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PMID: 15321724 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Analysis of ordered and disordered protein complexes reveals structural features discriminating between stable and unstable monomers.

Journal of molecular biology ·Vol. 341 ·No. 5 ·2004-08-27 ·Pages 1327-41

Gunasekaran K, Tsai CJ, Nussinov R

Abstract

Most proteins exist in the cell as multi-component assemblies. However, which proteins need to be present simultaneously in order to perform a given function is frequently unknown. The first step toward this goal would be to predict proteins that can function only when in a complexed form. Here, we propose a scheme to distinguish whether the protein components are ordered (stable) or disordered when separated from their complexed partners. We analyze structural characteristics of several types of complexes, such as natively unstructured proteins, ribosomal proteins, two-state and three-state complexes, and crystal-packing dimers. Our analysis makes use of the fact that natively unstructured proteins, which undergo a disorder-to-order transition upon binding their partner, and stable monomeric proteins, which exist as dimers only in their crystal form, provide examples of two vastly different scenarios. We find that ordered monomers can be distinguished from disordered monomers on the basis of the per-residue surface and interface areas, which are significantly smaller for ordered proteins. With this scale, two-state dimers (where the monomers unfold upon dimer separation) and ribosomal proteins are shown to resemble disordered proteins. On the other hand, crystal-packing dimers, whose monomers are stable in solution, fall into the ordered protein category. While there should be a continuum in the distributions, nevertheless, the per-residue scale measures the confidence in the determination of whether a protein can exist as a stable monomer. Further analysis, focusing on the chemical and contact preferences at the interface, interior and exposed surface areas, reveals that disordered proteins lack a strong hydrophobic core and are composed of highly polar surface area. We discuss the implication of our results for de novo design of stable monomeric proteins and peptides.

MeSH Terms
Macromolecular Substances Models, Molecular Protein Conformation Protein Subunits/chemistry,metabolism Proteins/chemistry Surface Properties Thermodynamics
Chemicals
Macromolecular Substances Protein Subunits Proteins
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Gunasekaran Kannan
Laboratory of Experimental and Computational Biology, Basic Research Program, SAIC-Frederick, Inc., NCI-Frederick, Frederick, MD 21702, USA. guna@ncifcrf.gov
Tsai Chung-Jung
Nussinov Ruth
Article Info
Journal
Journal of molecular biology
Abbr.
J Mol Biol
ISSN
0022-2836
Published
2004-08-27
Pages
1327-41
Language
English
Region
England
NLM ID
2985088R
Subset
IM
Grants
NCI NIH HHS · N01-CO-12400 · United States
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