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PMID: 14978301 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Rapid evolution in conformational space: a study of loop regions in a ubiquitous GTP binding domain.

Protein science : a publication of the Protein Society ·Vol. 13 ·No. 3 ·2004-03-00 ·Pages 608-16

Blouin C, Butt D, Roger AJ

Abstract

The rapidly evolving subsets of a protein are often evident in multiple sequence alignments as poorly defined, gap-containing regions. We investigated the 3D context of these regions observed in 28 protein structures containing a GTP-binding domain assumed to be homologous to the transforming factor p21-RAS. The phylogenetic depth of this data set is such that it is possible to observe lineages sharing a common protein core that diverged early in the eukaryotic cell history. The sequence variability among these homolog proteins is directly linked to the structural variability of surface loops. We demonstrate that these regions are self-contained and thus mostly free of the evolutionary constraints imposed by the conserved core of the domain. These intraloop interactions have the property to create stem-like structures. Interestingly, these stem-like structures can be observed in loops of varying size, up to the size of small protein domains. We propose a model under which the diversity of protein topologies observed in these loops can be the product of a stochastic sampling of sequence and conformational space in a near-neutral fashion, while the proximity of the functional features of the domain core allows novel beneficial traits to be fixed. Our comparative observations, limited here to the proteins containing the RAS-like GTP-binding domain, suggest that a stochastic process of insertion/deletion analogous to "budding" of loops is a likely mechanism of structural innovation. Such a framework could be experimentally exploited to investigate the folding of increasingly complex model inserts.

