Molecular Profiling Research Center for Drug Discovery (Molprof), National Institute of Advanced Industrial Science and Technology (AIST), Tokyo 135-0064, Japan.
Department of Biochemistry, University of Wisconsin-Madison, 433 Babcock Dr, Madison, WI 53706, United States.
J Magn Reson. 2019 Sep;306:195-201. doi: 10.1016/j.jmr.2019.07.045. Epub 2019 Jul 13.
It has been almost 40 years since solution NMR joined X-ray crystallography as a technique for determining high-resolution structures of proteins. Since then NMR derived structure has contributed in fundamental ways to our understanding of the function of biomolecules. With the already existing mature field of X-ray crystallography and the emergence of cryo-EM as techniques to tackle high-resolution structures of large protein complexes, the role of NMR in structure determination has been questioned. However, NMR has the unique ability to recapitulate the dynamic motion of proteins in their structures, while size limitations of the biomolecular systems that can be routinely studied still present challenges. The field has continually developed methodology and instrumentation since its introduction, pushing its frontiers and redefining its limits. Here we present a brief overview of NMR-based structure determination over the past 40 years. We outline the current state of the field and look ahead to the challenges that still need to be addressed to realize the future potential of NMR as a structural technique.
自溶液核磁共振(NMR)成为确定蛋白质高分辨率结构的技术之一以来,已经将近 40 年了。从那时起,NMR 衍生的结构为我们理解生物分子的功能做出了重要贡献。随着已经成熟的 X 射线晶体学领域和冷冻电镜(cryo-EM)技术的出现,这些技术可用于解决大型蛋白质复合物的高分辨率结构问题,NMR 在结构测定中的作用受到了质疑。然而,NMR 具有在结构中再现蛋白质动态运动的独特能力,而可常规研究的生物分子系统的大小限制仍然存在挑战。自引入以来,该领域一直在不断开发方法和仪器,推动其前沿领域并重新定义其限制。在这里,我们简要回顾了过去 40 年来基于 NMR 的结构测定。我们概述了该领域的现状,并展望了仍需要解决的挑战,以实现 NMR 作为结构技术的未来潜力。