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首页> 外文期刊>Biochemistry >Heme redox potential control in de novo designed four-alpha-helix bundle proteins.
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Heme redox potential control in de novo designed four-alpha-helix bundle proteins.

机译:从头设计的血红素氧化还原电位控制设计了四个α-螺旋束蛋白。

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摘要

The effects of various mechanisms of metalloporphyrin reduction potential modulation were investigated experimentally using a robust, well-characterized heme protein maquette, synthetic protein scaffold H10A24 [?CH(3)()CONH-CGGGELWKL.HEELLKK.FEELLKL.AEERLKK. L-CONH(2)()?(2)](2). Removal of the iron porphyrin macrocycle from the high dielectric aqueous environment and sequestration within the hydrophobic core of the H10A24 maquette raises the equilibrium reduction midpoint potential by 36-138 mV depending on the hydrophobicity of the metalloporphyrin structure. By incorporating various natural and synthetic metalloporphyrins into a single protein scaffold, we demonstrate a 300-mV range in reduction potential modulation due to the electron-donating/withdrawing character of the peripheral macrocycle substituents. Solution pH is used to modulate the metalloporphyrin reduction potential by 160 mV, regardless of the macrocycle architecture, by controlling the protonation state of the glutamate involved in partial charge compensation of the ferric heme. Attempts to control the reduction potential by inserting charged amino acids into the hydrophobic core at close proximity to the metalloporphyrin lead to varied success, with H10A24-L13E lowering the E(m8.5) by 40 mV, H10A24-E11Q raising it by 50 mV, and H10A24-L13R remaining surprisingly unaltered. Modifying the charge of the adjacent metalloporphyrin, +1 for iron(III) protoporphyrin IX or neutral for zinc(II) protoporphyrin IX resulted in a loss of 70 mV [Fe(III)PPIX](+) - [Fe(III)PPIX](+) interaction observed in maquettes. Using these factors in combination, we illustrate a 435-mV variation of the metalloporphyrin reduction midpoint potential in a simple heme maquette relative to the about 800-mV range observed for natural cytochromes. Comparison between the reduction potentials of the heme maquettes and other de novo designed heme proteins reveals global trends in the E(m) values of synthetic cytochromes.
机译:实验研究了使用功能强大,特征明确的血红素蛋白模型,合成蛋白支架H10A24 [?CH(3)()CONH-CGGGELWKL.HEELLKK.FEELLKL.AEERLKK)对金属卟啉还原电位调节的各种机制的影响。 L-CONH(2)()?(2)](2)。从高介电的水性环境中除去卟啉铁大环,并在H10A24模压块的疏水核内螯合,取决于金属卟啉结构的疏水性,平衡还原中点电势提高36-138 mV。通过将各种天然和合成的金属卟啉掺入单个蛋白质支架中,我们证明了由于外围大环取代基的给电子/吸电子特性,在还原电位调节中处于300 mV的范围。通过控制参与血红素铁部分电荷补偿的谷氨酸的质子化状态,无论大环结构如何,溶液pH值均可将金属卟啉还原电位调节至160 mV。试图通过将带电荷的氨基酸插入金属卟啉附近的疏水核中来控制还原电位的方法取得了不同的成功,H10A24-L13E将E(m8.5)降低了40 mV,H10A24-E11Q将其提高了50 mV ,而H10A24-L13R却保持不变。修改相邻金属卟啉的电荷,铁(III)原卟啉IX的电荷为+1或锌(II)原卟啉IX的中性的电荷导致损失70 mV [Fe(III)PPIX](+)-[Fe(III)PPIX在金属模型中观察到](+)相互作用。结合使用这些因素,我们说明了相对于天然细胞色素观察到的约800mV范围而言,简单血红素金属网中金属卟啉还原中点电位的435mV变化。血红素样板和其他从头设计的血红素蛋白的还原电位之间的比较揭示了合成细胞色素E(m)值的全球趋势。

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