Adaptation Mechanism of the Aspartate Receptor: Electrostatics of the Adaptation Subdomain Play a Key Role in Modulating Kinase Activity
- 8 January 2005
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 44 (5) , 1550-1560
- https://doi.org/10.1021/bi048089z
Abstract
The aspartate receptor of the Escherichia coli and Salmonella typhimurium chemotaxis pathway generates a transmembrane signal that regulates the activity of the cytoplasmic kinase CheA. Previous studies have identified a region of the cytoplasmic domain that is critical to receptor adaptation and kinase regulation. This region, termed the adaptation subdomain, contains a high density of acidic residues, including specific glutamate residues that serve as receptor adaptation sites. However, the mechanism of signal propagation through this region remains poorly understood. This study uses site-directed mutagenesis to neutralize each acidic residue within the subdomain to probe the hypothesis that electrostatics in this region play a significant role in the mechanism of kinase activation and modulation. Each point mutant was tested for its ability to regulate chemotaxis in vivo and kinase activity in vitro. Four point mutants (D273N, E281Q, D288N, and E477Q) were found to superactivate the kinase relative to the wild-type receptor, and all four of these kinase-activating substitutions are located along the same intersubunit interface as the adaptation sites. These activating substitutions retained the wild-type ability of the attractant-occupied receptor to inhibit kinase activity. When combined in a quadruple mutant (D273N/E281Q/D288N/E477Q), the four charge-neutralizing substitutions locked the receptor in a kinase-superactivating state that could not be fully inactivated by the attractant. Similar lock-on character was observed for a charge reversal substitution, D273R. Together, these results implicate the electrostatic interactions at the intersubunit interface as a major player in signal transduction and kinase regulation. The negative charge in this region destabilizes the local structure in a way that enhances conformational dynamics, as detected by disulfide trapping, and this effect is reversed by charge neutralization of the adaptation sites. Finally, two substitutions (E308Q and E463Q) preserved normal kinase activation in vitro but blocked cellular chemotaxis in vivo, suggesting that these sites lie within the docking site of an adaptation enzyme, CheR or CheB. Overall, this study highlights the importance of electrostatics in signal transduction and regulation of kinase activity by the cytoplasmic domain of the aspartate receptor.Keywords
This publication has 44 references indexed in Scilit:
- Molecular Evolution of the C-terminal Cytoplasmic Domain of a Superfamily of Bacterial Receptors Involved in TaxisJournal of Molecular Biology, 1996
- Molecular mechanism of transmembrane signaling by the aspartate receptor: a model.Proceedings of the National Academy of Sciences, 1996
- The Receptor Binding Site for the Methyltransferase of Bacterial Chemotaxis Is Distinct from the Sites of MethylationBiochemistry, 1996
- Lock On/Off Disulfides Identify the Transmembrane Signaling Helix of the Aspartate ReceptorJournal of Biological Chemistry, 1995
- Transmembrane signaling by the aspartate receptor: Engineered disulfides reveal static regions of the subunit interfaceBiochemistry, 1995
- Classical Electrostatics in Biology and ChemistryScience, 1995
- Deducing the organization of a transmembrane domain by disulfide cross-linking. The bacterial chemoreceptor Trg.Journal of Biological Chemistry, 1994
- Attenuation of sensory receptor signaling by covalent modification.Proceedings of the National Academy of Sciences, 1992
- Structure and dynamics of Escherichia coli chemosensory receptors. Engineered sulfhydryl studiesBiophysical Journal, 1992
- Protein folding and association: Insights from the interfacial and thermodynamic properties of hydrocarbonsProteins-Structure Function and Bioinformatics, 1991