论文标题

从激进对机理的角度来看,生物学中的磁场效应

Magnetic field effects in biology from the perspective of the radical pair mechanism

论文作者

Zadeh-Haghighi, Hadi, Simon, Christoph

论文摘要

大量研究的研究表明,弱磁场可以显着影响包括植物,动物和人类在内的各种生物系统。但是,这些现象背后的基本机制仍然难以捉摸。值得注意的是,与这些作用有关的磁能比热能小得多。在这里,我们回顾了这些观察结果,现在有数百个观察结果,我们建议通过激进对机制提供可行的解释,该机制涉及电子和天然发生的瞬时自由基分子的量子动力学。尽管在鸟类磁受体的背景下对激进对机理进行了详细的研究,但此处综述的研究表明,磁敏感在整个生物学过程中广泛存在。我们回顾了对各种生理功能的磁场效应,并根据施加的磁场的类型(即静态,低磁场和振荡磁场以及同位素效应)组织它们。然后,我们回顾了自由基对机理作为描述磁场效应的潜在统一模型,我们讨论了可能构成自由基对的合理候选分子。我们回顾了最近的研究,该研究表明,激进对的量子性质为氙麻醉,锂对昼夜节律时钟的影响,磁场和锂作用的影响提供了有希望的解释,以及对神经发生和微管组装的影响。最后,我们在这个令人兴奋的量子生物学领域中讨论了与磁场弱效应相关的量子生物学的新领域的未来研究线。

A large and growing body of research shows that weak magnetic fields can significantly influence various biological systems, including plants, animals, and humans. However, the underlying mechanisms behind these phenomena remain elusive. It is remarkable that the magnetic energies implicated in these effects are much smaller than thermal energies. Here we review these observations, of which there are now hundreds, and we suggest that a viable explanation is provided by the radical pair mechanism, which involves the quantum dynamics of the electron and nuclear spins of naturally occurring transient radical molecules. While the radical pair mechanism has been studied in detail in the context of avian magnetoreception, the studies reviewed here show that magnetosensitivity is widespread throughout biology. We review magnetic field effects on various physiological functions, organizing them based on the type of the applied magnetic fields, namely static, hypomagnetic, and oscillating magnetic fields, as well as isotope effects. We then review the radical pair mechanism as a potential unifying model for the described magnetic field effects, and we discuss plausible candidate molecules that might constitute the radical pairs. We review recent studies proposing that the quantum nature of the radical pairs provides promising explanations for xenon anesthesia, lithium effects on hyperactivity, magnetic field and lithium effects on the circadian clock, and hypomagnetic field effects on neurogenesis and microtubule assembly. We conclude by discussing future lines of investigation in this exciting new area of quantum biology related to weak magnetic field effects.

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