Three segment ligation of a 104 kDa multi-domain protein by SrtA and OaAEP1

IF 1.3 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Biomolecular NMR Pub Date : 2022-12-21 DOI:10.1007/s10858-022-00409-w
Stephan B. Azatian, Marella D. Canny, Michael P. Latham
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Abstract

NMR spectroscopy is an excellent tool for studying protein structure and dynamics which provides a deeper understanding of biological function. As the size of the biomolecule of interest increases, it can become advantageous to dilute the number of observed signals in the NMR spectrum to decrease spectral overlap and increase resolution. One way to limit the number of resonances in the NMR data is by selectively labeling a smaller domain within the larger macromolecule, a process called segmental isotopic labeling. Many examples of segmental isotopic labeling have been described where two segments of a protein are ligated together by chemical or enzymatic means, but there are far fewer descriptions of a three or more segment ligation reaction. Herein, we describe an enzymatic segmental labeling scheme that combines the widely used Sortase A and more recently described OaAEP1 for a two site ligation strategy. In preparation to study proposed long-range allostery in the 104 kDa DNA damage repair protein Rad50, we ligated side-chain methyl group labeled Zn Hook domain between two long segments of otherwise unlabeled P.furiosus Rad50. Enzymatic activity data demonstrated that the scars resulting from the ligation reactions did not affect Rad50 function within the Mre11-Rad50 DNA double strand break repair complex. Finally, methyl-based NMR spectroscopy confirmed the formation of the full-length ligated protein. Our strategy highlights the strengths of OaAEP1 for segmental labeling, namely faster reaction times and a smaller recognition sequence, and provides a straightforward template for using these two enzymes in multisite segmental labeling reactions.

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一个104 kDa多结构域蛋白的三段连接的SrtA和OaAEP1
核磁共振波谱是研究蛋白质结构和动力学的一个很好的工具,它提供了对生物功能的更深入的了解。随着感兴趣的生物分子的大小增加,稀释核磁共振光谱中观测信号的数量以减少光谱重叠和提高分辨率是有利的。限制核磁共振数据中共振数量的一种方法是在较大的大分子中选择性地标记较小的区域,这一过程称为片段同位素标记。已经描述了许多片段同位素标记的例子,其中通过化学或酶的方法将蛋白质的两个片段连接在一起,但对三个或更多片段连接反应的描述要少得多。在这里,我们描述了一种酶片段标记方案,该方案结合了广泛使用的Sortase A和最近描述的OaAEP1,用于两个位点的连接策略。为了研究104 kDa DNA损伤修复蛋白Rad50的远程变结构,我们在P.furiosus Rad50的两个长片段之间连接了侧链甲基标记的Zn Hook结构域。酶活性数据表明,连接反应产生的疤痕不影响Mre11-Rad50 DNA双链断裂修复复合体内Rad50的功能。最后,基于甲基的核磁共振光谱证实了全长连接蛋白的形成。我们的策略突出了OaAEP1在片段标记方面的优势,即更快的反应时间和更小的识别序列,并为在多位点片段标记反应中使用这两种酶提供了一个简单的模板。
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来源期刊
Journal of Biomolecular NMR
Journal of Biomolecular NMR 生物-光谱学
CiteScore
6.00
自引率
3.70%
发文量
19
审稿时长
6-12 weeks
期刊介绍: The Journal of Biomolecular NMR provides a forum for publishing research on technical developments and innovative applications of nuclear magnetic resonance spectroscopy for the study of structure and dynamic properties of biopolymers in solution, liquid crystals, solids and mixed environments, e.g., attached to membranes. This may include: Three-dimensional structure determination of biological macromolecules (polypeptides/proteins, DNA, RNA, oligosaccharides) by NMR. New NMR techniques for studies of biological macromolecules. Novel approaches to computer-aided automated analysis of multidimensional NMR spectra. Computational methods for the structural interpretation of NMR data, including structure refinement. Comparisons of structures determined by NMR with those obtained by other methods, e.g. by diffraction techniques with protein single crystals. New techniques of sample preparation for NMR experiments (biosynthetic and chemical methods for isotope labeling, preparation of nutrients for biosynthetic isotope labeling, etc.). An NMR characterization of the products must be included.
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