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首页> 外文期刊>Journal of the American Chemical Society >On the Contributions of Diffusion and Thermal Activation to Electron Transfer between Phormidium laminosum Plastocyanin and Cytochrome f: Brownian Dynamics Simulations with Explicit Modeling of Nonpolar Desolvation Interactions and Electron Transfer Events
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On the Contributions of Diffusion and Thermal Activation to Electron Transfer between Phormidium laminosum Plastocyanin and Cytochrome f: Brownian Dynamics Simulations with Explicit Modeling of Nonpolar Desolvation Interactions and Electron Transfer Events

机译:扩散和热活化对Pormidium laminosum Plastocyanin和细胞色素f之间的电子转移的贡献:非极性脱溶剂相互作用和电子转移事件的显式建模的布朗动力学模拟。

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摘要

The factors that determine the extent to which diffusion and thermal activation processes govern electron transfer (ET) between proteins are debated. The process of ET between plastocyanin (PC) and cytochrome f (CytF) from the cyanobacterium Phormidium laminosum was initially thought to be diffusion-controlled but later was found to be under activation control (Schlarb-Ridley, B. G.; et al. Biochemistry 2005, 44, 6232). Here we describe Brownian dynamics simulations of the diffusional association of PC and CytF, from which ET rates were computed using a detailed model of ET events that was applied to all of the generated protein configurations. The proteins were modeled as rigid bodies represented in atomic detail. In addition to electrostatic forces, which were modeled as in our previous simulations of protein-protein association, the proteins interacted by a nonpolar desolvation (hydrophobic) force whose derivation is described here. The simulations yielded close to realistic residence times of transient protein-protein encounter complexes of up to tens of microseconds. The activation barrier for individual ET events derived from the simulations was positive. Whereas the electrostatic interactions between P. laminosum PC and CytF are weak, simulations for a second cyanobacterial PC-CytF pair, that from Nostoc sp. PCC 7119, revealed ET rates influenced by stronger electrostatic interactions. In both cases, the simulations imply significant contributions to ET from both diffusion and thermal activation processes.
机译:决定扩散和热活化过程控制蛋白质之间电子转移(ET)程度的因素尚有争议。最初认为来自蓝细菌疫霉(Pormidium laminosum)的质体蓝蛋白(PC)和细胞色素f(CytF)之间的ET过程受扩散控制,但​​后来发现处于激活控制之下(Schlarb-Ridley,BG; et al。Biochemistry 2005, 44,6232)。在这里,我们描述了PC和CytF扩散关联的布朗动力学模拟,使用适用于所有生成的蛋白质构型的ET事件的详细模型,从中计算ET率。蛋白质被建模为原子详细表示的刚体。除了像我们以前的蛋白质-蛋白质缔合模拟中所模拟的静电力之外,蛋白质还通过非极性去溶剂化(疏水)力相互作用,其衍生过程在此进行描述。该模拟产生的瞬时蛋白质与蛋白质相遇复合物的逼近停留时间接近数十微秒。从模拟得出的单个ET事件的激活障碍为正。尽管P. laminosum PC和CytF之间的静电相互作用较弱,但对第二个蓝细菌PC-CytF对的模拟来自Nostoc sp.。 PCC 7119揭示了ET速率受较强的静电相互作用的影响。在这两种情况下,模拟都暗示了扩散和热活化过程对ET的重要贡献。

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  • 来源
    《Journal of the American Chemical Society》 |2009年第26期|9230-9238|共9页
  • 作者单位

    Molecular and Cellular Modeling Group, EML Research gGmbH, Schloss-Wolfsbrunnenweg 33, D-69118 Heidelberg, Germany Center for Modeling and Simulation in the Biosciences (BIOMS), University of Heidelberg, Im Neuenheimer Feld 367, D-69120 Heidelberg, Germany BIOBASE GmbH, Halchterschestr. 33, D-38304 Wolfenbiittel, Germany;

    Molecular and Cellular Modeling Group, EML Research gGmbH, Schloss-Wolfsbrunnenweg 33, D-69118 Heidelberg, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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