Detection of a clamp-shaped conformation of a neuronal nitric oxide synthase construct by pulsed EPR.

IF 2.7 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Andrei V Astashkin, Yadav Prasad Gyawali, Ting Jiang, Huayu Zheng, Changjian Feng
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引用次数: 0

Abstract

Nitric oxide synthase (NOS) is an enzyme responsible for the production of nitric oxide in living organisms. Structurally, it is a homodimer composed of multiple domains connected by random coil tethers. The resulting structural flexibility, along with the diverse conformational states it enables, is essential for NOS function and remains an active area of investigations. Here, we studied the docking interactions between the reductase domains of NOS subunits. To probe these interactions, a nitroxide-based bifunctional spin label was attached to each T34C/S38C calmodulin (CaM) molecule bound to the CaM-binding region of the tether, which connects the oxygenase and flavin mononucleotide (FMN) domains in each subunit of the homodimeric oxygenase/FMN (oxyFMN) construct of rat neuronal NOS (nNOS). The magnetic dipole interaction between the spin labels was detected by 2 + 1 electron spin echo (ESE) methods. The experimental 2 + 1 ESE traces were interpreted using the Monte Carlo calculations of NOS conformational distributions. The results unequivocally show that at the estimated effective temperature of the frozen conformational distribution, Tef ≈ 200 K, a large proportion of the oxyFMN proteins (~ 55%) adopt a clamp-shaped conformation in which the FMN domains of different NOS subunits dock with each other. The stabilization energy of this docking complex (i.e., docking energy) was estimated in the model of isotropic interaction as - 7.2kTef ≈ - 2.9 kcal/mol. The identification of this clamp-shaped conformation suggests it as an intermediate structural state that may influence NOS catalytic efficiency by facilitating the FMN-heme interdomain electron transfer through constraining the conformational space accessible to the FMN domain as it approaches its docking positions at the heme domain.

脉冲EPR检测神经元一氧化氮合酶结构钳形构象。
一氧化氮合酶(NOS)是生物体内产生一氧化氮的一种酶。在结构上,它是由多个结构域通过随机线圈系链连接而成的同型二聚体。由此产生的结构灵活性,以及它所实现的多种构象状态,对于NOS功能至关重要,并且仍然是一个活跃的研究领域。在这里,我们研究了NOS亚基还原酶域之间的对接相互作用。为了探究这些相互作用,我们将一个基于氮氧化物的双功能自旋标签附加到连接大鼠神经元NOS (nNOS)同型二聚体加氧酶/FMN (oxyFMN)结构体中每个亚基加氧酶和黄素单核苷酸(FMN)结构域的系链上,这些系链与CaM结合区域结合。用2 + 1电子自旋回波(ESE)方法检测了自旋标签之间的磁偶极相互作用。利用NOS构象分布的蒙特卡罗计算解释了实验2 + 1 ESE迹线。结果明确表明,在冷冻构象分布的估计有效温度Tef≈200 K下,大部分氧FMN蛋白(~ 55%)采用不同NOS亚基的FMN结构域相互对接的钳形构象。在各向同性相互作用模型中,该对接配合物的稳定能(即对接能)估计为- 7.2kTef≈- 2.9 kcal/mol。这种钳形构象的鉴定表明,它是一种中间结构状态,可能通过限制FMN结构域接近其在血红素结构域的对接位置时可进入的构象空间,促进FMN-血红素结构域间的电子转移,从而影响NOS的催化效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biological Inorganic Chemistry
Journal of Biological Inorganic Chemistry 化学-生化与分子生物学
CiteScore
5.90
自引率
3.30%
发文量
49
审稿时长
3 months
期刊介绍: Biological inorganic chemistry is a growing field of science that embraces the principles of biology and inorganic chemistry and impacts other fields ranging from medicine to the environment. JBIC (Journal of Biological Inorganic Chemistry) seeks to promote this field internationally. The Journal is primarily concerned with advances in understanding the role of metal ions within a biological matrix—be it a protein, DNA/RNA, or a cell, as well as appropriate model studies. Manuscripts describing high-quality original research on the above topics in English are invited for submission to this Journal. The Journal publishes original articles, minireviews, and commentaries on debated issues.
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