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结晶肌红蛋白的不同氧化态如何受到X射线的影响。

How different oxidation states of crystalline myoglobin are influenced by X-rays.

作者信息

Hersleth Hans-Petter, Andersson K Kristoffer

机构信息

Department of Molecular Biosciences, University of Oslo, P.O. Box 1041 Blindern, NO-0316 Oslo, Norway.

出版信息

Biochim Biophys Acta. 2011 Jun;1814(6):785-96. doi: 10.1016/j.bbapap.2010.07.019. Epub 2010 Aug 5.

Abstract

X-ray induced radiation damage of protein crystals is well known to occur even at cryogenic temperatures. Redox active sites like metal sites seem especially vulnerable for these radiation-induced reductions. It is essential to know correctly the oxidation state of metal sites in protein crystal structures to be able to interpret the structure-function relation. Through previous structural studies, we have tried to characterise and understand the reactions between myoglobin and peroxides. These reaction intermediates are relevant because myoglobin is proposed to take part as scavenger of reactive oxygen species during oxidative stress, and because these intermediates are similar among the haem peroxidases and oxygenases. We have in our previous studies shown that these different myoglobin states are influenced by the X-rays used. In this study, we have in detail investigated the impact that X-rays have on these different oxidation states of myoglobin. An underlying goal has been to find a way to be able to determine mostly unreduced states. We have by using single-crystal light absorption spectroscopy found that the different oxidation states of myoglobin are to a different extent influenced by the X-rays (e.g. ferric Fe(III) myoglobin is faster reduced than ferryl Fe(IV)═O myoglobin). We observe that the higher oxidation states are not reduced to normal ferrous Fe(II) or ferric Fe(III) states, but end up in some intermediate and possibly artificial states. For ferric myoglobin, it seems that annealing of the radiation-induced/reduced state can reversibly more or less give the starting point (ferric myoglobin). Both scavengers and different dose-rates might influence to which extent the different states are affected by the X-rays. Our study shows that it is essential to do a time/dose monitoring of the influence X-rays have on each specific redox-state with spectroscopic techniques like single-crystal light absorption spectroscopy. This will determine to which extent you can collect X-ray diffraction data on your crystal before it becomes too heavily influenced/reduced by X-rays. This article is part of a Special Issue entitled: Protein Structure and Function in the Crystalline State.

摘要

众所周知,即使在低温下,X射线也会导致蛋白质晶体的辐射损伤。像金属位点这样的氧化还原活性位点似乎对这些辐射诱导的还原反应特别敏感。正确了解蛋白质晶体结构中金属位点的氧化态对于理解结构-功能关系至关重要。通过之前的结构研究,我们试图表征和理解肌红蛋白与过氧化物之间的反应。这些反应中间体很重要,因为有人提出肌红蛋白在氧化应激期间作为活性氧清除剂发挥作用,而且这些中间体在血红素过氧化物酶和加氧酶中相似。我们在之前的研究中表明,这些不同的肌红蛋白状态会受到所使用的X射线的影响。在本研究中,我们详细研究了X射线对肌红蛋白这些不同氧化态的影响。一个潜在目标是找到一种能够确定大部分未还原状态的方法。我们通过使用单晶光吸收光谱发现,肌红蛋白的不同氧化态受到X射线的影响程度不同(例如,高铁Fe(III)肌红蛋白比亚铁Fe(IV)═O肌红蛋白还原得更快)。我们观察到,较高的氧化态不会还原为正常的亚铁Fe(II)或高铁Fe(III)状态,而是最终处于一些中间状态,可能是人工状态。对于高铁肌红蛋白,辐射诱导/还原状态的退火似乎可以或多或少可逆地回到起始点(高铁肌红蛋白)。清除剂和不同的剂量率都可能影响不同状态受X射线影响的程度。我们的研究表明,使用单晶光吸收光谱等光谱技术对X射线对每种特定氧化还原状态的影响进行时间/剂量监测至关重要。这将确定在晶体受到X射线过度影响/还原之前,你可以在多大程度上收集关于该晶体的X射线衍射数据。本文是名为:晶体状态下的蛋白质结构与功能的特刊的一部分。

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