5llp Citations

Crystal structure correlations with the intrinsic thermodynamics of human carbonic anhydrase inhibitor binding.

PeerJ 6 e4412 (2018)
Related entries: 5llc, 5lle, 5llg, 5llh, 5llo, 5msb

Cited: 7 times
EuropePMC logo PMID: 29503769

Abstract

The structure-thermodynamics correlation analysis was performed for a series of fluorine- and chlorine-substituted benzenesulfonamide inhibitors binding to several human carbonic anhydrase (CA) isoforms. The total of 24 crystal structures of 16 inhibitors bound to isoforms CA I, CA II, CA XII, and CA XIII provided the structural information of selective recognition between a compound and CA isoform. The binding thermodynamics of all structures was determined by the analysis of binding-linked protonation events, yielding the intrinsic parameters, i.e., the enthalpy, entropy, and Gibbs energy of binding. Inhibitor binding was compared within structurally similar pairs that differ by para- or meta-substituents enabling to obtain the contributing energies of ligand fragments. The pairs were divided into two groups. First, similar binders-the pairs that keep the same orientation of the benzene ring exhibited classical hydrophobic effect, a less exothermic enthalpy and a more favorable entropy upon addition of the hydrophobic fragments. Second, dissimilar binders-the pairs of binders that demonstrated altered positions of the benzene rings exhibited the non-classical hydrophobic effect, a more favorable enthalpy and variable entropy contribution. A deeper understanding of the energies contributing to the protein-ligand recognition should lead toward the eventual goal of rational drug design where chemical structures of ligands could be designed based on the target protein structure.

Articles - 5llp mentioned but not cited (1)

  1. Crystal structure correlations with the intrinsic thermodynamics of human carbonic anhydrase inhibitor binding. Smirnov A, Zubrienė A, Manakova E, Gražulis S, Matulis D. PeerJ 6 e4412 (2018)


Reviews citing this publication (1)

  1. Thermodynamic, kinetic, and structural parameterization of human carbonic anhydrase interactions toward enhanced inhibitor design. Linkuvienė V, Zubrienė A, Manakova E, Petrauskas V, Baranauskienė L, Zakšauskas A, Smirnov A, Gražulis S, Ladbury JE, Matulis D. Q Rev Biophys 51 e10 (2018)

Articles citing this publication (5)

  1. Isothermal Analysis of ThermoFluor Data can readily provide Quantitative Binding Affinities. Bai N, Roder H, Dickson A, Karanicolas J. Sci Rep 9 2650 (2019)
  2. Methyl 2-Halo-4-Substituted-5-Sulfamoyl-Benzoates as High Affinity and Selective Inhibitors of Carbonic Anhydrase IX. Zakšauskas A, Čapkauskaitė E, Paketurytė-Latvė V, Smirnov A, Leitans J, Kazaks A, Dvinskis E, Stančaitis L, Mickevičiūtė A, Jachno J, Jezepčikas L, Linkuvienė V, Sakalauskas A, Manakova E, Gražulis S, Matulienė J, Tars K, Matulis D. Int J Mol Sci 23 130 (2021)
  3. Isoform-Selective Enzyme Inhibitors by Exploring Pocket Size According to the Lock-and-Key Principle. Dudutienė V, Zubrienė A, Kairys V, Smirnov A, Smirnovienė J, Leitans J, Kazaks A, Tars K, Manakova L, Gražulis S, Matulis D. Biophys J 119 1513-1524 (2020)
  4. Switching the Inhibitor-Enzyme Recognition Profile via Chimeric Carbonic Anhydrase XII. Smirnovienė J, Smirnov A, Zakšauskas A, Zubrienė A, Petrauskas V, Mickevičiūtė A, Michailovienė V, Čapkauskaitė E, Manakova E, Gražulis S, Baranauskienė L, Chen WY, Ladbury JE, Matulis D. ChemistryOpen 10 567-580 (2021)
  5. Machine-Learning-Based Data Analysis Method for Cell-Based Selection of DNA-Encoded Libraries. Hou R, Xie C, Gui Y, Li G, Li X. ACS Omega 8 19057-19071 (2023)