Abstract
Predicting the structural fold of a protein is an important and challenging problem. Available computer programs for determining whether a protein sequence is compatible with a known 3-dimensional structure fall into 2 categories: (1) structure-based methods, in which structural features such as local conformation and solvent accessibility are encoded in a template, and (2) sequence-based methods, in which aligned sequences of a set of related proteins are encoded in a template. In both cases, the programs use a static template based on a predetermined set of proteins. Here, we describe a computer-based method, called iterative template refinement (ITR), that uses templates combining structure-based and sequence-based information and employs an iterative search procedure to detect related proteins and sequentially add them to the templates. Starting from a single protein of known structure, ITR performs sequential cycles of database search to construct an expanding tree of templates with the aim of identifying subtle relationships among proteins. Evaluating the performance of ITR on 6 proteins, we found that the method automatically identified a variety of subtle structural similarities to other proteins. For example, the method identified structural similarity between arabinose-binding protein and phosphofructokinase, a relationship that has not been widely recognized.
MeSH Terms
Amino Acid Sequence
Binding Sites
Carrier Proteins/chemistry
Chymotrypsin/chemistry
Cytochrome c Group/chemistry
Databases, Factual
Escherichia coli Proteins
Information Storage and Retrieval
L-Lactate Dehydrogenase/chemistry
Molecular Sequence Data
Plastocyanin/chemistry
Proteins/chemistry
Sequence Homology
Templates, Genetic
Tryptophan Synthase/chemistry
Chemicals
AraF protein, E coli
Carrier Proteins
Cytochrome c Group
Escherichia coli Proteins
Proteins
Plastocyanin
L-Lactate Dehydrogenase
Chymotrypsin
Tryptophan Synthase
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Yi T M
Whitehead Institute for Biomedical Research, Massachusetts Institute of Technology, Cambridge 02142.
Lander E S
References (32)
32 references, click to expand
-
Evaluation of the sequence template method for protein structure prediction. Discrimination of the (beta/alpha)8-barrel fold.
J Mol Biol. 1992 Nov 5;228(1):170-87
PMID: 1447780
-
Protein tertiary structure recognition using optimized Hamiltonians with local interactions.
Proc Natl Acad Sci U S A. 1992 Oct 1;89(19):9029-33
PMID: 1409599
-
Three-dimensional profiles from residue-pair preferences: identification of sequences with beta/alpha-barrel fold.
Proc Natl Acad Sci U S A. 1993 Feb 15;90(4):1379-83
PMID: 8433995
-
Protein structure comparison by alignment of distance matrices.
J Mol Biol. 1993 Sep 5;233(1):123-38
PMID: 8377180
-
Chemical and biological evolution of nucleotide-binding protein.
Nature. 1974 Jul 19;250(463):194-9
PMID: 4368490
-
Comparison of the predicted model of alpha-lytic protease with the x-ray structure.
Nature. 1979 May 10;279(5709):165-8
PMID: 440424
-
Structure of the L-arabinose-binding protein from Escherichia coli at 2.4 A resolution.
J Mol Biol. 1981 Mar 5;146(3):341-62
PMID: 7021859
-
Identification of common molecular subsequences.
J Mol Biol. 1981 Mar 25;147(1):195-7
PMID: 7265238
-
Structure of oxidized poplar plastocyanin at 1.6 A resolution.
J Mol Biol. 1983 Sep 15;169(2):521-63
PMID: 6620385
-
Refined structure of alpha-lytic protease at 1.7 A resolution. Analysis of hydrogen bonding and solvent structure.
J Mol Biol. 1985 Aug 5;184(3):479-502
PMID: 3900416
-
The relation between the divergence of sequence and structure in proteins.
EMBO J. 1986 Apr;5(4):823-6
PMID: 3709526
-
Identification of protein sequence homology by consensus template alignment.
J Mol Biol. 1986 Mar 20;188(2):233-58
PMID: 3088284
-
Amino acid and sequence analysis of the cytochrome and flavoprotein subunits of p-cresol methylhydroxylase.
Biochemistry. 1986 Oct 7;25(20):5975-81
PMID: 3790500
-
Determinants of a protein fold. Unique features of the globin amino acid sequences.
J Mol Biol. 1987 Jul 5;196(1):199-216
PMID: 3656444
-
Improved tools for biological sequence comparison.
Proc Natl Acad Sci U S A. 1988 Apr;85(8):2444-8
PMID: 3162770
-
Phase determination by multiple-wavelength x-ray diffraction: crystal structure of a basic "blue" copper protein from cucumbers.
Science. 1988 Aug 12;241(4867):806-11
PMID: 3406739
-
Structure of azurin from Alcaligenes denitrificans refinement at 1.8 A resolution and comparison of the two crystallographically independent molecules.
J Mol Biol. 1988 Oct 20;203(4):1071-95
PMID: 3210236
-
Protein database searches for multiple alignments.
Proc Natl Acad Sci U S A. 1990 Jul;87(14):5509-13
PMID: 2196570
-
Basic local alignment search tool.
J Mol Biol. 1990 Oct 5;215(3):403-10
PMID: 2231712
-
Three-dimensional structure of p-cresol methylhydroxylase (flavocytochrome c) from Pseudomonas putida at 3.0-A resolution.
Biochemistry. 1991 Jan 8;30(1):238-47
PMID: 1846290
-
The 2.3-A resolution structure of the maltose- or maltodextrin-binding protein, a primary receptor of bacterial active transport and chemotaxis.
J Biol Chem. 1991 Mar 15;266(8):5202-19
PMID: 2002054
-
Sequence variability in bacterial cytochromes c.
Biochim Biophys Acta. 1991 May 23;1058(1):42-7
PMID: 1646017
-
A method to identify protein sequences that fold into a known three-dimensional structure.
Science. 1991 Jul 12;253(5016):164-70
PMID: 1853201
-
Statistical methods and insights for protein and DNA sequences.
Annu Rev Biophys Biophys Chem. 1991;20:175-203
PMID: 1867715
-
Automated assembly of protein blocks for database searching.
Nucleic Acids Res. 1991 Dec 11;19(23):6565-72
PMID: 1754394
-
Comparison of the hemocyanin beta-barrel with other Greek key beta-barrels: possible importance of the "beta-zipper" in protein structure and folding.
Proteins. 1992 Mar;12(3):278-98
PMID: 1557352
-
Detection of native-like models for amino acid sequences of unknown three-dimensional structure in a data base of known protein conformations.
Proteins. 1992 Jul;13(3):258-71
PMID: 1603814
-
Exhaustive matching of the entire protein sequence database.
Science. 1992 Jun 5;256(5062):1443-5
PMID: 1604319
-
Proteins. One thousand families for the molecular biologist.
Nature. 1992 Jun 18;357(6379):543-4
PMID: 1608464
-
A new approach to protein fold recognition.
Nature. 1992 Jul 2;358(6381):86-9
PMID: 1614539
-
Topology fingerprint approach to the inverse protein folding problem.
J Mol Biol. 1992 Sep 5;227(1):227-38
PMID: 1522587
-
Anatomy and evolution of proteins displaying the viral capsid jellyroll topology.
J Mol Biol. 1992 Nov 5;228(1):220-42
PMID: 1447783