Allosteric Drug Discrimination Is Coupled to Mechanochemical Changes in the Kinesin-5 Motor Core
Allosteric Drug Discrimination Is Coupled to Mechanochemical Changes in the Kinesin-5 Motor Core
Essential in mitosis, the human Kinesin-5 protein is a target for >80 classes of allosteric compounds that bind to a surface-exposed site formed by the L5 loop. Not established is why there are differing efficacies in drug inhibition. Here we compare the ligand-bound states of two L5-directed inhibitors against 15 Kinesin-5 mutants by ATPase assays and IR spectroscopy. Biochemical kinetics uncovers functional differences between individual residues at the N or C termini of the L5 loop. Infrared evaluation of solution structures and multivariate analysis of the vibrational spectra reveal that mutation and/or ligand binding not only can remodel the allosteric binding surface but also can transmit long range effects. Changes in L5-localized 3(10) helix and disordered content, regardless of substitution or drug potency, are experimentally detected. Principal component analysis couples these local structural events to two types of rearrangements in beta-sheet hydrogen bonding. These transformations in beta-sheet contacts are correlated with inhibitory drug response and are corroborated by wild type Kinesin-5 crystal structures. Despite considerable evolutionary divergence, our data directly support a theorized conserved element for long distance mechanochemical coupling in kinesin, myosin, and F(1)-ATPase. These findings also suggest that these relatively rapid IR approaches can provide structural biomarkers for clinical determination of drug sensitivity and drug efficacy in nucleotide triphosphatases.
- Virginia Tech United States
- Louisiana State University Health Sciences Center New Orleans United States
Kinesins, Mitosis, Hydrogen Bonding, Myosins, Crystallography, X-Ray, Ligands, Protein Structure, Secondary, Protein Structure, Tertiary, Proton-Translocating ATPases, Pharmaceutical Preparations, Spectroscopy, Fourier Transform Infrared, Humans, Allosteric Site, Protein Binding
Kinesins, Mitosis, Hydrogen Bonding, Myosins, Crystallography, X-Ray, Ligands, Protein Structure, Secondary, Protein Structure, Tertiary, Proton-Translocating ATPases, Pharmaceutical Preparations, Spectroscopy, Fourier Transform Infrared, Humans, Allosteric Site, Protein Binding
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