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低温溶液热收缩对蛋白质和蛋白质晶体的影响:体积、构象和有序性。

The impact of cryosolution thermal contraction on proteins and protein crystals: volumes, conformation and order.

机构信息

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

Program in BBMB, Whitman College, 345 Boyer Avenue, Walla Walla, WA 99362, USA.

出版信息

Acta Crystallogr D Struct Biol. 2018 Sep 1;74(Pt 9):922-938. doi: 10.1107/S2059798318008793. Epub 2018 Sep 5.

Abstract

Cryocooling of macromolecular crystals is commonly employed to limit radiation damage during X-ray diffraction data collection. However, cooling itself affects macromolecular conformation and often damages crystals via poorly understood processes. Here, the effects of cryosolution thermal contraction on macromolecular conformation and crystal order in crystals ranging from 32 to 67% solvent content are systematically investigated. It is found that the solution thermal contraction affects macromolecule configurations and volumes, unit-cell volumes, crystal packing and crystal order. The effects occur through not only thermal contraction, but also pressure caused by the mismatched contraction of cryosolvent and pores. Higher solvent-content crystals are more affected. In some cases the solvent contraction can be adjusted to reduce mosaicity and increase the strength of diffraction. Ice formation in some crystals is found to cause damage via a reduction in unit-cell volume, which is interpreted through solvent transport out of unit cells during cooling. The results point to more deductive approaches to cryoprotection optimization by adjusting the cryosolution composition to reduce thermal contraction-induced stresses in the crystal with cooling.

摘要

大分子晶体的冷却通常用于限制 X 射线衍射数据收集过程中的辐射损伤。然而,冷却本身会影响大分子构象,并通过人们知之甚少的过程经常损坏晶体。在这里,系统地研究了从 32%到 67%溶剂含量的晶体中,冷冻溶液热收缩对大分子构象和晶体有序性的影响。结果发现,溶液热收缩会影响大分子的构象和体积、晶胞体积、晶体堆积和晶体有序性。这种影响不仅来自热收缩,还来自冷冻溶剂和孔之间不匹配收缩引起的压力。溶剂含量较高的晶体受影响更大。在某些情况下,可以通过调整溶剂收缩来减少镶嵌度并提高衍射强度。在一些晶体中,冰的形成会通过减少晶胞体积来造成损害,这可以通过冷却过程中溶剂从晶胞中排出来解释。这些结果表明,通过调整冷冻溶液的组成来减少冷却过程中晶体热收缩引起的应力,可以更具推断性地优化冷冻保护,从而达到减少热收缩诱导的晶体损伤。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9efd/6130464/2c853afae3aa/d-74-00922-fig1.jpg

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