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蛋白质结晶的衰减全反射傅里叶变换红外光谱成像

Attenuated total reflection-FT-IR spectroscopic imaging of protein crystallization.

作者信息

Chan K L Andrew, Govada Lata, Bill Roslyn M, Chayen Naomi E, Kazarian Sergei G

机构信息

Department of Chemical Engineering, Faculty of Engineering, Imperial College London, SW7 2AZ, United Kingdom.

出版信息

Anal Chem. 2009 May 15;81(10):3769-75. doi: 10.1021/ac900455y.

Abstract

Protein crystallization is of strategic and commercial relevance in the post-genomic era because of its pivotal role in structural proteomics projects. Although protein structures are crucial for understanding the function of proteins and to the success of rational drug design and other biotechnology applications, obtaining high quality crystals is a major bottleneck to progress. The major means of obtaining crystals is by massive-scale screening of a target protein solution with numerous crystallizing agents. However, when crystals appear in these screens, one cannot easily know if they are crystals of protein, salt, or any other molecule that happens to be present in the trials. We present here a method based on Attenuated Total Reflection (ATR)-FT-IR imaging that reliably identifies protein crystals through a combination of chemical specificity and the visualizing capability of this approach, thus solving a major hurdle in protein crystallization. ATR-FT-IR imaging was successfully applied to study the crystallization of thaumatin and lysozyme in a high-throughput manner, simultaneously from six different solutions. This approach is fast as it studies protein crystallization in situ and provides an opportunity to examine many different samples under a range of conditions.

摘要

在基因组时代之后,蛋白质结晶在结构蛋白质组学项目中发挥着关键作用,因而具有重要的战略意义和商业价值。尽管蛋白质结构对于理解蛋白质功能以及合理药物设计和其他生物技术应用的成功至关重要,但获得高质量晶体却是进展的主要瓶颈。获得晶体的主要方法是用大量结晶剂对目标蛋白质溶液进行大规模筛选。然而,当在这些筛选中出现晶体时,人们很难轻易知道它们是蛋白质晶体、盐晶体还是碰巧在试验中存在的任何其他分子的晶体。我们在此提出一种基于衰减全反射(ATR)-傅里叶变换红外(FT-IR)成像的方法,该方法通过化学特异性和这种方法的可视化能力相结合,可靠地识别蛋白质晶体,从而解决了蛋白质结晶中的一个主要障碍。ATR-FT-IR成像已成功应用于以高通量方式同时研究来自六种不同溶液的奇异果甜蛋白和溶菌酶的结晶过程。这种方法速度很快,因为它是原位研究蛋白质结晶,并且提供了在一系列条件下检查许多不同样品的机会。

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