Literature DB >> 33349244

Predicting substitutions to modulate disorder and stability in coiled-coils.

Yasaman Karami1,2, Paul Saighi3, Rémy Vanderhaegen3, Denis Gerlier4, Sonia Longhi5, Elodie Laine6, Alessandra Carbone7,8.   

Abstract

BACKGROUND: Coiled-coils are described as stable structural motifs, where two or more helices wind around each other. However, coiled-coils are associated with local mobility and intrinsic disorder. Intrinsically disordered regions in proteins are characterized by lack of stable secondary and tertiary structure under physiological conditions in vitro. They are increasingly recognized as important for protein function. However, characterizing their behaviour in solution and determining precisely the extent of disorder of a protein region remains challenging, both experimentally and computationally.
RESULTS: In this work, we propose a computational framework to quantify the extent of disorder within a coiled-coil in solution and to help design substitutions modulating such disorder. Our method relies on the analysis of conformational ensembles generated by relatively short all-atom Molecular Dynamics (MD) simulations. We apply it to the phosphoprotein multimerisation domains (PMD) of Measles virus (MeV) and Nipah virus (NiV), both forming tetrameric left-handed coiled-coils. We show that our method can help quantify the extent of disorder of the C-terminus region of MeV and NiV PMDs from MD simulations of a few tens of nanoseconds, and without requiring an extensive exploration of the conformational space. Moreover, this study provided a conceptual framework for the rational design of substitutions aimed at modulating the stability of the coiled-coils. By assessing the impact of four substitutions known to destabilize coiled-coils, we derive a set of rules to control MeV PMD structural stability and cohesiveness. We therefore design two contrasting substitutions, one increasing the stability of the tetramer and the other increasing its flexibility.
CONCLUSIONS: Our method can be considered as a platform to reason about how to design substitutions aimed at regulating flexibility and stability.

Entities:  

Keywords:  Coiled-coil; Molecular dynamics; Protein disorder; Protein dynamics; Protein stability; Protein structure

Mesh:

Substances:

Year:  2020        PMID: 33349244      PMCID: PMC7751101          DOI: 10.1186/s12859-020-03867-x

Source DB:  PubMed          Journal:  BMC Bioinformatics        ISSN: 1471-2105            Impact factor:   3.169


  32 in total

1.  Atomic-level characterization of the structural dynamics of proteins.

Authors:  David E Shaw; Paul Maragakis; Kresten Lindorff-Larsen; Stefano Piana; Ron O Dror; Michael P Eastwood; Joseph A Bank; John M Jumper; John K Salmon; Yibing Shan; Willy Wriggers
Journal:  Science       Date:  2010-10-15       Impact factor: 47.728

2.  IUPred: web server for the prediction of intrinsically unstructured regions of proteins based on estimated energy content.

Authors:  Zsuzsanna Dosztányi; Veronika Csizmok; Peter Tompa; István Simon
Journal:  Bioinformatics       Date:  2005-06-14       Impact factor: 6.937

3.  Stability of 100 homo and heterotypic coiled-coil a-a' pairs for ten amino acids (A, L, I, V, N, K, S, T, E, and R).

Authors:  Asha Acharya; Vikas Rishi; Charles Vinson
Journal:  Biochemistry       Date:  2006-09-26       Impact factor: 3.162

4.  Backrub-like backbone simulation recapitulates natural protein conformational variability and improves mutant side-chain prediction.

Authors:  Colin A Smith; Tanja Kortemme
Journal:  J Mol Biol       Date:  2008-05-17       Impact factor: 5.469

Review 5.  How order and disorder within paramyxoviral nucleoproteins and phosphoproteins orchestrate the molecular interplay of transcription and replication.

Authors:  Sonia Longhi; Louis-Marie Bloyet; Stefano Gianni; Denis Gerlier
Journal:  Cell Mol Life Sci       Date:  2017-06-09       Impact factor: 9.261

6.  Coiled-coil destabilizing residues in the group A Streptococcus M1 protein are required for functional interaction.

Authors:  Chelsea M Stewart; Cosmo Z Buffalo; J Andrés Valderrama; Anna Henningham; Jason N Cole; Victor Nizet; Partho Ghosh
Journal:  Proc Natl Acad Sci U S A       Date:  2016-08-10       Impact factor: 11.205

Review 7.  Henipavirus outbreaks to antivirals: the current status of potential therapeutics.

Authors:  Christopher C Broder
Journal:  Curr Opin Virol       Date:  2012-03-21       Impact factor: 7.090

8.  Crystal structure of the measles virus phosphoprotein domain responsible for the induced folding of the C-terminal domain of the nucleoprotein.

Authors:  Kenth Johansson; Jean-Marie Bourhis; Valerie Campanacci; Christian Cambillau; Bruno Canard; Sonia Longhi
Journal:  J Biol Chem       Date:  2003-08-27       Impact factor: 5.157

9.  Regulation of measles virus gene expression by P protein coiled-coil properties.

Authors:  Louis-Marie Bloyet; Antoine Schramm; Carine Lazert; Bertrand Raynal; Maggy Hologne; Olivier Walker; Sonia Longhi; Denis Gerlier
Journal:  Sci Adv       Date:  2019-05-08       Impact factor: 14.136

10.  Crystal structure of the nipah virus phosphoprotein tetramerization domain.

Authors:  Jessica F Bruhn; Katherine C Barnett; Jaclyn Bibby; Jens M H Thomas; Ronan M Keegan; Daniel J Rigden; Zachary A Bornholdt; Erica Ollmann Saphire
Journal:  J Virol       Date:  2013-10-23       Impact factor: 5.103

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