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小角 X 射线散射分析双功能抗生素耐药酶氨基糖苷(6')乙酰基转移酶-ie/氨基糖苷(2')磷酸转移酶-ia 揭示了其刚性的溶液结构。

Small-angle X-ray scattering analysis of the bifunctional antibiotic resistance enzyme aminoglycoside (6') acetyltransferase-ie/aminoglycoside (2'') phosphotransferase-ia reveals a rigid solution structure.

机构信息

Department of Biochemistry, Groupe de Recherche Axé sur la Structure des Protéines, McGill University, Montreal, Quebec, Canada.

出版信息

Antimicrob Agents Chemother. 2012 Apr;56(4):1899-906. doi: 10.1128/AAC.06378-11. Epub 2012 Jan 30.

Abstract

Aminoglycoside (6') acetyltransferase-Ie/aminoglycoside (2″) phosphotransferase-Ia [AAC(6')-Ie/APH(2″)-Ia] is one of the most problematic aminoglycoside resistance factors in clinical pathogens, conferring resistance to almost every aminoglycoside antibiotic available to modern medicine. Despite 3 decades of research, our understanding of the structure of this bifunctional enzyme remains limited. We used small-angle X-ray scattering (SAXS) to model the structure of this bifunctional enzyme in solution and to study the impact of substrate binding on the enzyme. It was observed that the enzyme adopts a rigid conformation in solution, where the N-terminal AAC domain is fixed to the C-terminal APH domain and not loosely tethered. The addition of acetyl-coenzyme A, coenzyme A, GDP, guanosine 5'-[β,γ-imido]triphosphate (GMPPNP), and combinations thereof to the protein resulted in only modest changes to the radius of gyration (R(G)) of the enzyme, which were not consistent with any large changes in enzyme structure upon binding. These results imply some selective advantage to the bifunctional enzyme beyond coexpression as a single polypeptide, likely linked to an improvement in enzymatic properties. We propose that the rigid structure contributes to improved electrostatic steering of aminoglycoside substrates toward the two active sites, which may provide such an advantage.

摘要

氨基糖苷(6')乙酰转移酶-Ie/氨基糖苷(2")磷酸转移酶-Ia [AAC(6')-Ie/APH(2")-Ia] 是临床病原体中最具问题的氨基糖苷类抗生素耐药因素之一,使其对几乎所有现有的氨基糖苷类抗生素都具有耐药性。尽管已经进行了 30 年的研究,但我们对这种双功能酶的结构的了解仍然有限。我们使用小角度 X 射线散射(SAXS)来模拟该双功能酶在溶液中的结构,并研究了底物结合对酶的影响。结果表明,该酶在溶液中采用刚性构象,其中 N 端 AAC 结构域固定在 C 端 APH 结构域上,而不是松散地连接。向蛋白中添加乙酰辅酶 A、辅酶 A、GDP、鸟苷 5'-[β,γ-亚胺]三磷酸(GMPPNP)及其组合,仅导致酶的回转半径(R(G))发生适度变化,这与结合后酶结构的任何大变化不一致。这些结果表明,双功能酶除了作为单个多肽共表达之外,还有一些选择性优势,可能与酶性质的改善有关。我们提出,刚性结构有助于提高氨基糖苷类底物向两个活性位点的静电导向,这可能提供了这样的优势。

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