Strategic Planning Office for Regional Revitalization, Mie University, 1577 Kurimamachiya-cho, Tsu 514-8507, Japan.
Institute for Materials Research, Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai 980-8577, Japan.
Acta Crystallogr D Struct Biol. 2021 May 1;77(Pt 5):599-605. doi: 10.1107/S2059798321001820. Epub 2021 Apr 14.
It is important to reveal the exact cause of poor diffractivity in protein crystals in order to determine the accurate structure of protein molecules. It is shown that there is a large amount of local strain in subgrains of glucose isomerase crystals even though the overall crystal quality is rather high, as shown by clear equal-thickness fringes in X-ray topography. Thus, a large stress is exerted on the subgrains of protein crystals, which could significantly lower the resistance of the crystals to radiation damage. It is also demonstrated that this local strain can be reduced through the introduction of dislocations in the crystal. This suggests that the introduction of dislocations in protein crystals can be effective in enhancing the crystal quality of subgrains of protein crystals. By exploiting this effect, the radiation damage in subgrains could be decreased, leading to the collection of X-ray diffraction data sets with high diffractivity.
揭示蛋白质晶体衍射差的准确原因对于确定蛋白质分子的准确结构非常重要。研究表明,葡萄糖异构酶晶体的亚晶粒中存在大量局部应变,尽管整体晶体质量相当高,X 射线形貌学中清晰的等厚条纹显示了这一点。因此,蛋白质晶体的亚晶粒上施加了很大的应力,这会显著降低晶体对辐射损伤的抵抗力。研究还表明,通过在晶体中引入位错可以减少这种局部应变。这表明在蛋白质晶体中引入位错可以有效地提高蛋白质晶体亚晶粒的晶体质量。利用这种效应,可以减少亚晶粒中的辐射损伤,从而收集具有高衍射度的 X 射线衍射数据集。