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首页> 外文期刊>Chemistry & biodiversity >Molecular Dynamics Simulation of Dioxygen Pathways through Mini Singlet Oxygen Generator (miniSOG), a Genetically Encoded Marker and Killer Protein
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Molecular Dynamics Simulation of Dioxygen Pathways through Mini Singlet Oxygen Generator (miniSOG), a Genetically Encoded Marker and Killer Protein

机译:通过迷你单线态氧气发生器(miniSOG),遗传编码的标记和杀手蛋白的双氧通路的分子动力学模拟

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In this work, molecular dynamics (MD) simulations of the permeation of proteins by small gases of biological significance have been extended from gas carrier, sensor, and enzymatic proteins to genetically encoded tags and killer proteins. To this end, miniSOG was taken as an example of current high interest, using a biased form of MD, called random-acceleration MD. Various egress gates and binding pockets for dioxygen, as an indistinguishable mimic of singlet dioxygen, were found on both above and below the isoalloxazine plane of the flavin mononucleotide cofactor in miniSOG. Of such gates and binding pockets, those lying within two opposite cones, coaxial with a line normal to the isoalloxazine plane, and with the vertex at the center of such a plane are those most visited by the escaping gas molecule. Out of residues most capable of quenching O-1(2), Y30, lying near the base of one such a cone, and H85, near the base of the opposite cone, are held to be most responsible for the reduced quantum yield of O-1(2) with folded miniSOG with respect to free flavin mononucleotide in solution.
机译:在这项工作中,对具有生物学意义的小分子气体渗透蛋白质的分子动力学(MD)模拟已从气体载体,传感器和酶促蛋白质扩展到遗传编码的标签和杀手蛋白质。为此,使用有偏差的MD形式(称为随​​机加速MD)将miniSOG视为当前高度关注的示例。在miniSOG的黄素单核苷酸辅因子的异恶嗪平面的上方和下方,都发现了作为单线态双氧分子不可区分的模拟物的各种双氧门和结合口袋。在这样的门和结合袋中,位于两个相对的锥体内且与异四恶嗪平面垂直的线同轴且顶点在该平面的中心处的是那些逃逸的气体分子最多访问的那些。在最有能力淬灭O-1(2)的残基中,位于一个圆锥体底部附近的Y30和位于相反圆锥体底部附近的H85被认为是造成O量子产率降低的主要原因。 -1(2)相对于溶液中的游离黄素单核苷酸具有折叠的miniSOG。

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