Solá R J, Rodríguez-Martínez J A, Griebenow K
Laboratory for Applied Biochemistry and Biotechnology, Department of Chemistry, University of Puerto Rico, Río Piedras Campus, Facundo Bueso Bldg., Lab-215, San Juan 23346, 00931-3346, Puerto Rico.
Cell Mol Life Sci. 2007 Aug;64(16):2133-52. doi: 10.1007/s00018-007-6551-y.
Glycosylation constitutes one of the most important posttranslational modifications employed by biological systems to modulate protein biophysical properties. Due to the direct biochemical and biomedical implications of achieving control over protein stability and function by chemical means, there has been great interest in recent years towards the development of chemical strategies for protein glycosylation. Since current knowledge about glycoprotein biophysics has been mainly derived from the study of naturally glycosylated proteins, chemical glycosylation provides novel insights into its mechanistic understanding by affording control over glycosylation parameters. This review presents a survey of the effects that natural and chemical glycosylation have on the fundamental biophysical properties of proteins (structure, dynamics, stability, and function). This is complemented by a mechanistic discussion of how glycans achieve such effects and discussion of the implications of employing chemical glycosylation as a tool to exert control over protein biophysical properties within biochemical and biomedical applications.
糖基化是生物系统用于调节蛋白质生物物理性质的最重要的翻译后修饰之一。由于通过化学手段实现对蛋白质稳定性和功能的控制具有直接的生化和生物医学意义,近年来人们对开发蛋白质糖基化的化学策略产生了浓厚兴趣。由于目前关于糖蛋白生物物理学的知识主要来自对天然糖基化蛋白质的研究,化学糖基化通过提供对糖基化参数的控制,为其机理理解提供了新的见解。本文综述了天然糖基化和化学糖基化对蛋白质基本生物物理性质(结构、动力学、稳定性和功能)的影响。此外,还对聚糖如何产生这些影响进行了机理讨论,并探讨了在生化和生物医学应用中使用化学糖基化作为控制蛋白质生物物理性质的工具的意义。