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基于自由基对的磁受体通过自由基清除作用放大:对自旋弛豫的抗性。

Radical-Pair-Based Magnetoreception Amplified by Radical Scavenging: Resilience to Spin Relaxation.

作者信息

Kattnig Daniel R

机构信息

Living Systems Institute and Department of Physics, University of Exeter , Stocker Road, Exeter, Devon, EX4 4QD, United Kingdom.

出版信息

J Phys Chem B. 2017 Nov 9;121(44):10215-10227. doi: 10.1021/acs.jpcb.7b07672. Epub 2017 Oct 26.

Abstract

Birds and several other species are equipped with the remarkable ability to sense the geomagnetic field for the purpose of navigation and orientation. The primary detection mechanism of this compass sense is uncertain but appears to originate from a truly quantum process involving spin-correlated radical pairs. In order to elicit sensitivity to weak magnetic fields, such as the Earth's magnetic field, the underlying spin dynamics must be protected from fast decoherence. In this work, we elucidate the effects of spin relaxation on a recently suggested reaction scheme involving three radicals, instead of a radical pair, doublet-quartet interconversion under magnetic interactions, and a spin-selective scavenging reaction. We show that, besides giving rise to a vastly enhanced reaction anisotropy, this extended reaction scheme is more resilient to spin relaxation than the conventional radical pair mechanism. Surprisingly, the anisotropic magnetic field effect can be enhanced by fast spin relaxation in one of the radicals of the primary pair. We discuss this finding in the context of magnetoreception. Radical scavenging can protect the spin system against fast spin relaxation in one of the radicals, thereby providing a credible model to the involvement of fast relaxing radical pairs, such as FADH/O, in radical-pair based magnetoreception. This finding will help explain behavioral observations that seem incompatible with the previously proposed flavin semiquinone/tryptophanyl radical pair.

摘要

鸟类和其他一些物种具备非凡的能力,能够感知地磁场以用于导航和定向。这种罗盘感的主要检测机制尚不确定,但似乎源于一个涉及自旋相关自由基对的真正量子过程。为了引发对弱磁场(如地球磁场)的敏感性,潜在的自旋动力学必须免受快速退相干的影响。在这项工作中,我们阐明了自旋弛豫对最近提出的一个反应方案的影响,该方案涉及三个自由基而非一个自由基对、磁相互作用下的双重态 - 四重态相互转换以及一个自旋选择性清除反应。我们表明,除了产生大幅增强的反应各向异性外,这个扩展的反应方案比传统的自由基对机制对自旋弛豫更具弹性。令人惊讶的是,初级对中一个自由基的快速自旋弛豫可以增强各向异性磁场效应。我们在磁感受的背景下讨论这一发现。自由基清除可以保护自旋系统免受其中一个自由基的快速自旋弛豫影响,从而为快速弛豫的自由基对(如FADH/O)参与基于自由基对的磁感受提供了一个可信的模型。这一发现将有助于解释那些似乎与先前提出的黄素半醌/色氨酸基自由基对不相容的行为观察结果。

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