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Molecular & Cellular Proteomics

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Research

Effects of acetylation and phosphorylation on subunit interactions in three large eukaryotic complexes

View ORCID ProfileNikolina Sostaric, View ORCID ProfileFrancis J. O'Reilly, Piero Giansanti, View ORCID ProfileAlbert J. R. Heck, Anne-Claude Gavin and Vera van Noort  Correspondence email
Molecular & Cellular Proteomics September 4, 2018, mcp.RA118.000892; https://doi.org/10.1074/mcp.RA118.000892
Nikolina Sostaric
Faculty of Bioscience Engineering, Department of Microbial and Molecular Systems, Centre of Microbial and Plant Genetics, KU Leuven, Belgium
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  • ORCID record for Nikolina Sostaric
Francis J. O'Reilly
European Molecular Biology Laboratory Heidelberg, Germany
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Piero Giansanti
Utrecht University and Netherlands Proteomics Centre, Netherlands
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Albert J. R. Heck
Biomolecular Mass Spectrometry and Proteomics, Utrecht University, Netherlands
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  • ORCID record for Albert J. R. Heck
Anne-Claude Gavin
Structural and Computational Biology Unit, EMBL-Heidelberg, Germany
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Vera van Noort
Centre of Microbial and Plant Genetics, KU Leuven, Belgium
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  • For correspondence: vera.vannoort@kuleuven.be
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Abstract

Protein post-translational modifications (PTMs) have an indispensable role in living cells as they expand chemical diversity of the proteome, providing a fine regulatory layer that can govern protein-protein interactions in changing environmental conditions. Here we investigated the effects of acetylation and phosphorylation on the stability of subunit interactions in purified Saccharomyces cerevisiae complexes, namely exosome, RNA polymerase II and proteasome. We propose a computational framework that consists of conformational sampling of the complexes by molecular dynamics simulations, followed by Gibbs energy calculation by MM/GBSA. After benchmarking against published tools such as FoldX and Mechismo, we could apply the framework for the first time on large protein assemblies with the aim of predicting the effects of PTMs located on interfaces of subunits on binding stability. We discovered that acetylation predominantly contributes to subunits’ interactions in a locally stabilizing manner, while phosphorylation shows the opposite effect. Even though the local binding contributions of PTMs may be predictable to an extent, the long range effects and overall impact on subunits’ binding were only captured due to our dynamical approach. Employing the developed, widely applicable workflow on other large systems will shed more light on the roles of PTMs in protein complex formation.

  • Exosome
  • RNA polymerase II
  • Proteasome
  • Binding Affinity
  • Proteomics
  • Acetylation*
  • Computational Biology
  • Phosphorylation
  • Structural Biology*
  • Yeast*

Footnotes

  • Author contributions: N.S., F.J.O., and P.G. performed research; N.S. and P.G. analyzed data; N.S., F.J.O., P.G., A.J.R.H., A.-C.G., and V.v.N. wrote the paper; A.J.R.H., A.-C.G., and V.v.N. designed research.

  • Received May 30, 2018.
  • Revision received August 27, 2018.
  • Accepted September 4, 2018.
  • Published under license by The American Society for Biochemistry and Molecular Biology, Inc.
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Effects of acetylation and phosphorylation on subunit interactions in three large eukaryotic complexes
Nikolina Sostaric, Francis J. O'Reilly, Piero Giansanti, Albert J. R. Heck, Anne-Claude Gavin, Vera van Noort
Molecular & Cellular Proteomics September 4, 2018, mcp.RA118.000892; DOI: 10.1074/mcp.RA118.000892

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Effects of acetylation and phosphorylation on subunit interactions in three large eukaryotic complexes
Nikolina Sostaric, Francis J. O'Reilly, Piero Giansanti, Albert J. R. Heck, Anne-Claude Gavin, Vera van Noort
Molecular & Cellular Proteomics September 4, 2018, mcp.RA118.000892; DOI: 10.1074/mcp.RA118.000892
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