Toho-1 β-内酰胺酶:与阿维巴坦结合后的主干化学位移分配和动力学变化

IF 1.3 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Biomolecular NMR Pub Date : 2021-07-04 DOI:10.1007/s10858-021-00375-9
Varun V. Sakhrani, Rittik K. Ghosh, Eduardo Hilario, Kevin L. Weiss, Leighton Coates, Leonard J. Mueller
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引用次数: 1

摘要

在2H,13C, 15n标记的样品上进行了三共振溶液态核磁共振实验,报道了Toho-1 β-内酰胺酶(263个氨基酸,28.9 kDa)的主链化学位移定位。这些作业允许在化学、结构和动力学水平上进行后续的特定位点表征。在化学水平上,发现用非β-内酰胺β-内酰胺酶抑制剂阿维巴坦滴定会产生化学位移扰动,表明紧密的共价结合,从而可以绘制抑制剂结合位点。在结构水平上,利用TALOS-N基于主链化学位移和蛋白质残基序列预测了蛋白质二级结构,发现与x射线晶体学的结构表征吻合较好。在动力学水平上,对16.4 T单场15N弛豫数据的无模型分析揭示了无配体酶和阿维巴坦结合酶的有序结构,其广义有序参数为~ 0.85。互补弛豫色散实验表明,在底物结合后,活性位点附近的运动在毫秒时间尺度上呈上升趋势。短时间尺度上的高刚性和长时间尺度上活性位点的灵活性的结合与实现高催化效率和广泛底物特异性的假设是一致的:诱导的活性位点动力学允许容纳各种大小的底物,并增加了催化的最佳构象将被采样的可能性。
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Toho-1 β-lactamase: backbone chemical shift assignments and changes in dynamics upon binding with avibactam

Backbone chemical shift assignments for the Toho-1 β-lactamase (263 amino acids, 28.9 kDa) are reported based on triple resonance solution-state NMR experiments performed on a uniformly 2H,13C,15N-labeled sample. These assignments allow for subsequent site-specific characterization at the chemical, structural, and dynamical levels. At the chemical level, titration with the non-β-lactam β-lactamase inhibitor avibactam is found to give chemical shift perturbations indicative of tight covalent binding that allow for mapping of the inhibitor binding site. At the structural level, protein secondary structure is predicted based on the backbone chemical shifts and protein residue sequence using TALOS-N and found to agree well with structural characterization from X-ray crystallography. At the dynamical level, model-free analysis of 15N relaxation data at a single field of 16.4 T reveals well-ordered structures for the ligand-free and avibactam-bound enzymes with generalized order parameters of ~ 0.85. Complementary relaxation dispersion experiments indicate that there is an escalation in motions on the millisecond timescale in the vicinity of the active site upon substrate binding. The combination of high rigidity on short timescales and active site flexibility on longer timescales is consistent with hypotheses for achieving both high catalytic efficiency and broad substrate specificity: the induced active site dynamics allows variously sized substrates to be accommodated and increases the probability that the optimal conformation for catalysis will be sampled.

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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.
期刊最新文献
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