Intrinsic affinity of protein – ligand binding by differential scanning calorimetry

Differential scanning calorimetry (DSC) determines the enthalpy change upon protein unfolding and the melting temperature of the protein. Performing DSC of a protein in the presence of increasing concentrations of specifically-binding ligand yields a series of curves that can be fit to obtain the pr...

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Veröffentlicht in:Biochimica et biophysica acta. Proteins and proteomics 2022-09, Vol.1870 (9), p.140830-140830, Article 140830
Hauptverfasser: Linkuvienė, Vaida, Zubrienė, Asta, Matulis, Daumantas
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Sprache:eng
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Zusammenfassung:Differential scanning calorimetry (DSC) determines the enthalpy change upon protein unfolding and the melting temperature of the protein. Performing DSC of a protein in the presence of increasing concentrations of specifically-binding ligand yields a series of curves that can be fit to obtain the protein–ligand dissociation constant as done in the fluorescence-based thermal shift assay (FTSA, ThermoFluor, DSF). The enthalpy of unfolding, as directly determined by DSC, helps improving the precision of the fit. If the ligand binding is linked to protonation reactions, the intrinsic binding constant can be determined by performing the affinity determination at a series of pH values. Here, the intrinsic, pH-independent, affinity of acetazolamide binding to carbonic anhydrase (CA) II was determined. A series of high-affinity ligands binding to CAIX, an anticancer drug target, and CAII showed recognition and selectivity for the anticancer isozyme. Performing the DSC experiment in buffers of highly different enthalpies of protonation enabled to observe the ligand unbinding-linked protonation reactions and estimate the intrinsic enthalpy of binding. The heat capacity of combined unfolding and unbinding was determined by varying the ligand concentrations. Taken together, these parameters provided a detailed thermodynamic picture of the linked ligand binding and protein unfolding process. [Display omitted] •Tight picomolar affinities of protein-ligand binding are accurately determined by DSC.•Intrinsic binding constants (accounted for linked protonation) were determined by DSC.•Intrinsic enthalpy of ligand binding was estimated from DSC in two buffers at several pHs.
ISSN:1570-9639
1878-1454
DOI:10.1016/j.bbapap.2022.140830