TY - JOUR
T1 - New insights into inhibitor design from the crystal structure and NMR studies of Escherichia coli GAR transformylase in complex with β-GAR and 10- formyl-5,8,10-trideazafolic acid
AU - Greasley, Samantha E.
AU - Yamashita, Mason M.
AU - Cai, Hui
AU - Benkovic, Stephen J.
AU - Boger, Dale L.
AU - Wilson, Ian A.
PY - 1999/12/21
Y1 - 1999/12/21
N2 - The crystal structure of Escherichia coli GAR Tfase at 2.1 A resolution in complex with 10-formyl-5,8,10-trideazafolic acid (10-formyl-TDAF, K(i) = 260 nM), an inhibitor designed to form an enzyme-assembled multisubstrate adduct with the substrate, β-GAR, was studied to determine the exact nature of its inhibitory properties. Rather than forming the expected covalent adduct, the folate inhibitor binds as the hydrated aldehyde (gem-diol) in the enzyme active site, in a manner that mimics the tetrahedral intermediate of the formyl transfer reaction. In this hydrated form, the inhibitor not only provides unexpected insights into the catalytic mechanism but also explains the 10-fold difference in inhibitor potency between 10-formyl-TDAF and the corresponding alcohol, and a further 10-fold difference for inhibitors that lack the alcohol. The presence of the hydrated aldehyde was confirmed in solution by 13C-1H NMR spectroscopy of the ternary GAR Tfase-β-GAR-10- formyl-TDAF complex using the 13C-labeled 10-formyl-TDAF. This insight into the behavior of the inhibitor, which is analogous to protease or transaminase inhibitors, provides a novel and previously unrecognized basis for the design of more potent inhibitors of the folate-dependent formyl transfer enzymes of the purine biosynthetic pathway and development of anti-neoplastic agents.
AB - The crystal structure of Escherichia coli GAR Tfase at 2.1 A resolution in complex with 10-formyl-5,8,10-trideazafolic acid (10-formyl-TDAF, K(i) = 260 nM), an inhibitor designed to form an enzyme-assembled multisubstrate adduct with the substrate, β-GAR, was studied to determine the exact nature of its inhibitory properties. Rather than forming the expected covalent adduct, the folate inhibitor binds as the hydrated aldehyde (gem-diol) in the enzyme active site, in a manner that mimics the tetrahedral intermediate of the formyl transfer reaction. In this hydrated form, the inhibitor not only provides unexpected insights into the catalytic mechanism but also explains the 10-fold difference in inhibitor potency between 10-formyl-TDAF and the corresponding alcohol, and a further 10-fold difference for inhibitors that lack the alcohol. The presence of the hydrated aldehyde was confirmed in solution by 13C-1H NMR spectroscopy of the ternary GAR Tfase-β-GAR-10- formyl-TDAF complex using the 13C-labeled 10-formyl-TDAF. This insight into the behavior of the inhibitor, which is analogous to protease or transaminase inhibitors, provides a novel and previously unrecognized basis for the design of more potent inhibitors of the folate-dependent formyl transfer enzymes of the purine biosynthetic pathway and development of anti-neoplastic agents.
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U2 - 10.1021/bi991888a
DO - 10.1021/bi991888a
M3 - Article
C2 - 10606510
AN - SCOPUS:0033592939
SN - 0006-2960
VL - 38
SP - 16783
EP - 16793
JO - Biochemistry
JF - Biochemistry
IS - 51
ER -