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The unfoldomics decade: an update on intrinsically disordered proteins

BMC Genomics · 2008 · Vol. 9(Suppl 2) · pp. S1–S1
A. Keith DunkerChristopher J. OldfieldJingwei MengPedro RomeroJack YangJessica ChenVladimir VacicZoran ObradovićVladimir N. Uversky

Abstract

Intrinsically disordered protein is common across the three domains of life, but especially common among the eukaryotic proteomes. Signaling sequences and sites of posttranslational modifications are frequently, or very likely most often, located within regions of intrinsic disorder. Disorder-to-order transitions are coupled with the adoption of different structures with different partners. Also, the flexibility of intrinsic disorder helps different disordered regions to bind to a common binding site on a common partner. Such capacity for binding diversity plays important roles in both protein-protein interaction networks and likely also in gene regulation networks. Such disorder-based signaling is further modulated in multicellular eukaryotes by alternative splicing, for which such splicing events map to regions of disorder much more often than to regions of structure. Associating alternative splicing with disorder rather than structure alleviates theoretical and experimentally observed problems associated with the folding of different length, isomeric amino acid sequences. The combination of disorder and alternative splicing is proposed to provide a mechanism for easily "trying out" different signaling pathways, thereby providing the mechanism for generating signaling diversity and enabling the evolution of cell differentiation and multicellularity. Finally, several recent small molecules of interest as potential drugs have been shown to act by blocking protein-protein interactions based on intrinsic disorder of one of the partners. Study of these examples has led to a new approach for drug discovery, and bioinformatics analysis of the human proteome suggests that various disease-associated proteins are very rich in such disorder-based drug discovery targets.

Protein Structure and DynamicsMachine Learning in BioinformaticsEnzyme Structure and FunctionIntrinsically disordered proteinsComputational biologyBiologyProtein structure predictionProtein secondary structureProtein structureFunction (biology)Class (philosophy)BioinformaticsComputer science

MeSH terms

AlgorithmsAmino Acid SequenceBinding SitesHumansProtein ConformationProteinsStructure-Activity RelationshipDrug DesignAlternative SplicingProtein FoldingComputational BiologySequence Analysis, Protein

Funding

  • Indiana University-Purdue University Indianapolis
  • National Institutes of Health
  • Russian Academy of Sciences
Citations
663
FWCI
20.96
field-weighted impact
References
192
Percentile
100%
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References
What does it mean to be natively unfolded?
European Journal of Biochemistry · 2002 · 975 citations
Length-dependent prediction of protein intrinsic disorder
BMC Bioinformatics · 2006 · 946 citations
Intrinsically unstructured proteins and their functions
Nature Reviews Molecular Cell Biology · 2005 · 3,843 citations
Function of alternative splicing
Gene · 2004 · 1,403 citations
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