PubMed Health⌕ Search

PubMed · 10548053

Barrel structures in proteins: automatic identification and classification including a sequence analysis of TIM barrels.

Abstract

Automated methods for identifying and characterizing regular beta-barrels from coordinate data have been developed to analyze and classify various kinds of barrel structures based on geometric parameters such as the barrel strand number (n) and shear number (S). In total, we find 1,316 barrels in the January 1998 release of Protein Data Bank. Of 1,316 barrels, 1,277 barrels had an even shear number, corresponding to 50 nonhomologous families. The (beta alpha)8 triose phosphate isomerase (TIM) barrel (n = 8, S = 8) fold has the largest number of apparently nonhomologous entries, 16, although the trypsin like antiparallel (n = 6, S = 8) barrels (representing only three families) are the most common with 527 barrels. Of all the protein families that exhibit barrel structures, 68% are found to be various kinds of enzymes, the remainder being binding proteins and transport membrane proteins. In addition, the layers of side chains, which form the cores of barrels with S = n and S = 2n, are also analyzed. More sophisticated methods were developed for detecting TIM barrels specifically, including consideration of the amino acid propensities for the side chains that form the layers. We found that the residues on the outside of the eight stranded parallel beta-barrel, buried by the alpha-helices, are much more hydrophobic than the residues inside the barrel.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

N Nagano, E G Hutchinson, J M Thornton. 1999. Barrel structures in proteins: automatic identification and classification including a sequence analysis of TIM barrels.. https://doi.org/10.1110/ps.8.10.2072

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Stability and stabilization of globular proteins in solution.

Proteins are multifunctional: their amino acid sequences simultaneously determine folding, function and turnover. Correspondingly, evolution selected for compromises between rigidity (stability) and flexibility (folding/function/degradation), to the result that generally the free energy of stabilization of globular proteins in solution is the equivalent to only a few weak intermolecular interactions. Additional increments may come from extrinsic factors such as ligands or specific compatible solutes. Apart from the enthalpic effects, entropy may play a role by reducing the flexibility (cystine bridges, increased proline content), or by water release from residues buried upon folding and association. Additional quaternary interactions and closer packing are typical characteristics of proteins from thermophiles. In halophiles, protein stability and function are maintained by increased ion binding and glutamic acid content, both allowing the protein inventory to compete for water at high salt. Acidophiles and alkalophiles show neutral intracellular pH; proteins facing the outside extremes of pH possess anomalously high contents in ionizable amino acids. Global comparisons of the amino acid compositions and sequences of proteins from mesophiles and extremophiles did not result in general rules of protein stabilization, even after including complete genome sequences into the search. Obviously, proteins are individuals that optimize internal packing and external solvent interactions by very different mechanisms, each protein in its own way. Strategies deduced from specific ultrastable proteins allow stabilizing point mutations to be predicted.

Hydrogen Bonding↗

NH-S hydrogen bonding in zinc enzyme model complex with S2N2 binding set studied by normal coordinate analysis of vibrational spectra.

In order to provide theoretical evidence for the existence and effect of NH-S hydrogen bonding in the zinc enzyme model complex [Zn(S-2-C6H4NHCOC6H5)2(1-MeIm)2] (1-MeIm = 1-methylimidazole) in addition to the spectroscopic and crystallographic investigations, normal coordinate analysis (NCA) was carried out using a modified Urey-Bradley force field. The vibrational frequencies of the complex with and without the NH-S hydrogen bonding as well as the corresponding internal coordinates were obtained. The good agreement found between the calculated and observed frequencies in the presence of the NH-S hydrogen bond, supports the reliability of the analysis. The stretching force constant of the NH-S hydrogen bond obtained from the calculation is 0.18 mdyne per A. The calculation shows that the N-H bond is weakened by formation of the NH-S hydrogen bond. The results are indicative of the existence of the NH-S hydrogen bond in the complex.

Hydrogen Bonding↗