4.8 Article

Bacterial chemoreceptor signaling complexes control kinase activity by stabilizing the catalytic domain of CheA

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NATL ACAD SCIENCES
DOI: 10.1073/pnas.2218467120

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chemotaxis; receptor array; hydrogen exchange mass spectrometry (HDX-MS); kinase

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Motile bacteria can sense their environment and swim towards favorable conditions using a chemotaxis system. In this system, ligand binding to the chemoreceptor triggers a phosphorylation cascade that controls flagellar rotation. By studying functional signaling complexes in E. coli, it was found that stabilization/destabilization of certain domains in CheA is crucial for modulating its kinase activity in chemotaxis.
Motile bacteria have a chemotaxis system that enables them to sense their environment and direct their swimming toward favorable conditions. Chemotaxis involves a signaling process in which ligand binding to the extracellular domain of the chemoreceptor alters the activity of the histidine kinase, CheA, bound similar to 300 angstrom away to the distal cytoplasmic tip of the receptor, to initiate a phosphorylation cascade that controls flagellar rotation. The cytoplasmic domain of the receptor is thought to propagate this signal via changes in dynamics and/or stability, but it is unclear how these changes modulate the kinase activity of CheA. To address this question, we have used hydrogen deuterium exchange mass spectrometry to probe the structure and dynamics of CheA within functional signaling complexes of the Escherichia coli aspartate receptor cytoplasmic fragment, CheA, and CheW. Our results reveal that stabilization of the P4 catalytic domain of CheA correlates with kinase activation. Furthermore, differences in activation of the kinase that occur during sensory adaptation depend on receptor destabilization of the P3 dimerization domain of CheA. Finally, hydrogen exchange properties of the P1 domain that bears the phosphorylated histidine identify the dimer interface of P1/P1' in the CheA dimer and support an ordered sequential binding mechanism of catalysis, in which dimeric P1/P1' has productive interactions with P4 only upon nucleotide binding. Thus stabilization/destabilization of domains is a key element of the mechanism of modulating CheA kinase activity in chemotaxis, and may play a role in the control of other kinases.

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