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Alpha protons as NMR probes in deuterated proteins

机译:α质子作为氘代蛋白质中的NMR探针

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摘要

We describe a new labeling method that allows for full protonation at the backbone Hα position, maintaining protein side chains with a high level of deuteration. We refer to the method as alpha proton exchange by transamination (α-PET) since it relies on transaminase activity demonstrated here using Escherichia coli expression. We show that α-PET labeling is particularly useful in improving structural characterization of solid proteins by introduction of an additional proton reporter, while eliminating many strong dipolar couplings. The approach benefits from the high sensitivity associated with 1.3 mm samples, more abundant information including Hα resonances, and the narrow proton linewidths encountered for highly deuterated proteins. The labeling strategy solves amide proton exchange problems commonly encountered for membrane proteins when using perdeuteration and backexchange protocols, allowing access to alpha and all amide protons including those in exchange-protected regions. The incorporation of Hα protons provides new insights, as the close Hα–Hα and Hα–HN contacts present in β-sheets become accessible, improving the chance to determine the protein structure as compared with HN–HN contacts alone. Protonation of the Hα position higher than 90% is achieved for Ile, Leu, Phe, Tyr, Met, Val, Ala, Gln, Asn, Thr, Ser, Glu, Asp even though LAAO is only active at this degree for Ile, Leu, Phe, Tyr, Trp, Met. Additionally, the glycine methylene carbon is labeled preferentially with a single deuteron, allowing stereospecific assignment of glycine alpha protons. In solution, we show that the high deuteration level dramatically reduces R2 relaxation rates, which is beneficial for the study of large proteins and protein dynamics. We demonstrate the method using two model systems, as well as a 32 kDa membrane protein, hVDAC1, showing the applicability of the method to study membrane proteins.Electronic supplementary materialThe online version of this article (10.1007/s10858-019-00230-y) contains supplementary material, which is available to authorized users.
机译:我们描述了一种新的标记方法,该方法允许在主链Hα位置进行完全质子化,并保持具有高氘代水平的蛋白质侧链。我们将这种方法称为通过氨基转移进行质子交换(α-PET),因为它依赖于此处使用大肠杆菌表达的转氨酶活性。我们表明,α-PET标记在通过引入额外的质子报告分子来改善固体蛋白的结构表征方面特别有用,同时消除了许多强偶极耦合。该方法得益于与1.3毫米样品相关的高灵敏度,更丰富的信息(包括Hα共振)以及高度氘化蛋白质遇到的窄质子线宽。标记策略解决了在使用氘化和反向交换方案时膜蛋白通常遇到的酰胺质子交换问题,允许接触α和所有酰胺质子,包括那些在交换保护区的酰胺质子。 Hα质子的结合提供了新的见解,因为β折叠中存在紧密的Hα–Hα和Hα–H N 接触,与H N –H N 个联系人。即使LAAO仅对Ile,Leu处于这种程度的活性,对于Ile,Leu,Phe,Tyr,Met,Val,Ala,Gln,Asn,Thr,Ser,Glu,Asp也可实现Hα位置的质子化高于90% ,Phe,Tyr,Trp,Met。另外,甘氨酸亚甲基碳优先用单个氘核标记,从而实现甘氨酸α质子的立体定向分配。在溶液中,我们显示出较高的氘水平显着降低了R2弛豫率,这对研究大型蛋白质和蛋白质动力学很有帮助。我们使用两种模型系统以及32 kDa膜蛋白hVDAC1演示了该方法,表明了该方法对研究膜蛋白的适用性。电子补充材料本文的在线版本(10.1007 / s10858-019-00230-y)包含补充材料,授权用户可以使用。

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