2cf8 Citations

Multipolar interactions in the D pocket of thrombin: large differences between tricyclic imide and lactam inhibitors.

Abstract

Two series of tricyclic inhibitors of the serine protease thrombin, imides (+/-)-1-(+/-)-8 and lactams (+/-)-9-(+/-)-13, were analysed to evaluate contributions of orthogonal multipolar interactions with the backbone C=O moiety of Asn98 to the free enthalpy of protein-ligand complexation. The lactam derivatives are much more potent and more selective inhibitors (K(i) values between 0.065 and 0.005 microM, selectivity for thrombin over trypsin between 361- and 1609-fold) than the imide compounds (Ki values between 0.057 and 23.7 microM, selectivity for thrombin over trypsin between 3- and 67-fold). The increase in potency and selectivity is explained by the favorable occupancy of the P-pocket of thrombin by the additional isopropyl substituent in the lactam derivatives. The nature of the substituent on the benzyl ring filling the D pocket strongly influences binding potency in the imide series, with Ki values increasing in the sequence: F < OCH2O < Cl < H < OMe < OH < N(pyr)<< Br. This sequence can be explained by both steric fit and the occurrence of orthogonal multipolar interactions with the backbone C[double bond, length as m-dash]O moiety of Asn98. In contrast, the substituent on the benzyl ring hardly affects the ligand potency in the lactam series. This discrepancy was clarified by the comparison of X-ray structures solved for co-crystals of thrombin with imide and lactam ligands. Whereas the benzyl substituents in the imide inhibitors are sufficiently close (< or =3.5 Angstroms) to the C=O group of Asn98 to allow for attractive orthogonal multipolar interactions, the distances in the lactam series are too large (> or =4 Angstroms) for attractive dipolar contacts to be effective.

Articles - 2cf8 mentioned but not cited (2)

  1. Rationalizing tight ligand binding through cooperative interaction networks. Kuhn B, Fuchs JE, Reutlinger M, Stahl M, Taylor NR. J Chem Inf Model 51 3180-3198 (2011)
  2. Significant enhancement of docking sensitivity using implicit ligand sampling. Xu M, Lill MA. J Chem Inf Model 51 693-706 (2011)


Reviews citing this publication (3)

  1. Fluorine in pharmaceuticals: looking beyond intuition. Müller K, Faeh C, Diederich F. Science 317 1881-1886 (2007)
  2. Predicting and tuning physicochemical properties in lead optimization: amine basicities. Morgenthaler M, Schweizer E, Hoffmann-Röder A, Benini F, Martin RE, Jaeschke G, Wagner B, Fischer H, Bendels S, Zimmerli D, Schneider J, Diederich F, Kansy M, Müller K. ChemMedChem 2 1100-1115 (2007)
  3. From conventional to unusual enzyme inhibitor scaffolds: the quest for target specificity. Meggers E. Angew Chem Int Ed Engl 50 2442-2448 (2011)

Articles citing this publication (5)

  1. Mapping the fluorophilicity of a hydrophobic pocket: synthesis and biological evaluation of tricyclic thrombin inhibitors directing fluorinated alkyl groups into the p pocket. Hoffmann-Röder A, Schweizer E, Egger J, Seiler P, Obst-Sander U, Wagner B, Kansy M, Banner DW, Diederich F. ChemMedChem 1 1205-1215 (2006)
  2. Synthesis and Biological Activity of Benzamides Substituted with Pyridine-Linked 1,2,4-Oxadiazole. Yang S, Tian XY, Ma TY, Dai L, Ren CL, Mei JC, Liu XH, Tan CX. Molecules 25 E3500 (2020)
  3. Antithrombotic properties of JJ1, a potent and novel thrombin inhibitor. Lee W, Lee S, Choi J, Park JH, Kim KM, Jee JG, Bae JS. Sci Rep 7 14862 (2017)
  4. Screening of benzamidine-based thrombin inhibitors via a linear interaction energy in continuum electrostatics model. Nicolotti O, Giangreco I, Miscioscia TF, Convertino M, Leonetti F, Pisani L, Carotti A. J Comput Aided Mol Des 24 117-129 (2010)
  5. 11H-Benzo[4,5]imidazo[1,2-a]indol-11-one as a New Precursor of Azomethine Ylides: 1,3-Dipolar Cycloaddition Reactions with Cyclopropenes and Maleimides. Filatov AS, Pronina YA, Selivanov SI, Shmakov SV, Uspenski AA, Boitsov VM, Stepakov AV. Int J Mol Sci 23 13202 (2022)