首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >Influence of the H-site residue 108 on human glutathione transferase P1-1 ligand binding: Structure-thermodynamic relationships and thermal stability
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Influence of the H-site residue 108 on human glutathione transferase P1-1 ligand binding: Structure-thermodynamic relationships and thermal stability

机译:H位残基108对人谷胱甘肽转移酶P1-1配体结合的影响:结构-热力学关系和热稳定性

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摘要

The effect of the Y108V mutation of human glutathione S-transferase P1-1 (hGST P1-1) on the binding of the diuretic drug ethacrynic acid (EA) and its glutathione conjugate (EASG) was investigated by calorimetric, spectrofluorimetric, and crystallographic studies. The mutation Tyr 108 → Val resulted in a 3D-structure very similar to the wild type (wt) enzyme, where both the hydrophobic ligand binding site (H-site) and glutathione binding site (G-site) are unchanged except for the mutation itself. However, due to a slight increase in the hydrophobicity of the H-site, as a consequence of the mutation, an increase in the entropy was observed. The Y108V mutation does not affect the affinity of EASG for the enzyme, which has a higher affinity (Kd ∼ 0.5 μM) when compared with those of the parent compounds, , . The EA moiety of the conjugate binds in the H-site of Y108V mutant in a fashion completely different to those observed in the crystal structures of the EA or EASG wt complex structures. We further demonstrate that the ΔCp values of binding can also be correlated with the potential stacking interactions between ligand and residues located in the binding sites as predicted from crystal structures. Moreover, the mutation does not significantly affect the global stability of the enzyme. Our results demonstrate that calorimetric measurements maybe useful in determining the preference of binding (the binding mode) for a drug to a specific site of the enzyme, even in the absence of structural information.
机译:通过量热,荧光光谱和晶体学研究研究了人谷胱甘肽S-转移酶P1-1(hGST P1-1)的Y108V突变对利尿药乙炔酸(EA)及其谷胱甘肽共轭物(EASG)结合的影响。 。 Tyr 108→Val突变产生的3D结构与野生型(wt)酶非常相似,其中疏水配体结合位点(H-位点)和谷胱甘肽结合位点(G-位点)除了突变外均未改变本身。但是,由于突变,由于H位的疏水性略有增加,因此观察到了熵的增加。 Y108V突变不影响EASG对酶的亲和力,与亲本化合物相比具有更高的亲和力(Kd〜0.5μM)。缀合物的EA部分以与在EA或EASG wt复合结构的晶体结构中观察到的方式完全不同的方式,在Y108V突变体的H位点结合。我们进一步证明,结合的ΔCp值还可以与根据晶体结构预测的配体和位于结合位点的残基之间的潜在堆积相互作用相关。而且,该突变不会显着影响酶的整体稳定性。我们的结果表明,即使在没有结构信息的情况下,量热测量也可能有助于确定药物与酶特定位点的结合偏好(结合模式)。

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