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Prediction of Protein Binding Regions in Disordered Proteins

PLoS Computational Biology · 2009 · Vol. 5(5) · pp. e1000376–e1000376
Bálint MészárosIstván SimonZsuzsanna Dosztányi

Abstract

Many disordered proteins function via binding to a structured partner and undergo a disorder-to-order transition. The coupled folding and binding can confer several functional advantages such as the precise control of binding specificity without increased affinity. Additionally, the inherent flexibility allows the binding site to adopt various conformations and to bind to multiple partners. These features explain the prevalence of such binding elements in signaling and regulatory processes. In this work, we report ANCHOR, a method for the prediction of disordered binding regions. ANCHOR relies on the pairwise energy estimation approach that is the basis of IUPred, a previous general disorder prediction method. In order to predict disordered binding regions, we seek to identify segments that are in disordered regions, cannot form enough favorable intrachain interactions to fold on their own, and are likely to gain stabilizing energy by interacting with a globular protein partner. The performance of ANCHOR was found to be largely independent from the amino acid composition and adopted secondary structure. Longer binding sites generally were predicted to be segmented, in agreement with available experimentally characterized examples. Scanning several hundred proteomes showed that the occurrence of disordered binding sites increased with the complexity of the organisms even compared to disordered regions in general. Furthermore, the length distribution of binding sites was different from disordered protein regions in general and was dominated by shorter segments. These results underline the importance of disordered proteins and protein segments in establishing new binding regions. Due to their specific biophysical properties, disordered binding sites generally carry a robust sequence signal, and this signal is efficiently captured by our method. Through its generality, ANCHOR opens new ways to study the essential functional sites of disordered proteins.

Protein Structure and DynamicsFungal and yeast genetics researchBioinformatics and Genomic NetworksIntrinsically disordered proteinsGlobular proteinBinding siteBinding energyFolding (DSP implementation)Computational biologyProteomePlasma protein bindingEnergy landscapeBiophysics

MeSH terms

AlgorithmsAmino Acid SequenceHumansPattern Recognition, AutomatedProtein BindingProtein ConformationProteinsROC CurveThermodynamicsTumor Suppressor Protein p53Protein Structure, SecondaryDatabases, ProteinProteomicsWiskott-Aldrich Syndrome Protein

Funding

  • Hungarian Scientific Research Fund
  • Nemzeti Kutatási és Technológiai Hivatal
  • U.S. National Library of Medicine
Citations
642
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10.62
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99
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99%
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Cited by
Intrinsically disordered proteins in cellular signalling and regulation
Nature Reviews Molecular Cell Biology · 2014 · 2,444 citations
References
Intrinsically unstructured proteins and their functions
Nature Reviews Molecular Cell Biology · 2005 · 3,843 citations
Sequence complexity of disordered protein
Proteins Structure Function and Bioinformatics · 2000 · 1,806 citations
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