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渡り鳥の高感度磁気センサ一を模倣したスピン制御の可能性

机译:旋转控制模仿候鸟高灵敏度磁传感器的可能性

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摘要

Many living things have high sensitivity to specific signals; e.g., bacteria, plants, and animals have been reported to receive and use eartH's magnetic field (faint field of ca. 50 μT). The possibility that the blue-light photoreceptor protein, cryptochrome, is one of the highly sensitive magnetic receptors has been strongly suggested. The mechanism responsible for this is presumed to be as follows; when flavin adenine dinucleotide (FAD) in cryptochrome is irradiated with blue-light, electron transfer occurs from tryptophan that is charge-separated, and the consequent radical pair induces the efficiency of the reaction to be detected, albeit with a weak magnetic field. By using such magnetic receptors in the retina, avians (birds) are assumed to be able to migrate in the correct direction. Here, the historic background for the radical pair mechanism and recent research on both natural and artificial systems related to flavo-proteins are introduced. The forming processes of radical pairs differed between flavoproteins and artificial systems, which were the focus of this study. The latter system was expected to provide other opportunities for precisely controlling the placement. The avian magnetic compass is currently being actively investigated in the field of "quantum biology." I believe biomimetic magnetic sensors can be constructed and applied in the detection of disasters with geomagnetic anomalies and in areas involving energy issues in the future.
机译:许多生物对特定信号具有很高的敏感性。据报道,例如细菌,植物和动物会接收和使用eartH的磁场(大约50μT的微弱磁场)。强烈提出了蓝光感光蛋白隐色是高度敏感的磁性受体之一的可能性。推测造成这种情况的机制如下:当用蓝光照射隐色染料中的黄素腺嘌呤二核苷酸(FAD)时,会从色氨酸中分离出电荷进行电子转移,因此,尽管磁场很弱,但自由基对仍可感应到反应的效率。通过在视网膜中使用这种磁性受体,可以认为禽类(鸟类)能够朝正确的方向迁移。在这里,介绍了自由基配对机制的历史背景以及与黄素蛋白相关的天然和人工系统的最新研究。黄酮蛋白和人工系统之间自由基对的形成过程不同,这是本研究的重点。希望后者为精确控制布局提供其他机会。禽类磁罗经目前正在“量子生物学”领域中被积极研究。我相信仿生磁传感器可以被构造并应用于未来探测具有地磁异常的灾害以及涉及能源问题的领域。

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