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对氧化还原电位跨度为800毫伏的血红素的电化学分析。

Analysis of the electrochemistry of hemes with E(m)s spanning 800 mV.

作者信息

Zheng Zhong, Gunner M R

机构信息

Department of Physics, The City College of New York, New York, NY, USA.

出版信息

Proteins. 2009 May 15;75(3):719-34. doi: 10.1002/prot.22282.

Abstract

The free energy of heme reduction in different proteins is found to vary over more than 18 kcal/mol. It is a challenge to determine how proteins manage to achieve this enormous range of E(m)s with a single type of redox cofactor. Proteins containing 141 unique hemes of a-, b-, and c-type, with bis-His, His-Met, and aquo-His ligation were calculated using Multi-Conformation Continuum Electrostatics (MCCE). The experimental E(m)s range over 800 mV from -350 mV in cytochrome c(3) to 450 mV in cytochrome c peroxidase (vs. SHE). The quantitative analysis of the factors that modulate heme electrochemistry includes the interactions of the heme with its ligands, the solvent, the protein backbone, and sidechains. MCCE calculated E(m)s are in good agreement with measured values. Using no free parameters the slope of the line comparing calculated and experimental E(m)s is 0.73 (R(2) = 0.90), showing the method accounts for 73% of the observed E(m) range. Adding a +160 mV correction to the His-Met c-type hemes yields a slope of 0.97 (R(2) = 0.93). With the correction 65% of the hemes have an absolute error smaller than 60 mV and 92% are within 120 mV. The overview of heme proteins with known structures and E(m)s shows both the lowest and highest potential hemes are c-type, whereas the b-type hemes are found in the middle E(m) range. In solution, bis-His ligation lowers the E(m) by approximately 205 mV relative to hemes with His-Met ligands. The bis-His, aquo-His, and His-Met ligated b-type hemes all cluster about E(m)s which are approximately 200 mV more positive in protein than in water. In contrast, the low potential bis-His c-type hemes are shifted little from in solution, whereas the high potential His-Met c-type hemes are raised by approximately 300 mV from solution. The analysis shows that no single type of interaction can be identified as the most important in setting heme electrochemistry in proteins. For example, the loss of solvation (reaction field) energy, which raises the E(m), has been suggested to be a major factor in tuning in situ E(m)s. However, the calculated solvation energy vs. experimental E(m) shows a slope of 0.2 and R(2) of 0.5 thus correlates weakly with E(m)s. All other individual interactions show even less correlation with E(m). However the sum of these terms does reproduce the range of observed E(m)s. Therefore, different proteins use different aspects of their structures to modulate the in situ heme electrochemistry. This study also shows that the calculated E(m)s are relatively insensitive to different heme partial charges and to the protein dielectric constant used in the simulation.

摘要

不同蛋白质中血红素还原的自由能变化超过18千卡/摩尔。确定蛋白质如何利用单一类型的氧化还原辅因子实现如此广泛的E(m)范围是一项挑战。使用多构象连续介质静电学(MCCE)计算了含有141种独特的a-、b-和c-型血红素且具有双组氨酸、组氨酸-甲硫氨酸和水合组氨酸配位的蛋白质。实验测得的E(m)范围超过800毫伏,从细胞色素c(3)中的-350毫伏到细胞色素c过氧化物酶中的450毫伏(相对于标准氢电极)。对调节血红素电化学的因素进行的定量分析包括血红素与其配体、溶剂、蛋白质主链和侧链的相互作用。MCCE计算得到的E(m)与测量值高度吻合。在不使用自由参数的情况下,比较计算值和实验值的E(m)的直线斜率为0.73(R(2)=0.90),表明该方法解释了观察到的E(m)范围的73%。对组氨酸-甲硫氨酸c-型血红素加上+160毫伏的校正后,斜率为0.97(R(2)=0.93)。经过校正后,65%的血红素绝对误差小于60毫伏,92%在120毫伏以内。对具有已知结构和E(m)的血红素蛋白的概述表明,最低和最高电位的血红素都是c-型,而b-型血红素处于中等E(m)范围。在溶液中,相对于具有组氨酸-甲硫氨酸配体的血红素,双组氨酸配位使E(m)降低约205毫伏。双组氨酸、水合组氨酸和组氨酸-甲硫氨酸配位的b-型血红素都聚集在E(m)附近,其在蛋白质中的电位比在水中大约高200毫伏。相比之下,低电位的双组氨酸c-型血红素在溶液中的电位变化不大,而高电位的组氨酸-甲硫氨酸c-型血红素在溶液中的电位升高约300毫伏。分析表明,在确定蛋白质中血红素的电化学性质时,没有一种单一类型的相互作用可以被确定为最重要的。例如,有人认为溶剂化(反应场)能量的损失会提高E(m),是调节原位E(m)的一个主要因素。然而,计算得到的溶剂化能量与实验E(m)的斜率为0.2,R(2)为0.5,因此与E(m)的相关性较弱。所有其他个体相互作用与E(m)的相关性甚至更低。然而,这些项的总和确实再现了观察到的E(m)范围。因此,不同的蛋白质利用其结构的不同方面来调节原位血红素电化学。这项研究还表明,计算得到的E(m)对不同的血红素部分电荷和模拟中使用的蛋白质介电常数相对不敏感。

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