Nielsen Jens Erik
School of Biomolecular and Biomedical Science, Centre Synthesis and Chemical Biology, UCD Conway Institute, University College Dublin, Belfield, Dublin, Ireland.
Methods Enzymol. 2009;454:233-58. doi: 10.1016/S0076-6879(08)03809-3.
The pH dependence of protein biophysical characteristics is often analyzed to gain an improved understanding of protein stability, enzyme activity, and protein-ligand-binding processes. Indeed, much of our understanding of the catalytic mechanisms of enzymes derives from studies of the pH dependence of catalytic activity, and the ability to redesign the pH-dependent properties of enzymes continues to be of high relevance for both industrial and medical applications of proteins. This chapter discusses current theoretical methods for calculating protein pK(a) values and illustrates how one can analyze protein pK(a) calculation results to study calculation accuracy, pH stability profiles, and enzymatic pH activity profiles. A description of how one can analyze the importance of individual titratable groups is presented along with details on methods for redesigning protein pK(a) values and enzymatic pH activity profiles. Finally, I discuss novel methods for fitting experimental nuclear magnetic resonance titration curves and enzymatic pH activity profiles that can be used to derive information on electrostatic interaction energies in proteins.
通常会分析蛋白质生物物理特性对pH的依赖性,以更好地理解蛋白质稳定性、酶活性和蛋白质-配体结合过程。实际上,我们对酶催化机制的许多理解都源于对催化活性pH依赖性的研究,而重新设计酶的pH依赖性特性的能力对于蛋白质的工业和医学应用仍然具有高度相关性。本章讨论了计算蛋白质pK(a)值的当前理论方法,并说明了如何分析蛋白质pK(a)计算结果以研究计算准确性、pH稳定性概况和酶促pH活性概况。介绍了如何分析单个可滴定基团的重要性,并详细说明了重新设计蛋白质pK(a)值和酶促pH活性概况的方法。最后,我讨论了拟合实验核磁共振滴定曲线和酶促pH活性概况的新方法,这些方法可用于获取蛋白质中静电相互作用能的信息。