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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Magnetic field effects on coenzyme B-12- and B-6-dependent lysine 5,6-aminomutase: switching of the J-resonance through a kinetically competent radical-pair intermediate
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Magnetic field effects on coenzyme B-12- and B-6-dependent lysine 5,6-aminomutase: switching of the J-resonance through a kinetically competent radical-pair intermediate

机译:辅酶B-12-和B-6依赖性赖氨酸的磁场效应5,6-氨基酶:通过动力学主管的自由基中间体切换J谐振

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The environmental magnetic field is beneficial to migratory bird navigation through the radical-pair mechanism. One of the continuing challenges in understanding how magnetic fields may perturb biological processes is that only a very few field-sensitive examples have been explored despite the prevalence of radical pairs in enzymatic reactions. We show that the reaction of adenosylcobalamin- and pyridoxal-5'-phosphate-dependent lysine 5,6-aminomutase proceeds via radical-pair intermediates and is magnetic field dependent. The 5'-deoxyadenosyl radical from adenosylcobalamin abstracts a C5(H) from the substrate to yield a {cob(II) alamin - substrate} radical pair wherein the large spin-spin interaction (2J = 8000 gauss) locks the radical pair in a triplet state, as evidenced by electron paramagnetic resonance spectroscopy. Application of an external magnetic field in the range of 6500 to 8500 gauss triggers intersystem crossing to the singlet {cob(II) alamin - substrate} radical-pair state. Spin-conserved H back-transfer from deoxyadenosine to the substrate radical yields a singlet {cob(II) alamin-5'-deoxyadenosyl} radical pair. Spin-selective recombination to adenosylcobalamin decreased the enzyme catalytic efficiency k(cat)/K-m by 16% at 7600 gauss. As a mechanistic probe, observation of magnetic field effects successfully demonstrates the presence of a kinetically significant radical pair in this enzyme. The study of a pronounced high-field level-crossing characteristic through an immobilized radical pair with a constant exchange interaction deepens our understanding of how a magnetic field may interact with an enzyme.
机译:环境磁场是利益通过自由基对机构的迁移鸟导航。理解磁场如何扰乱生物过程的持续挑战之一是尽管酶促反应中的自由基对的普遍性,但只有很少的场敏感的实施例。我们表明,腺苷钴胺和吡哆醛-5'-磷酸依赖性赖氨酸5,6-氨基酶的反应通过自由基对中间体进行,并且是偏离的磁场。来自腺苷钴胺素的5'-脱氧腺苷摘自来自基材的C5(H),得到{COB(II)Alamin - 基材},其中大的旋转旋转相互作用(2J = 8000Ga)锁定了一个自由基对如电子顺磁共振光谱所证明的三重态状态。外部磁场在6500至8500高斯的范围内的应用触发到单线时间的间隙{COB(II)Alamin - 衬底}自由基对状态。从脱氧腺苷的旋转保存H后转移到底物基底产生单次单态{COB(II)Alamin-5'-脱氧腺苷}自由基对。旋转选择性重组到腺苷钴胺素降低了7600高斯的酶催化效率K(猫)/ K-M×16%。作为机械探头,磁场效果的观察成功地证明了在该酶中的动力学显着的自由基对的存在。通过固定的自由基对具有恒定交换相互作用的明显高场平交叉特性的研究深化了我们对磁场如何与酶相互作用的理解。

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