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从石墨烯包裹的蛋白质晶体中进行真空X射线数据收集。

In vacuo X-ray data collection from graphene-wrapped protein crystals.

作者信息

Warren Anna J, Crawshaw Adam D, Trincao Jose, Aller Pierre, Alcock Simon, Nistea Ioana, Salgado Paula S, Evans Gwyndaf

机构信息

Diamond Light Source, Harwell Science and Innovation Campus, Didcot OX11 0DE, England.

Institute for Cell and Molecular Biosciences, Faculty of Medical Sciences, Newcastle University, Newcastle upon Tyne NE2 4HH, England.

出版信息

Acta Crystallogr D Biol Crystallogr. 2015 Oct;71(Pt 10):2079-88. doi: 10.1107/S1399004715014194. Epub 2015 Sep 26.

Abstract

The measurement of diffraction data from macromolecular crystal samples held in vacuo holds the promise of a very low X-ray background and zero absorption of incident and scattered beams, leading to better data and the potential for accessing very long X-ray wavelengths (>3 Å) for native sulfur phasing. Maintaining the hydration of protein crystals under vacuum is achieved by the use of liquid jets, as with serial data collection at free-electron lasers, or is side-stepped by cryocooling the samples, as implemented at new synchrotron beamlines. Graphene has been shown to protect crystals from dehydration by creating an extremely thin layer that is impermeable to any exchanges with the environment. Furthermore, owing to its hydrophobicity, most of the aqueous solution surrounding the crystal is excluded during sample preparation, thus eliminating most of the background caused by liquid. Here, it is shown that high-quality data can be recorded at room temperature from graphene-wrapped protein crystals in a rough vacuum. Furthermore, it was observed that graphene protects crystals exposed to different relative humidities and a chemically harsh environment.

摘要

在真空中对大分子晶体样品的衍射数据进行测量,有望获得极低的X射线背景以及入射光束和散射光束的零吸收,从而得到更好的数据,并有可能获得极长的X射线波长(>3 Å)用于天然硫相位分析。与在自由电子激光上进行系列数据收集时一样,通过使用液体射流可在真空中维持蛋白质晶体的水合状态,或者像在新的同步加速器光束线上那样,通过对样品进行低温冷却来避免这一问题。石墨烯已被证明可以通过形成一层极薄的、与环境无任何交换的不可渗透层来保护晶体免受脱水影响。此外,由于其疏水性,在样品制备过程中,晶体周围的大部分水溶液被排除,从而消除了大部分由液体引起的背景。在此表明,在粗糙真空中,可在室温下从石墨烯包裹的蛋白质晶体记录高质量数据。此外,还观察到石墨烯可保护晶体免受不同相对湿度和化学恶劣环境的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a2e/4601369/30ff29109732/d-71-02079-fig1.jpg

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