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通过多场核磁共振弛豫探测钙调蛋白结构域运动的温度依赖性。

Temperature dependence of domain motions of calmodulin probed by NMR relaxation at multiple fields.

作者信息

Chang Shou-Lin, Szabo Attila, Tjandra Nico

机构信息

Laboratory of Biophysical Chemistry, Building 50, National Heart, Lung, and Blood Institute and Laboratory of Chemical Physics, National Institute of Diabetes, Digestive and Kidney Diseases, National Institutes of Health, Bethesda, Maryland 20892, USA.

出版信息

J Am Chem Soc. 2003 Sep 17;125(37):11379-84. doi: 10.1021/ja034064w.

Abstract

Interdomain motions of Ca(2+)-ligated calmodulin were characterized by analyzing the nuclear magnetic resonance (15)N longitudinal relaxation rate R(1), transverse relaxation rate R(2), and steady-state {(1)H}-(15)N NOE of the backbone amide group at three different magnetic field strengths (18.8, 14.1, and 8.5 T) and four different temperatures (21, 27, 35, and 43 degrees C). Between 35 and 43 degrees C, a larger than expected change in the amplitude and the time scale of the interdomain motion for both N- and C-domains was observed. We attribute this to the shift in population of four residues (74-77) in the central linker from predominantly helical to random coil in this temperature range. This is consistent with the conformation of these residues in the calmodulin-peptide complex, where they are nonhelical. The doubling of the disordered region of the central helix (residues 78-81 at room temperature) when temperature is raised from 35 to 43 degrees C results in larger amplitude interdomain motion. Our analysis of the NMR relaxation data quantifies subtle changes in the interdomain dynamics and provides an additional tool to monitor conformational changes in multidomain proteins.

摘要

通过分析在三种不同磁场强度(18.8、14.1和8.5 T)以及四种不同温度(21、27、35和43摄氏度)下,Ca(2+)结合钙调蛋白的核间运动,对其主链酰胺基团的核磁共振(15)N纵向弛豫率R(1)、横向弛豫率R(2)以及稳态{(1)H}-(15)N NOE进行了表征。在35至43摄氏度之间,观察到N结构域和C结构域的核间运动幅度和时间尺度出现了比预期更大的变化。我们将此归因于在该温度范围内,中央连接子中四个残基(74 - 77)的构象从主要为螺旋结构转变为无规卷曲结构。这与钙调蛋白 - 肽复合物中这些残基的构象一致,在该复合物中它们是非螺旋结构。当温度从35摄氏度升高到43摄氏度时,中央螺旋无序区域(室温下的残基78 - 81)翻倍,导致核间运动幅度增大。我们对核磁共振弛豫数据的分析量化了核间动力学的细微变化,并提供了一种额外的工具来监测多结构域蛋白质的构象变化。

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