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利用增强型氢/氘交换质谱快速优化晶体学蛋白质构建体定义

Rapid refinement of crystallographic protein construct definition employing enhanced hydrogen/deuterium exchange MS.

作者信息

Pantazatos Dennis, Kim Jack S, Klock Heath E, Stevens Raymond C, Wilson Ian A, Lesley Scott A, Woods Virgil L

机构信息

Department of Medicine, University of California at San Diego, 9500 Gilman Drive, La Jolla, CA, 92093, USA.

出版信息

Proc Natl Acad Sci U S A. 2004 Jan 20;101(3):751-6. doi: 10.1073/pnas.0307204101. Epub 2004 Jan 8.

Abstract

Crystallographic efforts often fail to produce suitably diffracting protein crystals. Unstructured regions of proteins play an important role in this problem and considerable advantage can be gained in removing them. We have developed a number of enhancements to amide hydrogen/high-throughput and high-resolution deuterium exchange MS (DXMS) technology that allow rapid identification of unstructured regions in proteins. To demonstrate the utility of this approach for improving crystallization success, DXMS analysis was attempted on 24 Thermotoga maritima proteins with varying crystallization and diffraction characteristics. Data acquisition and analysis for 21 of these proteins was completed in 2 weeks and resulted in the localization and prediction of several unstructured regions within the proteins. When compared with those targets of known structure, the DXMS method correctly localized even small regions of disorder. DXMS analysis was then correlated with the propensity of such targets to crystallize and was further used to define truncations that improved crystallization. Truncations that were defined solely on DXMS analysis demonstrated greatly improved crystallization and have been used for structure determination. This approach represents a rapid and generalized method that can be applied to structural genomics or other targets in a high-throughput manner.

摘要

晶体学研究往往难以获得衍射效果良好的蛋白质晶体。蛋白质的非结构化区域在这一问题中起着重要作用,去除这些区域可能会带来显著优势。我们对酰胺氢/高通量高分辨率氘交换质谱(DXMS)技术进行了多项改进,能够快速识别蛋白质中的非结构化区域。为了证明该方法对提高结晶成功率的效用,我们对24种具有不同结晶和衍射特性的海栖热袍菌蛋白进行了DXMS分析。其中21种蛋白的数据采集和分析在两周内完成,结果定位并预测了这些蛋白内的几个非结构化区域。与已知结构的靶标相比,DXMS方法能够正确定位即使是很小的无序区域。然后将DXMS分析与这些靶标的结晶倾向相关联,并进一步用于确定能够改善结晶的截短形式。仅基于DXMS分析确定的截短形式显示出结晶性能大幅提高,并已用于结构测定。这种方法是一种快速且通用的方法,可高通量应用于结构基因组学或其他靶标。

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