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亮氨酸99和亮氨酸115在血红素远端对来自大肠杆菌的血红素调节磷酸二酯酶的自动氧化和氧化还原电位的关键作用。

Critical roles of Leu99 and Leu115 at the heme distal side in auto-oxidation and the redox potential of a heme-regulated phosphodiesterase from Escherichia coli.

作者信息

Yokota Nao, Araki Yasuyuki, Kurokawa Hirofumi, Ito Osamu, Igarashi Jotaro, Shimizu Toru

机构信息

Institute of Multidisciplinary Research for Advanced Materials, Tohoku University, Sendai, Japan.

出版信息

FEBS J. 2006 Mar;273(6):1210-23. doi: 10.1111/j.1742-4658.2006.05145.x.

Abstract

The heme-regulated phosphodiesterase from Escherichia coli (Ec DOS), which is a heme redox-dependent enzyme, is active with a ferrous heme but inactive with a ferric heme. Global structural changes including axial ligand switching and a change in the rigidity of the FG loop accompanying the heme redox change may be related to the dependence of Ec DOS activity on the redox state. Axial ligands such as CO, NO, and O2 act as inhibitors of Ec DOS because they interact with the ferrous heme complex. The X-ray crystal structure of the isolated heme-bound domain (Ec DosH) shows that Leu99, Phe113 and Leu115 indirectly and directly form a hydrophobic triad on the heme plane and that they should be located at or near the ligand access channel of the heme iron. We generated L99T, L99F, L115T, and L115F mutants of Ec DosH and examined their physicochemical characteristics, including auto-oxidation rates, O2 and CO binding kinetics, and redox potentials. The Fe(III) complex of the L115F mutant was unstable and had a Soret absorption spectrum located 5 nm lower than those of the wild-type and other mutants. Auto-oxidation rates of the mutants (0.049-0.33 min(-1)) were much higher than that of the wild-type (0.0063 min(-1)). Furthermore, the redox potentials of the former three mutants (23.1-34.6 mV versus SHE) were also significantly lower than that of the wild-type (63.9 mV versus SHE). Interaction between O2 and the L99F mutant was different from that in the wild-type, whereas CO binding rates of the mutants were similar to those of the wild-type. Thus, it appears that Leu99 and Leu115 are critical for determining the characteristics of heme iron. Finally, we discuss the roles of these amino-acid residues in the heme electronic states.

摘要

来自大肠杆菌的血红素调节磷酸二酯酶(Ec DOS)是一种依赖血红素氧化还原的酶,它与亚铁血红素结合时具有活性,而与高铁血红素结合时无活性。伴随血红素氧化还原变化的全局结构变化,包括轴向配体切换和FG环刚性的改变,可能与Ec DOS活性对氧化还原状态的依赖性有关。诸如CO、NO和O2等轴向配体作为Ec DOS的抑制剂,因为它们与亚铁血红素复合物相互作用。分离的血红素结合结构域(Ec DosH)的X射线晶体结构表明,Leu99、Phe113和Leu115在血红素平面上间接或直接形成一个疏水三联体,并且它们应该位于血红素铁的配体进入通道处或附近。我们构建了Ec DosH的L99T、L99F、L115T和L115F突变体,并检测了它们的物理化学特性,包括自动氧化速率、O2和CO结合动力学以及氧化还原电位。L115F突变体的Fe(III)复合物不稳定,其Soret吸收光谱比野生型和其他突变体的低5 nm。突变体的自动氧化速率(0.049 - 0.33 min(-1))比野生型(0.0063 min(-1))高得多。此外,前三个突变体的氧化还原电位(相对于标准氢电极,为23.1 - 34.6 mV)也明显低于野生型(相对于标准氢电极,为63.9 mV)。O2与L99F突变体之间的相互作用与野生型不同,而突变体的CO结合速率与野生型相似。因此,Leu99和Leu115似乎对于确定血红素铁的特性至关重要。最后,我们讨论了这些氨基酸残基在血红素电子态中的作用。

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