Wardell M R, Skinner R, Carter D C, Twigg P D, Abrahams J P
Department of Biochemistry and Molecular Biophysics, Washington University in St Louis, MO 63110-1093, USA.
Acta Crystallogr D Biol Crystallogr. 1997 Sep 1;53(Pt 5):622-5. doi: 10.1107/s0907444997003302.
Crystals of antithrombin were grown both on earth and in microgravity aboard US Space Shuttle Flight STS-67. The quality of crystals grown in both environments was highly variable and many could not be indexed. The microgravity crystals, however, generally diffracted better, as demonstrated by a novel procedure that estimates the resolution of the Bragg scatter from single diffraction images, without requiring knowledge of the cell dimensions of the crystal. Whereas the best earth-grown crystals never diffracted beyond 3 angstroms resolution, the best microgravity crystal diffracted to 2.6 angstroms. The improvement, demonstrated here by a comparison of 23 microgravity and 12 earth-grown crystals, is attributed to better ordered crystal growth in microgravity, although other factors may have contributed also.
抗凝血酶晶体在地球上以及美国航天飞机 STS - 67 任务的微重力环境中生长。在这两种环境中生长的晶体质量差异很大,许多晶体无法进行指标化。然而,微重力环境下生长的晶体通常衍射效果更好,这是通过一种新方法证明的,该方法可从单个衍射图像估计布拉格散射的分辨率,而无需知道晶体的晶胞尺寸。虽然在地球上生长的最佳晶体衍射分辨率从未超过 3 埃,但最佳的微重力晶体衍射分辨率达到了 2.6 埃。通过对 23 个微重力环境下生长的晶体和 12 个地球上生长的晶体进行比较,此处所展示的这种改进归因于微重力环境下晶体生长的有序性更好,不过其他因素可能也起到了一定作用。