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利用相关固态核磁共振约束进行原子精修。

Atomic refinement with correlated solid-state NMR restraints.

作者信息

Bertram Richard, Asbury Tom, Fabiola Felcy, Quine J R, Cross Timothy A, Chapman Michael S

机构信息

Department of Mathematics, Florida State University, Tallahassee, FL 32306-4510, USA.

出版信息

J Magn Reson. 2003 Aug;163(2):300-9. doi: 10.1016/s1090-7807(03)00147-2.

DOI:10.1016/s1090-7807(03)00147-2
PMID:12914845
Abstract

The orientation data provided by solid-state NMR can provide a great deal of structural information about membrane proteins. The quality of the information provided is, however, somewhat degraded by sign degeneracies in measurements of the dipolar coupling tensor. This is reflected in the dipolar coupling penalty function used in atomic refinement, which is less capable of properly restraining atoms when dipolar sign degeneracies are present. In this report we generate simulated solid-state NMR data using a variety of procedures, including back-calculation from crystal structures of alpha-helical and beta-sheet membrane proteins. We demonstrate that a large fraction of the dipolar sign degeneracies are resolved if anisotropic dipolar coupling measurements are correlated with anisotropic chemical shift measurements, and that all sign degeneracies can be resolved if three data types are correlated. The advantages of correlating data are demonstrated with atomic refinement of two test membrane proteins. When refinement is performed using correlated dipolar couplings and chemical shifts, perturbed structures converge to conformations with a larger fraction of correct dipolar signs than when data are uncorrelated. In addition, the final structures are closer to the original unperturbed structures when correlated data are used in the refinement. Thus, refinement with correlated data leads to improved atomic structures. The software used to correlate dipolar coupling and chemical shift data and to set up energy functions and their derivatives for refinement, CNS-SS02, is available at our web site.

摘要

固态核磁共振提供的取向数据能够提供大量关于膜蛋白的结构信息。然而,所提供信息的质量在一定程度上会因偶极耦合张量测量中的符号简并性而降低。这反映在原子精修中使用的偶极耦合惩罚函数上,当存在偶极符号简并性时,该函数对原子的适当约束能力较弱。在本报告中,我们使用多种程序生成模拟的固态核磁共振数据,包括从α-螺旋和β-折叠膜蛋白的晶体结构进行反算。我们证明,如果将各向异性偶极耦合测量与各向异性化学位移测量相关联,很大一部分偶极符号简并性可以得到解决,并且如果将三种数据类型相关联,则所有符号简并性都可以得到解决。通过对两种测试膜蛋白进行原子精修,展示了关联数据的优势。当使用关联的偶极耦合和化学位移进行精修时,与数据不相关时相比,受扰结构会收敛到具有更大比例正确偶极符号的构象。此外,当在精修中使用关联数据时,最终结构更接近原始的未受扰结构。因此,使用关联数据进行精修可得到改进的原子结构。用于关联偶极耦合和化学位移数据以及设置能量函数及其导数以进行精修的软件CNS-SS02可在我们的网站上获取。

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