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Magnetically sensitive light-induced reactions in cryptochrome are consistent with its proposed role as a magnetoreceptor

机译:隐色染料中的磁敏感光诱导反应与其拟议的磁受体作用一致

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摘要

Among the biological phenomena that fall within the emerging field of “quantum biology” is the suggestion that magnetically sensitive chemical reactions are responsible for the magnetic compass of migratory birds. It has been proposed that transient radical pairs are formed by photo-induced electron transfer reactions in cryptochrome proteins and that their coherent spin dynamics are influenced by the geomagnetic field leading to changes in the quantum yield of the signaling state of the protein. Despite a variety of supporting evidence, it is still not clear whether cryptochromes have the properties required to respond to magnetic interactions orders of magnitude weaker than the thermal energy, kBT. Here we demonstrate that the kinetics and quantum yields of photo-induced flavin—tryptophan radical pairs in cryptochrome are indeed magnetically sensitive. The mechanistic origin of the magnetic field effect is clarified, its dependence on the strength of the magnetic field measured, and the rates of relevant spin-dependent, spin-independent, and spin-decoherence processes determined. We argue that cryptochrome is fit for purpose as a chemical magnetoreceptor.
机译:属于“量子生物学”新兴领域的生物学现象之一是,磁敏感的化学反应是候鸟磁性罗盘的原因。已经提出,通过隐色蛋白质中的光诱导电子转移反应形成瞬态自由基对,并且它们的相干自旋动力学受到地磁场的影响,从而导致蛋白质信号状态的量子产率发生变化。尽管有各种各样的支持证据,但尚不清楚隐色染料是否具有响应磁性相互作用所需的特性,其强度要比热能kBT弱几个数量级。在这里,我们证明了隐色染料中光诱导的黄素-色氨酸自由基对的动力学和量子产率确实对磁性敏感。阐明了磁场效应的机理起源,它取决于所测量的磁场强度,并确定了相关的自旋相关,自旋独立和自旋退相干过程的速率。我们认为隐色染料适合用作化学磁受体。

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