Crystal structure of recombinant triosephosphate isomerase from bacillus stearothermophilus. An analysis of potential thermostability factors in six isomerases with known three‐dimensional structures points to the importance of hydrophobic interactions
Open Access
- 1 December 1995
- journal article
- research article
- Published by Wiley in Protein Science
- Vol. 4 (12) , 2594-2604
- https://doi.org/10.1002/pro.5560041217
Abstract
The structure of the thermostable triosephosphate isomerase (TIM) from Bacillus stearothermophilus complexed with the competitive inhibitor 2-phosphoglycolate was determined by X-ray crystallography to a resolution of 2.8 A. The structure was solved by molecular replacement using XPLOR. Twofold averaging and solvent flattening was applied to improve the quality of the map. Active sites in both the subunits are occupied by the inhibitor and the flexible loop adopts the “closed” conformation in either subunit. The crystallographic R-factor is 17.6% with good geometry. The two subunits have an RMS deviation of 0.29 Å for 248 Cα atoms and have average temperature factors of 18.9 and 15.9 A2, respectively. In both subunits, the active site Lys 10 adopts an unusual ϕ,ψ combination. A comparison between the six known thermophilic and mesophilic TIM structures was conducted in order to understand the higher stability of B. stearothermophilus TIM. Although the ratio Arg/(Arg+Lys) is higher in B. stearothermophilus TIM, the structure comparisons do not directly correlate this higher ratio to the better stability of the B. stearothermophilus enzyme. A higher number of prolines contributes to the higher stability of B. stearothermophilus TIM. Analysis of the known TIM sequences points out that the replacement of a structurally crucial asparagine by a histidine at the interface of monomers, thus avoiding the risk of deamidation and thereby introducing a negative charge at the interface, may be one of the factors for adaptability at higher temperatures in the TIM family. Analysis of buried cavities and the areas lining these cavities also contributes to the greater thermal stability of the B. stearothermophilus enzyme. However, the most outstanding result of the structure comparisons appears to point to the hydrophobic stabilization of dimer formation by burying the largest amount of hydrophobic surface area in B. stearothermophilus TIM compared to all five other known TIM structures.Keywords
This publication has 76 references indexed in Scilit:
- The Crystal Structure of Holo-glyceraldehyde-3-phosphate Dehydrogenase from the Hyperthermophilic BacteriumThermotoga maritimaat 2.5 Å ResolutionJournal of Molecular Biology, 1995
- The CCP4 suite: programs for protein crystallographyActa Crystallographica Section D-Biological Crystallography, 1994
- Planar Stacking Interactions of Arginine and Aromatic Side-Chains in ProteinsJournal of Molecular Biology, 1994
- Stabilization of Bacillus stearothermophilus neutral protease by introduction of prolinesFEBS Letters, 1993
- Cloning and Overexpression of the Triosephosphate Isomerase Genes from Psychrophilic and Thermophilic Bacteria: Structural Comparison of the Predicted protein SequencesJournal of Molecular Biology, 1993
- Comparison of the refined crystal structures of liganded and unliganded chicken, yeast and trypanosomal triosephosphate isomeraseJournal of Molecular Biology, 1992
- Analysis and modulation of protein stabilityCurrent Opinion in Biotechnology, 1991
- Refined 1.83 Å structure of trypanosomal triosephosphate isomerase crystallized in the presence of 2.4 m-ammonium sulphateJournal of Molecular Biology, 1991
- Engineering protein thermal stability: Sequence statistics point to residue substitutions in α-helicesJournal of Molecular Biology, 1989
- Dictionary of protein secondary structure: Pattern recognition of hydrogen‐bonded and geometrical featuresBiopolymers, 1983