TY - JOUR
T1 - The binding mode of side chain- and C3-modified epothilones to tubulin
AU - Erdélyi, Máté
AU - Navarro-Vázquez, Armando
AU - Pfeiffer, Bernhard
AU - Kuzniewski, Christian N
AU - Felser, Andrea
AU - Widmer, Toni
AU - Gertsch, Jürg
AU - Pera, Benet
AU - Díaz, José Fernando
AU - Altmann, Karl-Heinz
AU - Carlomagno, Teresa
PY - 2010/6/7
Y1 - 2010/6/7
N2 - The tubulin-binding mode of C3- and C15-modified analogues of epothilone A (Epo A) was determined by NMR spectroscopy and computational methods and compared with the existing structural models of tubulin-bound natural Epo A. Only minor differences were observed in the conformation of the macrocycle between Epo A and the C3-modified analogues investigated. In particular, 3-deoxy- (compound 2) and 3-deoxy-2,3-didehydro-Epo A (3) were found to adopt similar conformations in the tubulin-binding cleft as Epo A, thus indicating that the 3-OH group is not essential for epothilones to assume their bioactive conformation. None of the available models of the tubulin-epothilone complex is able to fully recapitulate the differences in tubulin-polymerizing activity and microtubule-binding affinity between C20-modified epothilones 6 (C20-propyl), 7 (C20-butyl), and 8 (C20-hydroxypropyl). Based on the results of transferred NOE experiments in the presence of tubulin, the isomeric C15 quinoline-based Epo B analogues 4 and 5 show very similar orientations of the side chain, irrespective of the position of the nitrogen atom in the quinoline ring. The quinoline side chain stacks on the imidazole moiety of beta-His227 with equal efficiency in both cases, thus suggesting that the aromatic side chain moiety in epothilones contributes to tubulin binding through strong van der Waals interactions with the protein rather than hydrogen bonding involving the heteroaromatic nitrogen atom. These conclusions are in line with existing tubulin polymerization and microtubule-binding data for 4, 5, and Epo B.
AB - The tubulin-binding mode of C3- and C15-modified analogues of epothilone A (Epo A) was determined by NMR spectroscopy and computational methods and compared with the existing structural models of tubulin-bound natural Epo A. Only minor differences were observed in the conformation of the macrocycle between Epo A and the C3-modified analogues investigated. In particular, 3-deoxy- (compound 2) and 3-deoxy-2,3-didehydro-Epo A (3) were found to adopt similar conformations in the tubulin-binding cleft as Epo A, thus indicating that the 3-OH group is not essential for epothilones to assume their bioactive conformation. None of the available models of the tubulin-epothilone complex is able to fully recapitulate the differences in tubulin-polymerizing activity and microtubule-binding affinity between C20-modified epothilones 6 (C20-propyl), 7 (C20-butyl), and 8 (C20-hydroxypropyl). Based on the results of transferred NOE experiments in the presence of tubulin, the isomeric C15 quinoline-based Epo B analogues 4 and 5 show very similar orientations of the side chain, irrespective of the position of the nitrogen atom in the quinoline ring. The quinoline side chain stacks on the imidazole moiety of beta-His227 with equal efficiency in both cases, thus suggesting that the aromatic side chain moiety in epothilones contributes to tubulin binding through strong van der Waals interactions with the protein rather than hydrogen bonding involving the heteroaromatic nitrogen atom. These conclusions are in line with existing tubulin polymerization and microtubule-binding data for 4, 5, and Epo B.
KW - Animals
KW - Binding Sites
KW - Cattle
KW - Cell Line, Tumor
KW - Computer Simulation
KW - Epothilones/chemistry
KW - Humans
KW - Magnetic Resonance Spectroscopy
KW - Protein Structure, Tertiary
KW - Structure-Activity Relationship
KW - Tubulin/chemistry
KW - Tubulin Modulators/chemistry
UR - https://www.scopus.com/pages/publications/77953085908
U2 - 10.1002/cmdc.201000050
DO - 10.1002/cmdc.201000050
M3 - Article
C2 - 20432490
SN - 1860-7179
VL - 5
SP - 911
EP - 920
JO - ChemMedChem
JF - ChemMedChem
IS - 6
ER -