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首页> 外文期刊>BMC Biochemistry >Three hydrophobic amino acids in Escherichia coli HscB make the greatest contribution to the stability of the HscB-IscU complex
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Three hydrophobic amino acids in Escherichia coli HscB make the greatest contribution to the stability of the HscB-IscU complex

机译:大肠杆菌HscB中的三个疏水氨基酸对HscB-IscU复合物的稳定性做出了最大贡献

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General iron-sulfur cluster biosynthesis proceeds through assembly of a transient cluster on IscU followed by its transfer to a recipient apo-protein. The efficiency of the second step is increased by the presence of HscA and HscB, but the reason behind this is poorly understood. To shed light on the function of HscB, we began a study on the nature of its interaction with IscU. Our work suggested that the binding site of IscU is in the C-terminal domain of HscB, and two different triple alanine substitutions ([L92A, M93A, F153A] and [E97A, E100A, E104A]) involving predicted binding site residues had detrimental effects on this interaction. However, the individual contribution of each substitution to the observed effect remains to be determined as well as the possible involvement of other residues in the proposed binding site. In the work reported here, we used isothermal titration calorimetry to characterize the affinity of single alanine HscB mutants for IscU, and subsequently confirmed our results with nuclear magnetic resonance spectroscopy. Alanine substitutions of L92, L96, and F153 severely impaired the ability of HscB to form a complex with IscU; substitutions of R87, R99, and E100 had more modest effects; and substitutions of T89, M93, E97, D103, E104, R152, K156, and S160 had only minor or no detectable effects. Our results show that the residues of HscB most important for strong interaction with IscU include three hydrophobic residues (L92, L96, and F153); in addition, we identified a number of other residues whose side chains contribute to a lesser extent to the interaction. Our results suggest that the triple alanine substitution at HscB positions 92, 96, and 153 will destabilize the HscB-IscU complex by ΔΔGb≅ 5.7 kcal/mol, equivalent to a ≅ 15000-fold reduction in the affinity of HscB for IscU. We propose that this triple mutant could provide a more definitive test of the functional importance of the HscB-IscU interaction in vivo than those used previously that yielded inconclusive results.
机译:一般的铁硫簇生物合成过程是通过在IscU上组装一个瞬态簇,然后将其转移到受体载脂蛋白上进行的。 HscA和HscB的存在可以提高第二步的效率,但是其背后的原因却鲜为人知。为了阐明HscB的功能,我们开始研究其与IscU相互作用的性质。我们的工作表明,IscU的结合位点在HscB的C端结构域中,涉及预测的结合位点残基的两个不同的三重丙氨酸取代([L92A,M93A,F153A]和[E97A,E100A,E104A])具有有害作用在这个互动上。然而,每个取代对观察到的作用的个体贡献以及所建议的结合位点中其他残基的可能参与尚待确定。在这里报道的工作中,我们使用等温滴定热法来表征单个丙氨酸HscB突变体对IscU的亲和力,随后通过核磁共振波谱证实了我们的结果。 L92,L96和F153的丙氨酸取代严重损害了HscB与IscU形成复合物的能力。 R87,R99和E100的替代效果更温和; T89,M93,E97,D103,E104,R152,K156和S160的取代只有很小的影响,没有可检测的影响。我们的结果表明,对于与IscU的强相互作用最重要的HscB残基包括三个疏水残基(L92,L96和F153)。此外,我们鉴定了许多其他残基,其侧链对相互作用的贡献程度较小。我们的结果表明,在HscB 92、96和153位的三重丙氨酸取代将使HscB-IscU复合物失去ΔΔGbΔ5.7 kcal / mol的稳定性,相当于HscB对IscU的亲和力降低了500015000倍。我们建议,此三重突变体可以提供比以前使用的产生不确定性结果的HscB-IscU相互作用在体内的功能重要性更确定的测试。

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