Structural characterization of bacteriophage viruses by NMR

IF 7.3 2区 化学 Q2 CHEMISTRY, PHYSICAL
Amir Goldbourt
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引用次数: 16

Abstract

Magic-angle spinning (MAS) solid-state NMR has provided structural insights into various bacteriophage systems including filamentous, spherical, and tailed bacteriophage viruses. A variety of methodologies have been utilized including elementary two and three-dimensional assignment experiments, proton-detection techniques at fast spinning speeds, non-uniform sampling, structure determination protocols, conformational dynamics revealed by recoupling of anisotropic interactions, and enhancement by dynamic nuclear polarization. This review summarizes most of the studies performed during the last decade by MAS techniques and makes comparisons with prior knowledge obtained from static and solution NMR techniques. Chemical shifts for the capsids of the various systems are reported and analyzed, and DNA shifts are reported and discussed in the context of general high molecular-weight DNA molecules. Chemical shift and torsion angle prediction techniques are compared and applied to the various phage systems. The structures of the intact M13 filamentous bacteriophage and that of the Acinetobacter phage AP205 capsid, determined using MAS-based experimental data, are presented. Finally, filamentous phages, which are highly rigid systems, show interesting dynamics at the interface of the capsid and DNA, and their mutual electrostatic interactions are shown to be mediated by highly mobile positively charged residues. Novel results obtained from recoupling the chemical shift anisotropy of a single arginine in IKe phage, which is in contact with its DNA, further demonstrate this point. MAS NMR thus provides many new insights into phage structure, and on the other hand the richness, complexity and variety of bacteriophage systems provide opportunities for new NMR methodologies and technique developments.

Abstract Image

噬菌体病毒的核磁共振结构表征。
魔角旋转(MAS)固态核磁共振提供了各种噬菌体系统的结构见解,包括丝状、球形和尾状噬菌体病毒。各种各样的方法已经被使用,包括基本的二维和三维分配实验,快速旋转速度下的质子探测技术,非均匀采样,结构确定协议,各向异性相互作用重耦合揭示的构象动力学,以及动态核极化增强。这篇综述总结了过去十年中通过MAS技术进行的大多数研究,并与静态和溶液核磁共振技术获得的先验知识进行了比较。报告和分析了各种系统衣壳的化学位移,并在一般高分子量DNA分子的背景下报告和讨论了DNA位移。比较了化学位移和扭转角预测技术,并将其应用于各种噬菌体系统。本文介绍了完整的M13丝状噬菌体和不动杆菌噬菌体AP205衣壳的结构,这些结构是用基于mas的实验数据确定的。最后,丝状噬菌体是一种高度刚性的系统,在衣壳和DNA的界面上表现出有趣的动力学,它们之间的静电相互作用被证明是由高度可移动的带正电的残基介导的。通过对与其DNA接触的IKe噬菌体中单个精氨酸的化学位移各向异性进行耦合获得的新结果进一步证明了这一点。因此,MAS NMR为噬菌体结构提供了许多新的见解,另一方面,噬菌体系统的丰富性、复杂性和多样性为新的NMR方法和技术发展提供了机会。
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来源期刊
CiteScore
14.30
自引率
8.20%
发文量
12
审稿时长
62 days
期刊介绍: Progress in Nuclear Magnetic Resonance Spectroscopy publishes review papers describing research related to the theory and application of NMR spectroscopy. This technique is widely applied in chemistry, physics, biochemistry and materials science, and also in many areas of biology and medicine. The journal publishes review articles covering applications in all of these and in related subjects, as well as in-depth treatments of the fundamental theory of and instrumental developments in NMR spectroscopy.
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