MeSH Terms
Amino Acid Sequence Animals Binding Sites/genetics Eukaryotic Initiation Factor-2/chemistry,genetics Evolution, Molecular GTP-Binding Protein alpha Subunits, Gs/chemistry,genetics GTP-Binding Proteins/chemistry,genetics Gene Deletion Humans Models, Genetic Models, Molecular Molecular Sequence Data Mutagenesis, Insertional Phylogeny Protein Conformation Protein Structure, Secondary Proteins/chemistry,genetics Proto-Oncogene Proteins p21(ras)/chemistry,genetics Saccharomyces cerevisiae Proteins/chemistry,genetics Sequence Alignment Stochastic Processes Structural Homology, Protein rab GTP-Binding Proteins/chemistry,genetics
Chemicals
Eukaryotic Initiation Factor-2 GBP1 protein, human Proteins Saccharomyces cerevisiae Proteins GTP-Binding Proteins VPS21 protein, S cerevisiae GTP-Binding Protein alpha Subunits, Gs HRAS protein, human Proto-Oncogene Proteins p21(ras) rab GTP-Binding Proteins
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Blouin Christian
Genome Atlantic, Department of Biochemistry and Molecular Biology, and Faculty of Computer Science, Dalhousie University, 6050 University Avenue, Halifax, NS, Canada B3H 1W5. cblouin@cs.dal.ca
Butt Davin
Roger Andrew James
References (50)
50 references, click to expand
  1. Crystal structures of the G protein Gi alpha 1 complexed with GDP and Mg2+: a crystallographic titration experiment.
    Biochemistry. 1998 Oct 13;37(41):14376-85 PMID: 9772163
  2. The Pfam protein families database.
    Nucleic Acids Res. 2002 Jan 1;30(1):276-80 PMID: 11752314
  3. Protein structure alignment by incremental combinatorial extension (CE) of the optimal path.
    Protein Eng. 1998 Sep;11(9):739-47 PMID: 9796821
  4. Exploring the conformational properties of the sequence space between two proteins with different folds: an experimental study.
    J Mol Biol. 1999 Jan 15;285(2):741-53 PMID: 9878441
  5. Structure of a Ran-binding domain complexed with Ran bound to a GTP analogue: implications for nuclear transport.
    Nature. 1999 Mar 4;398(6722):39-46 PMID: 10078529
  6. Factors that affect the folding ability of proteins.
    Proteins. 1999 Apr 1;35(1):34-40 PMID: 10090284
  7. Structural basis of activation and GTP hydrolysis in Rab proteins.
    Structure. 1999 Apr 15;7(4):413-23 PMID: 10196122
  8. Structural view of the Ran-Importin beta interaction at 2.3 A resolution.
    Cell. 1999 May 28;97(5):635-46 PMID: 10367892
  9. Crystal structure of ERA: a GTPase-dependent cell cycle regulator containing an RNA binding motif.
    Proc Natl Acad Sci U S A. 1999 Jul 20;96(15):8396-401 PMID: 10411886
  10. Understanding beta-hairpin formation.
    Proc Natl Acad Sci U S A. 1999 Aug 3;96(16):9068-73 PMID: 10430896
  11. Probing the substrate specificity of the intracellular brain platelet-activating factor acetylhydrolase.
    Protein Eng. 1999 Aug;12(8):693-700 PMID: 10469831
  12. Crystal structure of pea Toc34, a novel GTPase of the chloroplast protein translocon.
    Nat Struct Biol. 2002 Feb;9(2):95-100 PMID: 11753431
  13. The pre-hydrolysis state of p21(ras) in complex with GTP: new insights into the role of water molecules in the GTP hydrolysis reaction of ras-like proteins.
    Structure. 1999 Nov 15;7(11):1311-24 PMID: 10574788
  14. The Protein Data Bank.
    Nucleic Acids Res. 2000 Jan 1;28(1):235-42 PMID: 10592235
  15. Structure of an EF-Tu complex with a thiazolyl peptide antibiotic determined at 2.35 A resolution: atomic basis for GE2270A inhibition of EF-Tu.
    Biochemistry. 2000 Jan 11;39(1):37-45 PMID: 10625477
  16. The Rac-RhoGDI complex and the structural basis for the regulation of Rho proteins by RhoGDI.
    Nat Struct Biol. 2000 Feb;7(2):122-6 PMID: 10655614
  17. High resolution crystal structure of bovine mitochondrial EF-Tu in complex with GDP.
    J Mol Biol. 2000 Mar 24;297(2):421-36 PMID: 10715211
  18. High-resolution crystal structure of S. cerevisiae Ypt51(DeltaC15)-GppNHp, a small GTP-binding protein involved in regulation of endocytosis.
    J Mol Biol. 2000 Apr 21;298(1):111-21 PMID: 10756108
  19. Evidence for the genetic interaction between the actin-binding protein Vrp1 and the RhoGAP Rgd1 mediated through Rho3p and Rho4p in Saccharomyces cerevisiae.
    Mol Microbiol. 2000 Jun;36(6):1403-14 PMID: 10931290
  20. Structure of the nucleotide-binding domain of Plasmodium falciparum rab6 in the GDP-bound form.
    Acta Crystallogr D Biol Crystallogr. 2000 Aug;56(Pt 8):937-44 PMID: 10944329
  21. Triphosphate structure of guanylate-binding protein 1 and implications for nucleotide binding and GTPase mechanism.
