Daum Sebastian, Fanghänel Jörg, Wildemann Dirk, Schiene-Fischer Cordelia
Max Planck Research Unit for Enzymology of Protein Folding, Weinbergweg 22, 06120 Halle/Saale, Germany.
Biochemistry. 2006 Oct 3;45(39):12125-35. doi: 10.1021/bi0608820.
Proteins containing phosphorylated Ser/Thr-Pro motifs play key roles in numerous regulatory processes in the cell. The peptidyl prolyl cis/trans isomerase Pin1 specifically catalyzes the conformational transition of phosphorylated Ser/Thr-Pro motifs. Here we report the direct analysis of the thermodynamic properties of the interaction of the PPIase Pin1 with its substrate-analogue inhibitor Ac-Phe-D-Thr(PO3H2)-Pip-Nal-Gln-NH2 specifically targeted to the PPIase active site based on the combination of isothermal titration calorimetry and studies on inhibition of enzymatic activity of wt Pin1 and active site variants. Determination of the thermodynamic parameters revealed an enthalpically and entropically favored interaction characterized by binding enthalpy deltaH(ITC) of -6.3 +/- 0.1 kcal mol(-1) and a TdeltaS(ITC) of 4.1 +/- 0.1 kcal mol(-1). The resulting dissociation constant KD for binding of the peptidic inhibitor with 1.8 x 10(-8) M resembles the dissociation constant of a Pin1 substrate in the transition state, suggesting a transition state analogue conformation of the bound inhibitor. The strongly decreased affinity of Pin1 for ligand at increasing ionic strength implicates that the potential of bidentate binding of a substrate protein by the PPIase and the WW domain of Pin1 may be required to deploy improved efficiency and specificity of Pin1 under conditions of physiological ionic strength.
含有磷酸化丝氨酸/苏氨酸 - 脯氨酸基序的蛋白质在细胞的众多调节过程中发挥关键作用。肽基脯氨酰顺反异构酶Pin1特异性催化磷酸化丝氨酸/苏氨酸 - 脯氨酸基序的构象转变。在此,我们基于等温滴定量热法以及对野生型Pin1和活性位点变体酶活性抑制的研究,直接分析了肽基脯氨酰异构酶Pin1与其特异性靶向PPIase活性位点的底物类似物抑制剂Ac - Phe - D - Thr(PO3H2)-Pip - Nal - Gln - NH2相互作用的热力学性质。热力学参数的测定揭示了一种在焓和熵方面都有利的相互作用,其结合焓ΔH(ITC)为 - 6.3±0.1 kcal mol(-1),TΔS(ITC)为4.1±0.1 kcal mol(-1)。由此得到的肽类抑制剂结合的解离常数KD为1.8×10(-8) M,类似于Pin1底物在过渡态的解离常数,表明结合的抑制剂具有过渡态类似物构象。在离子强度增加时,Pin1对配体的亲和力大幅降低,这意味着在生理离子强度条件下,PPIase和Pin1的WW结构域对底物蛋白进行双齿结合的潜力可能是提高Pin1效率和特异性所必需的。