Structural Analysis of
the Binding of Type I, I<sub>1/2</sub>, and II Inhibitors to Eph Tyrosine
Kinases
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Abstract
We
have solved the crystal structures of the EphA3 tyrosine kinase
in complex with nine small-molecule inhibitors, which represent five
different chemotypes and three main binding modes, i.e., types I and
I<sub>1/2</sub> (DFG in) and type II (DFG out). The three structures
with type I<sub>1/2</sub> inhibitors show that the higher affinity
with respect to type I is due to an additional polar group (hydroxyl
or pyrazole ring of indazole) which is fully buried and is involved
in the same hydrogen bonds as the (urea or amide) linker of the type
II inhibitors. Overall, the type I and type II binding modes belong
to the lock-and-key and induced fit mechanism, respectively. In the
type II binding, the scaffold in contact with the hinge region influences
the position of the Phe765 side chain of the DFG motif and the orientation
of the Gly-rich loop. The binding mode of Birb796 in the EphA3 kinase
does not involve any hydrogen bond with the hinge region, which is
different from the Birb796/p38 MAP kinase complex. Our structural
analysis emphasizes the importance of accounting for structural plasticity
of the ATP binding site in the design of type II inhibitors of tyrosine
kinases