    EMBO J. 2000 Sep 1;19(17):4555-64 PMID: 10970849
  22. Sequence evolution and the mechanism of protein folding.
    Biophys J. 2000 Oct;79(4):1787-99 PMID: 11023886
  23. Structure of a mutant EF-G reveals domain III and possibly the fusidic acid binding site.
    J Mol Biol. 2000 Nov 3;303(4):593-603 PMID: 11054294
  24. Crystal structures of a Rab protein in its inactive and active conformations.
    J Mol Biol. 2000 Dec 8;304(4):585-98 PMID: 11099382
  25. X-Ray structures of the universal translation initiation factor IF2/eIF5B: conformational changes on GDP and GTP binding.
    Cell. 2000 Nov 22;103(5):781-92 PMID: 11114334
  26. Crystal structures of nucleotide exchange intermediates in the eEF1A-eEF1Balpha complex.
    Nat Struct Biol. 2001 Jun;8(6):531-4 PMID: 11373622
  27. The large subunit of initiation factor aIF2 is a close structural homologue of elongation factors.
    EMBO J. 2002 Apr 2;21(7):1821-32 PMID: 11927566
  28. Rab-subfamily-specific regions of Ypt7p are structurally different from other RabGTPases.
    Structure. 2002 Apr;10(4):569-79 PMID: 11937061
  29. Evaluating conformational free energies: the colony energy and its application to the problem of loop prediction.
    Proc Natl Acad Sci U S A. 2002 May 28;99(11):7432-7 PMID: 12032300
  30. Rate4Site: an algorithmic tool for the identification of functional regions in proteins by surface mapping of evolutionary determinants within their homologues.
    Bioinformatics. 2002;18 Suppl 1:S71-7 PMID: 12169533
  31. The pattern of amino acid replacements in alpha/beta-barrels.
    Mol Biol Evol. 2002 Nov;19(11):1846-64 PMID: 12411594
  32. Inferring functional constraints and divergence in protein families using 3D mapping of phylogenetic information.
    Nucleic Acids Res. 2003 Jan 15;31(2):790-7 PMID: 12527789
  33. The rapid generation of mutation data matrices from protein sequences.
    Comput Appl Biosci. 1992 Jun;8(3):275-82 PMID: 1633570
  34. Empirical and structural models for insertions and deletions in the divergent evolution of proteins.
    J Mol Biol. 1993 Feb 20;229(4):1065-82 PMID: 8445636
  35. X-ray structure of an anti-fungal chitosanase from streptomyces N174.
    Nat Struct Biol. 1996 Feb;3(2):155-62 PMID: 8564542
  36. Threading a database of protein cores.
    Proteins. 1995 Nov;23(3):356-69 PMID: 8710828
  37. VMD: visual molecular dynamics.
    J Mol Graph. 1996 Feb;14(1):33-8, 27-8 PMID: 8744570
  38. The folding mechanism of larger model proteins: role of native structure.
    Proc Natl Acad Sci U S A. 1996 Aug 6;93(16):8356-61 PMID: 8710875
  39. Surprising similarities in structure comparison.
    Curr Opin Struct Biol. 1996 Jun;6(3):377-85 PMID: 8804824
  40. The crystal structure of human rac1, a member of the rho-family complexed with a GTP analogue.
    Nat Struct Biol. 1997 Feb;4(2):147-52 PMID: 9033596
  41. G protein mechanisms: insights from structural analysis.
    Annu Rev Biochem. 1997;66:639-78 PMID: 9242920
  42. Crystal structure of a small G protein in complex with the GTPase-activating protein rhoGAP.
    Nature. 1997 Aug 14;388(6643):693-7 PMID: 9262406
  43. Crystal structures of the small G protein Rap2A in complex with its substrate GTP, with GDP and with GTPgammaS.
    EMBO J. 1997 Sep 15;16(18):5582-91 PMID: 9312017
  44. Structure at 1.65 A of RhoA and its GTPase-activating protein in complex with a transition-state analogue.
    Nature. 1997 Oct 16;389(6652):758-62 PMID: 9338791
  45. Crystal structure of the adenylyl cyclase activator Gsalpha.
    Science. 1997 Dec 12;278(5345):1943-7 PMID: 9395396
  46. Evolution of model proteins on a foldability landscape.
    Proteins. 1997 Dec;29(4):461-6 PMID: 9408943
  47. Fold change in evolution of protein structures.
    J Struct Biol. 2001 May-Jun;134(2-3):167-85 PMID: 11551177
  48. The Ras-Byr2RBD complex: structural basis for Ras effector recognition in yeast.
    Structure. 2001 Nov;9(11):1043-50 PMID: 11709168
  49. Crystal structure of Sar1-GDP at 1.7 A resolution and the role of the NH2 terminus in ER export.
    J Cell Biol. 2001 Dec 10;155(6):937-48 PMID: 11739406
  50. Use of quantitative structure-property relationships to predict the folding ability of model proteins.
    Proteins. 1998 Nov 1;33(2):177-203 PMID: 9779787
Article Info
Journal
Protein science : a publication of the Protein Society
Abbr.
Protein Sci
ISSN
0961-8368
Published
2004-03-00
Pages
608-16
Language
English
Region
United States
NLM ID
9211750
PMCID
PMC2286719
Subset
IM
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