The symmetry of Escherichia coli cpn60 (GroEL) determined by X-ray crystallography. 1994

L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
Department of Molecular Biophysics, University of Lund, Sweden.

The internal symmetries of the Escherichia coli molecular chaperone cpn60 oligomer, also called GroEL, have been examined by X-ray crystallography and self-rotation functions calculated at a resolution of 8.9 A. The oligomer ([cpn60]14) has one 7-fold symmetry axis and seven 2-fold axes that are all perpendicular to the 7-fold. The symmetry can be explained if oligomeric cpn60 is arranged as two heptamers stacked on top of each other, where the heptameric arrangement generates the 7-fold symmetry axis and the head-to-head assembly of two heptamers results in the seven 2-fold axes. This is an agreement with interpretations of electron microscopy data. However, the experimental determination of the symmetries reported here are made with an independent technique and at higher resolution. In addition self-rotation function calculations show that the symmetries observed are valid also for the internal parts of GroEL and not only for surface views. The orientations of the symmetry axes of the two independent cpn60 oligomers in the triclinic unit cell have been determined relative to the crystallographic axes. The planes formed by the 2-fold axes in the two oligomers deviate by about 2 degrees from the plane formed by the crystallographic a and c axes, while the 7-fold axes form angles of about 16 degrees with the b-axis. The two oligomers in the unit cell are arranged with their 7-fold axis parallel, but the second oligomer is rotated 26 degrees around the 7-fold axis relative to the first oligomer. Knowledge of the symmetry and orientation of the oligomers in the unit cell will be of great help in further crystallographic work.

UI MeSH Term Description Entries
D008961 Models, Structural A representation, generally small in scale, to show the structure, construction, or appearance of something. (From Random House Unabridged Dictionary, 2d ed) Model, Structural,Structural Model,Structural Models
D011487 Protein Conformation The characteristic 3-dimensional shape of a protein, including the secondary, supersecondary (motifs), tertiary (domains) and quaternary structure of the peptide chain. PROTEIN STRUCTURE, QUATERNARY describes the conformation assumed by multimeric proteins (aggregates of more than one polypeptide chain). Conformation, Protein,Conformations, Protein,Protein Conformations
D004926 Escherichia coli A species of gram-negative, facultatively anaerobic, rod-shaped bacteria (GRAM-NEGATIVE FACULTATIVELY ANAEROBIC RODS) commonly found in the lower part of the intestine of warm-blooded animals. It is usually nonpathogenic, but some strains are known to produce DIARRHEA and pyogenic infections. Pathogenic strains (virotypes) are classified by their specific pathogenic mechanisms such as toxins (ENTEROTOXIGENIC ESCHERICHIA COLI), etc. Alkalescens-Dispar Group,Bacillus coli,Bacterium coli,Bacterium coli commune,Diffusely Adherent Escherichia coli,E coli,EAggEC,Enteroaggregative Escherichia coli,Enterococcus coli,Diffusely Adherent E. coli,Enteroaggregative E. coli,Enteroinvasive E. coli,Enteroinvasive Escherichia coli
D006360 Heat-Shock Proteins Proteins which are synthesized in eukaryotic organisms and bacteria in response to hyperthermia and other environmental stresses. They increase thermal tolerance and perform functions essential to cell survival under these conditions. Stress Protein,Stress Proteins,Heat-Shock Protein,Heat Shock Protein,Heat Shock Proteins,Protein, Stress
D001426 Bacterial Proteins Proteins found in any species of bacterium. Bacterial Gene Products,Bacterial Gene Proteins,Gene Products, Bacterial,Bacterial Gene Product,Bacterial Gene Protein,Bacterial Protein,Gene Product, Bacterial,Gene Protein, Bacterial,Gene Proteins, Bacterial,Protein, Bacterial,Proteins, Bacterial
D017510 Protein Folding Processes involved in the formation of TERTIARY PROTEIN STRUCTURE. Protein Folding, Globular,Folding, Globular Protein,Folding, Protein,Foldings, Globular Protein,Foldings, Protein,Globular Protein Folding,Globular Protein Foldings,Protein Foldings,Protein Foldings, Globular
D046911 Macromolecular Substances Compounds and molecular complexes that consist of very large numbers of atoms and are generally over 500 kDa in size. In biological systems macromolecular substances usually can be visualized using ELECTRON MICROSCOPY and are distinguished from ORGANELLES by the lack of a membrane structure. Macromolecular Complexes,Macromolecular Compounds,Macromolecular Compounds and Complexes,Complexes, Macromolecular,Compounds, Macromolecular,Substances, Macromolecular
D018360 Crystallography, X-Ray The study of crystal structure using X-RAY DIFFRACTION techniques. (McGraw-Hill Dictionary of Scientific and Technical Terms, 4th ed) X-Ray Crystallography,Crystallography, X Ray,Crystallography, Xray,X Ray Crystallography,Xray Crystallography,Crystallographies, X Ray,X Ray Crystallographies
D018834 Chaperonin 60 A group I chaperonin protein that forms the barrel-like structure of the chaperonin complex. It is an oligomeric protein with a distinctive structure of fourteen subunits, arranged in two rings of seven subunits each. The protein was originally studied in BACTERIA where it is commonly referred to as GroEL protein. Heat-Shock Proteins 60,hsp60 Family,GroEL Protein,GroEL Stress Protein,Heat-Shock Protein 60,hsp60 Protein,Heat Shock Protein 60,Heat Shock Proteins 60

Related Publications

L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
April 2003, Journal of structural biology,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
February 1995, Biophysical chemistry,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
January 2000, Biochemistry,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
July 2007, Acta crystallographica. Section D, Biological crystallography,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
March 2018, Acta crystallographica. Section D, Structural biology,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
January 1997, Biochemistry,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
April 1993, The Biochemical journal,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
December 1997, Journal of molecular biology,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
March 2022, Acta crystallographica. Section D, Structural biology,
L A Svensson, and B P Surin, and N E Dixon, and M D Spangfort
January 2020, Methods in enzymology,
Copied contents to your clipboard!