Abstract
The glutathione transferases (GSTs) represent a superfamily of dimeric proteins. Each subunit has an active site, but there is no evidence for the existence of catalytically active monomers. The lock and key motif is responsible for a highly conserved hydrophobic interaction in the subunit interface of pi, mu, and alpha class glutathione transferases. The key residue, which is either Phe or Tyr (Tyr50 in human GSTP1-1) in one subunit, is wedged into a hydrophobic pocket of the other subunit. To study how an essentially inactive subunit influence the activity of the neighboring subunit, we have generated the heterodimer composed of subunits from the fully active human wild-type GSTP1-1 and the nearly inactive mutant Y50A obtained by mutation of the key residue Tyr50 to Ala. Although the key residue is located far from the catalytic center, the kcat value of mutant Y50A decreased about 1300-fold in comparison with the wild-type enzyme. The decrease of the kcat value of the heterodimer by about 27-fold rather than the expected 2-fold in comparison with the wild-type enzyme indicates that the two active sites of the dimeric enzyme work synergistically. Further evidence for cooperativity was found in the nonhyperbolic GSH saturation curves. A network of hydrogen-bonded water molecules, found in crystal structures of GSTP1-1, connects the two active sites and the main chain carbonyl group of Tyr50, thereby offering a mechanism for communication between the two active sites. It is concluded that a subunit becomes catalytically competent by positioning the key residue of one subunit into the lock pocket of the other subunit, thereby stabilizing the loop following the helix α2, which interacts directly with GSH.
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CITATION STYLE
Hegazy, U. M., Mannervik, B., & Stenberg, G. (2004). Functional Role of the Lock and Key Motif at the Subunit Interface of Glutathione Transferase P1-1. Journal of Biological Chemistry, 279(10), 9586–9596. https://doi.org/10.1074/jbc.M312320200
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