An optimized method for 15N R1 relaxation rate measurements in non-deuterated proteins

被引:0
作者
Margarida Gairí
Andrey Dyachenko
M. Teresa González
Miguel Feliz
Miquel Pons
Ernest Giralt
机构
[1] University of Barcelona (CCiTUB),NMR Facility, Scientific and Technological Centers
[2] Institute for Research in Biomedicine (IRB),Biomolecular NMR Laboratory and Organic Chemistry Department
[3] University of Barcelona,undefined
来源
Journal of Biomolecular NMR | 2015年 / 62卷
关键词
N relaxation; Longitudinal relaxation; R; Water saturation; N CSA/; H–; N dipolar cross-correlated relaxation (CC); Radiation damping (RD);
D O I
暂无
中图分类号
学科分类号
摘要
15N longitudinal relaxation rates are extensively used for the characterization of protein dynamics; however, their accurate measurement is hindered by systematic errors. 15N CSA/1H–15N dipolar cross-correlated relaxation (CC) and amide proton exchange saturation transfer from water protons are the two main sources of systematic errors in the determination of 15N R1 rates through 1H–15N HSQC-based experiments. CC is usually suppressed through a train of 180° proton pulses applied during the variable 15N relaxation period (T), which can perturb water magnetization. Thus CC cancellation is required in such a way as to minimize water saturation effects. Here we examined the level of water saturation during the T period caused by various types of inversion proton pulses to suppress CC: (I) amide-selective IBURP-2; (II) cosine-modulated IBURP-2; (III) Watergate-like blocks; and (IV) non-selective hard. We additionally demonstrate the effect of uncontrolled saturation of aliphatic protons on 15N R1 rates. In this paper we present an optimized pulse sequence that takes into account the crucial effect of controlling also the saturation of the aliphatic protons during 15N R1 measurements in non-deuterated proteins. We show that using cosine-modulated IBURP-2 pulses spaced 40 ms to cancel CC in this optimized pulse program is the method of choice to minimize systematic errors coming from water and aliphatic protons saturation effects.
引用
收藏
页码:209 / 220
页数:11
相关论文
共 86 条
[1]  
Boyd J(1990)Influence of cross-correlation between dipolar and anisotropic chemical shift relaxation mechanisms upon longitudinal relaxation rates of Chem Phys Lett 175 477-482
[2]  
Hommel U(2011)N in macromolecules J Magn Reson 213 151-157
[3]  
Campbell ID(2006)Water proton spin saturation affects measured protein backbone J Biomol NMR 36 123-136
[4]  
Chen K(1994)N spin relaxation rates Biochemistry 33 5984-6003
[5]  
Tjandra N(2009)Measurement of J Am Chem Soc 131 6048-6049
[6]  
Chill JH(2010)N relaxation in the detergent-solubilized tetrameric KcsA potassium channel J Magn Reson 207 294-303
[7]  
Louis JM(1991)Backbone dynamics of a free and a phosphopeptide-compexed Src homology 2 domain studied by J Magn Reson 93 93-141
[8]  
Baber JL(2007)N NMR relaxation J Biomol NMR 37 147-157
[9]  
Bax A(1993)Accurate sampling of high-frequency motions in proteins by steady-state J Am Chem Soc 115 12593-12594
[10]  
Farrow NA(2014)N–{ J Biomol NMR 58 113-122