Elbow motion in the immunoglobulins involves a molecular ball-and-socket joint
- 1 September 1988
- journal article
- Published by Springer Nature in Nature
- Vol. 335 (6186) , 188-190
- https://doi.org/10.1038/335188a0
Abstract
Studies by electron microscopy, fluorescence polarization, hydro-dynamics and X-ray crystallography have demonstrated the ability of different parts of immunoglobulin molecules to move relative to each other. This movement facilitates the multiple interactions that antibodies make with polyvalent antigens and effector proteins. Comparisons of the atomic structures of immunoglobulins of the same sequence in different crystal environments, and of those with different sequences, have shown that the movements involve local changes in the conformation of the peptides linking different domains. These changes occur in (1) the hinge regions that link the Fab fragment to the Fc, and (2) the switch regions that link the VL-VH dimer to the CL-CH1 dimer. We show here that in immunoglobulins of known structure, the movement of the VL-VH dimer relative to the CL-CH1 dimer also involves the interactions of three VH and two CH1 residues that form the molecular equivalent of a ball-and-socket joint. The almost absolute conservation in the sequences of immunoglobulins and T-cell receptors of the residues that form these interactions suggests that this is a general feature of functional importance.Keywords
This publication has 28 references indexed in Scilit:
- Three-dimensional structure of an antibody-antigen complex.Proceedings of the National Academy of Sciences, 1987
- Three-dimensional structure of a complex of antibody with influenza virus neuraminidaseNature, 1987
- Three-Dimensional Structure of an Antigen-Antibody Complex at 2.8 Å ResolutionScience, 1986
- Phosphocholine binding immunoglobulin Fab McPC603Journal of Molecular Biology, 1986
- The galactan‐binding immunoglobulin Fab J539: An x‐ray diffraction study at 2.6‐Å resolutionProteins-Structure Function and Bioinformatics, 1986
- Crystallographic refinement and atomic models of the intact immunoglobulin molecule Kol and its antigen-binding fragment at 3.0 Å and 1.9 Å resolutionJournal of Molecular Biology, 1980
- Marked structural differences of the Mcg Bence-Jones dimer in two crystal systemsBiochemistry, 1980
- Three-dimensional structure of an intact human immunoglobulin.Proceedings of the National Academy of Sciences, 1977
- Structure of the human antibody molecule kol (immunoglobulin G1): An electron density map at 5 Å resolutionJournal of Molecular Biology, 1976
- The Three-Dimensional Structure of the Fab′ Fragment of a Human Myeloma Immunoglobulin at 2.0-Å ResolutionProceedings of the National Academy of Sciences, 1974