taken together, folding properties of conotoxins from the M-superfamily presented in this work and from the O-superfamily published previously suggest that conotoxin sequence diversity is also reflected in their folding properties, and that sequence information rather than a cysteine pattern determines the in vitro folding mechanisms of conotoxins.

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Year:  2005        PMID: 15794759     DOI: 10.1111/j.1742-4658.2005.04602.x

Source DB:  PubMed          Journal:  FEBS J        ISSN: 1742-464X            Impact factor:   5.542


  22 in total

1.  Characterization of a venom peptide from a crassispirid gastropod.

Authors:  April B Cabang; Julita S Imperial; Joanna Gajewiak; Maren Watkins; Patrice Showers Corneli; Baldomero M Olivera; Gisela P Concepcion
Journal:  Toxicon       Date:  2011-09-12       Impact factor: 3.033

2.  Design of bioactive peptides from naturally occurring μ-conotoxin structures.

Authors:  Marijke Stevens; Steve Peigneur; Natalia Dyubankova; Eveline Lescrinier; Piet Herdewijn; Jan Tytgat
Journal:  J Biol Chem       Date:  2012-07-06       Impact factor: 5.157

Review 3.  Structural determinants of protein folding.

Authors:  Tse Siang Kang; R Manjunatha Kini
Journal:  Cell Mol Life Sci       Date:  2009-04-15       Impact factor: 9.261

Review 4.  Techniques for the analysis of cysteine sulfhydryls and oxidative protein folding.

Authors:  Chad R Borges; Nisha D Sherma
Journal:  Antioxid Redox Signal       Date:  2014-02-18       Impact factor: 8.401

5.  Modulation of conotoxin structure and function is achieved through a multienzyme complex in the venom glands of cone snails.

Authors:  Helena Safavi-Hemami; Dhana G Gorasia; Andrew M Steiner; Nicholas A Williamson; John A Karas; Joanna Gajewiak; Baldomero M Olivera; Grzegorz Bulaj; Anthony W Purcell
Journal:  J Biol Chem       Date:  2012-08-13       Impact factor: 5.157

6.  Disulfide-Depleted Selenoconopeptides: a Minimalist Strategy to Oxidative Folding of Cysteine-Rich Peptides.

Authors:  Tiffany S Han; Min-Min Zhang; Konkallu Hanumae Gowd; Aleksandra Walewska; Doju Yoshikami; Baldomero M Olivera; Grzegorz Bulaj
Journal:  ACS Med Chem Lett       Date:  2010-05-03       Impact factor: 4.345

7.  Association between foldability and aggregation propensity in small disulfide-rich proteins.

Authors:  Hugo Fraga; Ricardo Graña-Montes; Ricard Illa; Giovanni Covaleda; Salvador Ventura
Journal:  Antioxid Redox Signal       Date:  2014-05-05       Impact factor: 8.401

8.  Rapid expansion of the protein disulfide isomerase gene family facilitates the folding of venom peptides.

Authors:  Helena Safavi-Hemami; Qing Li; Ronneshia L Jackson; Albert S Song; Wouter Boomsma; Pradip K Bandyopadhyay; Christian W Gruber; Anthony W Purcell; Mark Yandell; Baldomero M Olivera; Lars Ellgaard
Journal:  Proc Natl Acad Sci U S A       Date:  2016-03-08       Impact factor: 11.205

9.  The glycosyltransferase involved in thurandacin biosynthesis catalyzes both O- and S-glycosylation.

Authors:  Huan Wang; Trent J Oman; Ran Zhang; Chantal V Garcia De Gonzalo; Qi Zhang; Wilfred A van der Donk
Journal:  J Am Chem Soc       Date:  2013-12-16       Impact factor: 15.419

10.  Expanding chemical diversity of conotoxins: peptoid-peptide chimeras of the sodium channel blocker μ-KIIIA and its selenopeptide analogues.

Authors:  Aleksandra Walewska; Tiffany S Han; Min-Min Zhang; Doju Yoshikami; Grzegorz Bulaj; Krzysztof Rolka
Journal:  Eur J Med Chem       Date:  2013-05-01       Impact factor: 6.514

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