在adp结合状态下,Aquifex aeolicus的FtsH结构为c2对称六聚体。

Marina Vostrukhina, Alexander Popov, Elena Brunstein, Martin A Lanz, Renato Baumgartner, Christoph Bieniossek, Magdalena Schacherl, Ulrich Baumann
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引用次数: 19

摘要

在空间群I222中,以2.96 Å分辨率测定了来自Aquifex aeolicus的一个截断的可溶性四重突变体FtsH的晶体结构,该突变体包括AAA和蛋白酶结构域。蛋白质结晶为六聚体,蛋白酶结构域在ab平面上形成层。这些层之间的联系由AAA域调解。它们在一种晶体形式中高度无序,但在具有较短c轴的相关形式中清晰可见。在这里,二磷酸腺苷(ADP)与每个亚基结合,AAA环呈现双重对称。这种排列方式不同于类似截断的可溶FtsH结构体(来自Thermotoga marima)的adp结合状态。孔是完全封闭的,孔中的苯丙氨酸残基排列成一条连续的路径。蛋白酶六聚体与描述的其他FtsH结构非常相似。为了解决AAA和蛋白酶结构域之间的连接器中的保守甘氨酸以及活性位点开关β-链中的某些开放问题,已经在全长膜结合蛋白中引入了突变。这些点突变体的活性分析揭示了这些残基对蛋白水解活性的至关重要,与先前对活性位点开关和连接体甘氨酸残基的重要性的解释一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The structure of Aquifex aeolicus FtsH in the ADP-bound state reveals a C2-symmetric hexamer.

The crystal structure of a truncated, soluble quadruple mutant of FtsH from Aquifex aeolicus comprising the AAA and protease domains has been determined at 2.96 Å resolution in space group I222. The protein crystallizes as a hexamer, with the protease domain forming layers in the ab plane. Contacts between these layers are mediated by the AAA domains. These are highly disordered in one crystal form, but are clearly visible in a related form with a shorter c axis. Here, adenosine diphosphate (ADP) is bound to each subunit and the AAA ring exhibits twofold symmetry. The arrangement is different from the ADP-bound state of an analogously truncated, soluble FtsH construct from Thermotoga maritima. The pore is completely closed and the phenylalanine residues in the pore line a contiguous path. The protease hexamer is very similar to those described for other FtsH structures. To resolve certain open issues regarding a conserved glycine in the linker between the AAA and protease domains, as well as the active-site switch β-strand, mutations have been introduced in the full-length membrane-bound protein. Activity analysis of these point mutants reveals the crucial importance of these residues for proteolytic activity and is in accord with previous interpretation of the active-site switch and the importance of the linker glycine residue.

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