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蛋白质在室温下的构象变化并非由辐射损伤主导。

Conformational variation of proteins at room temperature is not dominated by radiation damage.

作者信息

Russi Silvia, González Ana, Kenner Lillian R, Keedy Daniel A, Fraser James S, van den Bedem Henry

机构信息

Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, Menlo Park, CA 94025, USA.

Department of Bioengineering and Therapeutic Sciences, UCSF, San Francisco, CA, USA.

出版信息

J Synchrotron Radiat. 2017 Jan 1;24(Pt 1):73-82. doi: 10.1107/S1600577516017343.

Abstract

Protein crystallography data collection at synchrotrons is routinely carried out at cryogenic temperatures to mitigate radiation damage. Although damage still takes place at 100 K and below, the immobilization of free radicals increases the lifetime of the crystals by approximately 100-fold. Recent studies have shown that flash-cooling decreases the heterogeneity of the conformational ensemble and can hide important functional mechanisms from observation. These discoveries have motivated increasing numbers of experiments to be carried out at room temperature. However, the trade-offs between increased risk of radiation damage and increased observation of alternative conformations at room temperature relative to cryogenic temperature have not been examined. A considerable amount of effort has previously been spent studying radiation damage at cryo-temperatures, but the relevance of these studies to room temperature diffraction is not well understood. Here, the effects of radiation damage on the conformational landscapes of three different proteins (T. danielli thaumatin, hen egg-white lysozyme and human cyclophilin A) at room (278 K) and cryogenic (100 K) temperatures are investigated. Increasingly damaged datasets were collected at each temperature, up to a maximum dose of the order of 10 Gy at 100 K and 10 Gy at 278 K. Although it was not possible to discern a clear trend between damage and multiple conformations at either temperature, it was observed that disorder, monitored by B-factor-dependent crystallographic order parameters, increased with higher absorbed dose for the three proteins at 100 K. At 278 K, however, the total increase in this disorder was only statistically significant for thaumatin. A correlation between specific radiation damage affecting side chains and the amount of disorder was not observed. This analysis suggests that elevated conformational heterogeneity in crystal structures at room temperature is observed despite radiation damage, and not as a result thereof.

摘要

在同步加速器上进行蛋白质晶体学数据收集时,通常在低温下进行,以减轻辐射损伤。尽管在100K及以下仍会发生损伤,但自由基的固定使晶体寿命延长了约100倍。最近的研究表明,快速冷却会降低构象集合的异质性,并可能使重要的功能机制无法被观察到。这些发现促使越来越多的实验在室温下进行。然而,相对于低温,室温下辐射损伤风险增加与可观察到的替代构象增加之间的权衡尚未得到研究。此前已经花费了大量精力研究低温下的辐射损伤,但这些研究与室温衍射的相关性尚不清楚。在此,研究了辐射损伤在室温(278K)和低温(100K)下对三种不同蛋白质(丹尼利氏奇异果甜蛋白、鸡蛋清溶菌酶和人亲环素A)构象景观的影响。在每个温度下收集损伤程度不断增加的数据集,在100K时最大剂量达到约10Gy,在278K时达到10Gy。尽管在这两个温度下都无法辨别损伤与多种构象之间的明显趋势,但观察到,通过与B因子相关的晶体学有序参数监测的无序度,在100K时随着三种蛋白质吸收剂量的增加而增加。然而,在278K时,这种无序度的总体增加仅对奇异果甜蛋白具有统计学意义。未观察到影响侧链的特定辐射损伤与无序度之间存在相关性。该分析表明,尽管存在辐射损伤,但在室温下晶体结构中仍观察到构象异质性升高,而不是其结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2508/5182021/5c5461e70ab9/s-24-00073-fig1.jpg

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