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通过在晶体安装过程中限制脱水来提高大分子低温晶体学中晶胞参数的可重复性。

Improved reproducibility of unit-cell parameters in macromolecular cryocrystallography by limiting dehydration during crystal mounting.

作者信息

Farley Christopher, Burks Geoffry, Siegert Thomas, Juers Douglas H

机构信息

Department of Physics, Whitman College, 345 Boyer Avenue, Walla Walla, WA 99362, USA.

Program in Biochemistry, Biophysics and Molecular Biology, Whitman College, 345 Boyer Avenue, Walla Walla, WA 99362, USA.

出版信息

Acta Crystallogr D Biol Crystallogr. 2014 Aug;70(Pt 8):2111-24. doi: 10.1107/S1399004714012310. Epub 2014 Jul 25.

Abstract

In macromolecular cryocrystallography unit-cell parameters can have low reproducibility, limiting the effectiveness of combining data sets from multiple crystals and inhibiting the development of defined repeatable cooling protocols. Here, potential sources of unit-cell variation are investigated and crystal dehydration during loop-mounting is found to be an important factor. The amount of water lost by the unit cell depends on the crystal size, the loop size, the ambient relative humidity and the transfer distance to the cooling medium. To limit water loss during crystal mounting, a threefold strategy has been implemented. Firstly, crystal manipulations are performed in a humid environment similar to the humidity of the crystal-growth or soaking solution. Secondly, the looped crystal is transferred to a vial containing a small amount of the crystal soaking solution. Upon loop transfer, the vial is sealed, which allows transport of the crystal at its equilibrated humidity. Thirdly, the crystal loop is directly mounted from the vial into the cold gas stream. This strategy minimizes the exposure of the crystal to relatively low humidity ambient air, improves the reproducibility of low-temperature unit-cell parameters and offers some new approaches to crystal handling and cryoprotection.

摘要

在大分子低温晶体学中,晶胞参数的可重复性较低,这限制了合并来自多个晶体的数据集的有效性,并阻碍了确定的可重复冷却方案的开发。在此,对晶胞变化的潜在来源进行了研究,发现环装过程中的晶体脱水是一个重要因素。晶胞损失的水量取决于晶体大小、环的大小、环境相对湿度以及到冷却介质的转移距离。为了限制晶体安装过程中的水分损失,实施了三重策略。首先,在与晶体生长或浸泡溶液湿度相似的潮湿环境中进行晶体操作。其次,将带环晶体转移到装有少量晶体浸泡溶液的小瓶中。转移环时,将小瓶密封,这使得晶体能够在其平衡湿度下运输。第三,将晶体环直接从小瓶安装到冷气流中。该策略最大限度地减少了晶体暴露于相对低湿度的环境空气中,提高了低温晶胞参数的可重复性,并提供了一些晶体处理和冷冻保护的新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8c4/4118824/e8239fc9d831/d-70-02111-fig1.jpg

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