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与金黄色葡萄球菌血红蛋白结合结构域复合的α-血红蛋白结构揭示了难以捉摸的α-血红蛋白二聚化界面。

The structure of α-haemoglobin in complex with a haemoglobin-binding domain from Staphylococcus aureus reveals the elusive α-haemoglobin dimerization interface.

作者信息

Kumar Kaavya Krishna, Jacques David A, Guss J Mitchell, Gell David A

机构信息

School of Molecular Bioscience, University of Sydney, Sydney, NSW 2006, Australia.

Menzies Research Institute, University of Tasmania, Hobart, TAS 7000, Australia.

出版信息

Acta Crystallogr F Struct Biol Commun. 2014 Aug;70(Pt 8):1032-7. doi: 10.1107/S2053230X14012175. Epub 2014 Jul 23.

Abstract

Adult haemoglobin (Hb) is made up of two α and two β subunits. Mutations that reduce expression of the α- or β-globin genes lead to the conditions α- or β-thalassaemia, respectively. Whilst both conditions are characterized by anaemia of variable severity, other details of their pathophysiology are different, in part owing to the greater stability of the β chains that is conferred through β self-association. In contrast, α subunits interact weakly, and in the absence of stabilizing quaternary interactions the α chain (α) is prone to haem loss and denaturation. The molecular contacts that confer weak self-association of α have not been determined previously. Here, the first structure of an α2 homodimer is reported in complex with one domain of the Hb receptor from Staphylococcus aureus. The α2 dimer interface has a highly unusual, approximately linear, arrangement of four His side chains within hydrogen-bonding distance of each other. Some interactions present in the α1β1 dimer interface of native Hb are preserved in the α2 dimer. However, a marked asymmetry is observed in the α2 interface, suggesting that steric factors limit the number of stabilizing interactions that can form simultaneously across the interface.

摘要

成人血红蛋白(Hb)由两条α亚基和两条β亚基组成。降低α-或β-珠蛋白基因表达的突变分别导致α-或β-地中海贫血。虽然这两种疾病都以严重程度各异的贫血为特征,但它们病理生理学的其他细节有所不同,部分原因是β链通过β自缔合具有更高的稳定性。相比之下,α亚基之间的相互作用较弱,在缺乏稳定的四级相互作用时,α链(α)容易发生血红素丢失和变性。此前尚未确定赋予α弱自缔合的分子接触。在此,报道了α2同二聚体与金黄色葡萄球菌血红蛋白受体的一个结构域形成复合物的首个结构。α2二聚体界面具有高度不寻常的、近似线性的排列,四个组氨酸侧链彼此处于氢键距离内。天然血红蛋白α1β1二聚体界面中存在的一些相互作用在α2二聚体中得以保留。然而,在α2界面中观察到明显的不对称性,这表明空间因素限制了能同时在整个界面形成的稳定相互作用的数量

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