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Computational Insights into Five- versus Six-CoordinateIron Center in Ferrous Soybean Lipoxygenase

机译:五坐标与六坐标的计算见解亚铁大豆脂氧合酶中的铁中心

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摘要

Soybean lipoxygenase (SLO) serves as a prototype for fundamental understanding of hydrogen tunneling in enzymes. Its reactivity depends on the active site structure around a mononuclear, nonheme iron center. The available crystal structures indicate five-coordinate iron, while magnetic circular dichroism experiments suggest significant populations of both five-coordinate (5C) and six-coordinate (6C) iron in ferrous SLO. Quantum mechanical calculations of gas phase models produce only 6C geometries. Herein mixed quantum mechanical/molecular mechanical (QM/MM) calculations are employed to identify and characterize the 5C and 6C geometries. These calculations highlight the importance of the protein environment, particularly two Gln residues in a hydrogen-bonding network with Asn694, the ligand that can dissociate. This hydrogen-bonding network is similar in both geometries, but twisting of a dihedral angle in Asn694 moves its oxygen away from the iron in the 5C geometry. These insights are important for future simulations of SLO.
机译:大豆脂氧合酶(SLO)作为原型,可基本理解酶中的氢隧穿。它的反应性取决于单核非血红素铁中心周围的活性位点结构。可用的晶体结构指示五坐标铁,而磁性圆二色性实验表明在亚铁SLO中大量存在五坐标(5C)和六坐标(6C)铁。气相模型的量子力学计算仅产生6C几何形状。在本文中,采用混合量子力学/分子力学(QM / MM)计算来识别和表征5C和6C几何形状。这些计算突显了蛋白质环境的重要性,特别是与可分离的配体Asn694形成氢键网络中的两个Gln残基。这种氢键网络在两个几何结构中都相似,但是在Asn694中,二面角的扭曲会使5C几何结构中的氧远离铁。这些见解对于以后的SLO模拟非常重要。

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