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首页> 外文期刊>Biochemistry >Molecular Recognition at the Dimer Interface of a Class Mu Glutathione Transferase: Role of a Hydrophobic Interaction Motif in Dimer Stability and Protein Function
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Molecular Recognition at the Dimer Interface of a Class Mu Glutathione Transferase: Role of a Hydrophobic Interaction Motif in Dimer Stability and Protein Function

机译:分子谷胱甘肽转移酶的二聚体界面上的分子识别:疏水相互作用母题在二聚体稳定性和蛋白质功能中的作用。

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Cytosolic glutathione (GSH) transferases (GSTs) exist as stable homo- and heterodimers. Interactions at the subunit interface serve an important role in stabilizing the subunit tertiary structures of all GSH transferases. In addition, the dimer is required to maintain functional conformations at the active site on each subunit and the nonsubstrate ligand binding site at the dimer interface [Dirr, H. W. (2001) Chem.-Biol. Interact. 133, 19-23]. In this study, we report on the contribution of a specific intersubunit hydrophobic motif in rGSTM1-1 to dimer stability and protein function. The motif consists of the side chain of F56 from one subunit intercalated between helices 4 and 5 of the second subunit. Replacement of F56 with the hydrophilic side chains of serine, arginine, and glutamate results in a change in the structure of the active site, a marked diminution in catalytic efficiency, and alterations in the ability to bind nonsubstrate ligands. The mutations also affect the ability of the enzyme to bind GSH and the substrate analogue glutathione sulfonate. The functionality of rGSTM1-1 was disrupted to the greatest extent for the F56E mutant. Though mutatins at this position do not alter the three-state equilibium folding process for rGSTM1-1 (i.e., N_2<->2U), destabilizing mutations at position 56 shift the equilibrium between the folded dimer (N_2) and the monomeric intermediate (I) toward the latter conformational state. The transition to the unfolded state (U) is not significantly affected. The folded monomeric intermediate is also observed by electrospray ionization mass spectrometry. The amount of the intermediate is dependent on protein concentration and the residue at position 56. Mutations at position 56 have little impact on the secondary structure and stability of the monomeric folding intermediate. The dimerization process is proposed to induce a conformational change in the loop containing F56, resulting in improved stability.
机译:胞质谷胱甘肽(GSH)转移酶(GST)以稳定的同二聚体和异二聚体形式存在。亚基界面上的相互作用在稳定所有GSH转移酶的亚基三级结构中起着重要作用。另外,要求二聚体在每个亚基的活性位点和在二聚体界面的非底物配体结合位点处保持功能构象[Dirr,H.W。(2001)Chem.-Biol.Chem.Soc.Sci。,Vol.5,pp.5-6。相互作用。 133,19-23]。在这项研究中,我们报告了rGSTM1-1中特定亚基间疏水基序对二聚体稳定性和蛋白质功能的贡献。该基序由插入在第二个亚基的螺旋4和5之间的一个亚基的F56侧链组成。用丝氨酸,精氨酸和谷氨酸的亲水性侧链取代F56会导致活性位点结构的改变,催化效率的显着降低以及与非底物配体结合的能力的改变。突变也影响酶结合GSH和底物类似物谷胱甘肽磺酸盐的能力。对于F56E突变体,rGSTM1-1的功能受到了最大程度的破坏。尽管此位置的突变体不会改变rGSTM1-1的三态平衡折叠过程(即N_2 2U),但位置56处的不稳定突变改变了折叠的二聚体(N_2)和单体中间体(I )朝向后一种构象状态。到展开状态(U)的过渡不会受到明显影响。还通过电喷雾电离质谱法观察到了折叠的单体中间体。中间体的量取决于蛋白质浓度和56位残基。56位的突变对单体折叠中间体的二级结构和稳定性几乎没有影响。提出了二聚化过程以在含有F56的环中引起构象变化,从而提高了稳定性。

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