Harp J M, Timm D E, Bunick G J
University of Tennessee/Oak Ridge Graduate School of Biomedical Sciences, Oak Ridge, TN 37831-8080, USA.
Acta Crystallogr D Biol Crystallogr. 1998 Jul 1;54(Pt 4):622-8. doi: 10.1107/s0907444997019008.
Although cryogenic data collection has become the method of choice for macromolecular crystallography, the flash-cooling step can dramatically increase the mosaicity of some crystals. Macromolecular crystal annealing significantly reduces the mosaicity of flash-cooled crystals without affecting molecular structure. The process, which cycles a flash-cooled crystal to ambient temperature and back to cryogenic temperature, is simple, quick and requires no special equipment. The annealing process has been applied to crystals of several different macromolecules grown from different precipitants and using a variety of cryoprotectants. The protocol for macromolecular crystal annealing also has been applied to restore diffraction from flash-cooled crystals that were mishandled during transfer to or from cryogenic storage. These results will be discussed in relation to crystal mosaicity and effects of radiation damage in flash-cooled crystals.
尽管低温数据收集已成为大分子晶体学的首选方法,但快速冷却步骤可能会显著增加某些晶体的镶嵌性。大分子晶体退火可显著降低快速冷却晶体的镶嵌性,而不影响分子结构。该过程将快速冷却的晶体循环至室温并再回到低温,操作简单、迅速,且无需特殊设备。退火过程已应用于从不同沉淀剂生长并使用多种冷冻保护剂的几种不同大分子的晶体。大分子晶体退火方案也已用于恢复在转移至或移出低温储存过程中处理不当的快速冷却晶体的衍射。将结合晶体镶嵌性以及快速冷却晶体中辐射损伤的影响来讨论这些结果。