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光束线上的共聚焦显微镜:新型三维成像与样品定位

Confocal microscopy on the beamline: novel three-dimensional imaging and sample positioning.

作者信息

Khan I, Gillilan R, Kriksunov I, Williams R, Zipfel W R, Englich U

机构信息

MacCHESS (Macromolecular Diffraction Facility at CHESS), Cornell University, Ithaca, NY 14853, USA.

出版信息

J Appl Crystallogr. 2012 Oct 1;45(Pt 5):936-943. doi: 10.1107/S002188981203470X. Epub 2012 Sep 1.

Abstract

Confocal microscopy, a technique that has been extensively applied in cellular biological studies, may also be applied to the visualization and three-dimensional imaging of protein crystals at high resolution on synchrotron beamlines. Protein crystal samples are examined using a commercially available confocal microscope adapted for cryogenic use. A preliminary test using a custom confocal design adapted for beamline use is also presented. The confocal optics configuration is compatible with nonlinear imaging techniques such as two-photon excited fluorescence imaging and second harmonic generation. The possibilities of this method are explored using two modes: fluorescence and reflection confocal. In fluorescence mode, small amounts of dye are introduced into the crystal through soaking or growth conditions. Under such conditions, protein crystals are easily resolved from salts and amorphous precipitates, which do not generally take up dye. Reflection mode, which does not require dye, still exhibits greater resolution and sensitivity to surface detail than conventional wide-field microscopy as a result of the confocal optics configuration. The inherent three-dimensional nature of the method means that on-axis sample views (along the direction of the X-ray beam) can be reconstructed from an off-axis configuration, simplifying the beamline setup and providing uniquely detailed views of cryogenically cooled crystals.

摘要

共聚焦显微镜技术已在细胞生物学研究中得到广泛应用,它也可用于在同步加速器光束线上对蛋白质晶体进行高分辨率的可视化和三维成像。使用适合低温使用的商用共聚焦显微镜检查蛋白质晶体样品。还介绍了使用适用于光束线的定制共聚焦设计进行的初步测试。共聚焦光学配置与诸如双光子激发荧光成像和二次谐波产生等非线性成像技术兼容。使用荧光和反射共聚焦两种模式探索了该方法的可能性。在荧光模式下,通过浸泡或生长条件将少量染料引入晶体。在这种条件下,蛋白质晶体很容易与通常不吸收染料的盐和无定形沉淀区分开来。反射模式不需要染料,由于共聚焦光学配置,它仍然比传统的宽视场显微镜具有更高的分辨率和对表面细节的灵敏度。该方法固有的三维特性意味着可以从离轴配置重建轴上样品视图(沿X射线束方向),简化了光束线设置,并提供了低温冷却晶体独特的详细视图。

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