Russo Krauss Irene, Merlino Antonello, Vergara Alessandro, Sica Filomena
Department of Chemical Sciences, University of Naples Federico II, Complesso Universitario di Monte Sant'Angelo, Via Cintia, Napoli I-80126, Italy.
Int J Mol Sci. 2013 May 31;14(6):11643-91. doi: 10.3390/ijms140611643.
The elucidation of the three dimensional structure of biological macromolecules has provided an important contribution to our current understanding of many basic mechanisms involved in life processes. This enormous impact largely results from the ability of X-ray crystallography to provide accurate structural details at atomic resolution that are a prerequisite for a deeper insight on the way in which bio-macromolecules interact with each other to build up supramolecular nano-machines capable of performing specialized biological functions. With the advent of high-energy synchrotron sources and the development of sophisticated software to solve X-ray and neutron crystal structures of large molecules, the crystallization step has become even more the bottleneck of a successful structure determination. This review introduces the general aspects of protein crystallization, summarizes conventional and innovative crystallization methods and focuses on the new strategies utilized to improve the success rate of experiments and increase crystal diffraction quality.
生物大分子三维结构的阐明为我们当前对生命过程中许多基本机制的理解做出了重要贡献。这种巨大的影响很大程度上源于X射线晶体学能够在原子分辨率下提供精确的结构细节,而这是更深入了解生物大分子如何相互作用以构建能够执行特定生物学功能的超分子纳米机器的先决条件。随着高能同步辐射源的出现以及用于解析大分子X射线和中子晶体结构的复杂软件的开发,结晶步骤甚至更成为成功确定结构的瓶颈。本综述介绍了蛋白质结晶的一般方面,总结了传统和创新的结晶方法,并重点关注用于提高实验成功率和提高晶体衍射质量的新策略。