BACKGROUND: Detailed characterization of the thermodynamic signature of weak binding fragments to proteins is essential to support the decision making process which fragments to take further for the hit-to-lead optimization. METHOD: Isothermal titration calorimetry (ITC) is the method of choice to record thermodynamic data, however, weak binding ligands such as fragments require the development of meaningful and reliable measuring protocols as usually sigmoidal titration curves are hardly possible to record due to limited solubility. RESULTS: Fragments can be titrated either directly under low c-value conditions (no sigmoidal curve) or indirectly by use of a strong binding ligand displacing the pre-incubated weak fragment from the protein. The determination of Gibbs free energy is reliable and rather independent of the applied titration protocol. CONCLUSION: Even though the displacement method achieves higher accuracy, the obtained enthalpy-entropy profile depends on the properties of the used displacement ligand. The relative enthalpy differences across different displacement experiments reveal a constant signature and can serve as a thermodynamic fingerprint for fragments. Low c-value titrations are only reliable if the final concentration of the fragment in the sample cell exceeds 2-10 fold its K(D) value. Limited solubility often prevents this strategy. GENERAL SIGNIFICANCE: The present study suggests an applicable protocol to characterize the thermodynamic signature of protein-fragment binding. It shows however, that such measurements are limited by protein and fragment solubility. Deviating profiles obtained by use of different displacement ligands indicate that changes in the solvation pattern and protein dynamics most likely take influence on the resulting overall binding signature.
BACKGROUND: Detailed characterization of the thermodynamic signature of weak binding fragments to proteins is essential to support the decision making process which fragments to take further for the hit-to-lead optimization. METHOD: Isothermal titration calorimetry (ITC) is the method of choice to record thermodynamic data, however, weak binding ligands such as fragments require the development of meaningful and reliable measuring protocols as usually sigmoidal titration curves are hardly possible to record due to limited solubility. RESULTS: Fragments can be titrated either directly under low c-value conditions (no sigmoidal curve) or indirectly by use of a strong binding ligand displacing the pre-incubated weak fragment from the protein. The determination of Gibbs free energy is reliable and rather independent of the applied titration protocol. CONCLUSION: Even though the displacement method achieves higher accuracy, the obtained enthalpy-entropy profile depends on the properties of the used displacement ligand. The relative enthalpy differences across different displacement experiments reveal a constant signature and can serve as a thermodynamic fingerprint for fragments. Low c-value titrations are only reliable if the final concentration of the fragment in the sample cell exceeds 2-10 fold its K(D) value. Limited solubility often prevents this strategy. GENERAL SIGNIFICANCE: The present study suggests an applicable protocol to characterize the thermodynamic signature of protein-fragment binding. It shows however, that such measurements are limited by protein and fragment solubility. Deviating profiles obtained by use of different displacement ligands indicate that changes in the solvation pattern and protein dynamics most likely take influence on the resulting overall binding signature.
Authors: Frederik Rainer Ehrmann; Johann Stojko; Alexander Metz; François Debaene; Luzi Jakob Barandun; Andreas Heine; François Diederich; Sarah Cianférani; Klaus Reuter; Gerhard Klebe Journal: PLoS One Date: 2017-04-18 Impact factor: 3.240
Authors: Johannes Schiebel; Roberto Gaspari; Tobias Wulsdorf; Khang Ngo; Christian Sohn; Tobias E Schrader; Andrea Cavalli; Andreas Ostermann; Andreas Heine; Gerhard Klebe Journal: Nat Commun Date: 2018-09-03 Impact factor: 14.919
Authors: Alexander Metz; Jan Wollenhaupt; Steffen Glöckner; Niki Messini; Simon Huber; Tatjana Barthel; Ahmed Merabet; Hans Dieter Gerber; Andreas Heine; Gerhard Klebe; Manfred S Weiss Journal: Acta Crystallogr D Struct Biol Date: 2021-08-23 Impact factor: 7.652