Disulfide cross-linking studies of the transmembrane regions of the aspartate sensory receptor of Escherichia coli.
- 1 December 1991
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 88 (23), 10402-10406
- https://doi.org/10.1073/pnas.88.23.10402
Abstract
The Escherichia coli aspartate receptor, a dimer of identical subunits, has two transmembrane regions (TM1, residues 7-30; TM2, residues 189-212) of 24 residues each. To study the relative placement and orientation of the regions, cysteine residues were introduced individually into the center of each: at positions 17, 18, and 19 in TM1; and at positions 198, 199, 200, and 201 in TM2. Based on the patterns of disulfide cross-linking observed between subunits in the mutant receptors, there appears to be close contact between the TM1 and TM1' regions at the dimer interface but no such direct interaction between the TM2 and TM2' regions. The cross-linking results are consistent with an alpha-helical structure extending across the transmembrane region up through at least residue 36, which lies on the periplasmic side of TM1. The ability of an 18-18' cross-linked dimer to transmit an aspartate-induced transmembrane signal is also supportive of such an extended helix. The changes in relative rates of disulfide cross-linking provide experimental evidence of a conformational change transmitted through the transmembrane domain during signaling. Once formed, disulfides between the transmembrane regions are unusually resistant to reduction by low molecular weight thiols in the presence of denaturants like SDS. These targeted disulfide cross-links can be used to reveal structural and dynamic aspects of protein function.Keywords
This publication has 18 references indexed in Scilit:
- Structural studies on transmembrane proteins. 2. Spin labeling of bacteriorhodopsin mutants at unique cysteinesBiochemistry, 1989
- Hydrophobic Organization of Membrane ProteinsScience, 1989
- Structure of the Adrenergic and Related ReceptorsAnnual Review of Neuroscience, 1989
- Signal transduction by allosteric receptor oligomerizationTrends in Biochemical Sciences, 1988
- Additive and independent responses in a single receptor: Aspartate and maltose stimuli on the tar proteinCell, 1987
- Human insulin receptor and its relationship to the tyrosine kinase family of oncogenesNature, 1985
- Rapid and efficient site-specific mutagenesis without phenotypic selection.Proceedings of the National Academy of Sciences, 1985
- Human epidermal growth factor receptor cDNA sequence and aberrant expression of the amplified gene in A431 epidermoid carcinoma cellsNature, 1984
- Separation of Signal Transduction and Adaptation Functions of the Aspartate Receptor in Bacterial SensingScience, 1983
- Helix to helix packing in proteinsJournal of Molecular Biology, 1981