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本文引用的文献

1
Structure and function of the vertebrate magnetic sense.脊椎动物磁感觉的结构和功能。
Nature. 1997 Nov 27;390(6658):371-6. doi: 10.1038/37057.
2
Light-dependent magnetoreception in birds: increasing intensity of monochromatic light changes the nature of the response.鸟类中依赖光的磁感受:单色光强度增加会改变反应的性质。
Front Zool. 2007 Feb 15;4:5. doi: 10.1186/1742-9994-4-5.
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Magnetic compass in the cornea: local anaesthesia impairs orientation in a mammal.角膜中的磁罗盘:局部麻醉会损害哺乳动物的定向能力。
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On the use of magnets to disrupt the physiological compass of birds.关于使用磁铁扰乱鸟类生理罗盘的研究。
Phys Biol. 2006 Oct 4;3(3):220-31. doi: 10.1088/1478-3975/3/3/007.
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Bird navigation: what type of information does the magnetite-based receptor provide?鸟类导航:基于磁铁矿的感受器提供何种类型的信息?
Proc Biol Sci. 2006 Nov 22;273(1603):2815-20. doi: 10.1098/rspb.2006.3651.
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Magnetic intensity affects cryptochrome-dependent responses in Arabidopsis thaliana.磁场强度影响拟南芥中隐花色素依赖的反应。
Planta. 2007 Feb;225(3):615-24. doi: 10.1007/s00425-006-0383-0. Epub 2006 Sep 6.
7
The magnetic compass mechanisms of birds and rodents are based on different physical principles.鸟类和啮齿动物的磁罗盘机制基于不同的物理原理。
J R Soc Interface. 2006 Aug 22;3(9):583-7. doi: 10.1098/rsif.2006.0130.
8
Two different types of light-dependent responses to magnetic fields in birds.鸟类对磁场的两种不同类型的光依赖反应。
Curr Biol. 2005 Aug 23;15(16):1518-23. doi: 10.1016/j.cub.2005.07.037.
9
Magnetic orientation and magnetoreception in birds and other animals.鸟类及其他动物的磁定向与磁感受
J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2005 Aug;191(8):675-93. doi: 10.1007/s00359-005-0627-7. Epub 2005 May 11.
10
Magnetic compass orientation of migratory birds in the presence of a 1.315 MHz oscillating field.在1.315兆赫兹振荡场存在的情况下候鸟的磁罗盘定向
Naturwissenschaften. 2005 Feb;92(2):86-90. doi: 10.1007/s00114-004-0595-8. Epub 2004 Dec 22.

鸟类的磁感应:两种定向反应的不同物理过程。

Magnetoreception in birds: different physical processes for two types of directional responses.

作者信息

Wiltschko Roswitha, Stapput Katrin, Ritz Thorsten, Thalau Peter, Wiltschko Wolfgang

出版信息

HFSP J. 2007 May;1(1):41-8. doi: 10.2976/1.2714294/10.2976/1. Epub 2007 Mar 21.

DOI:10.2976/1.2714294/10.2976/1
PMID:19404459
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2645559/
Abstract

Migratory orientation in birds involves an inclination compass based on radical-pair processes. Under certain light regimes, however, "fixed-direction" responses are observed that do not undergo the seasonal change between spring and autumn typical for migratory orientation. To identify the underlying transduction mechanisms, we analyzed a fixed-direction response under a combination of 502 nm turquoise and 590 nm yellow light, with migratory orientation under 565 nm green light serving as the control. High-frequency fields, diagnostic for a radical-pair mechanism, disrupted migratory orientation without affecting fixed-direction responses. Local anaesthesia of the upper beak where magnetite is found in birds, in contrast, disrupted the fixed-direction response without affecting migratory orientation. The two types of responses are thus based on different physical principles, with the compass response based on a radical pair mechanism and the fixed-direction responses probably originating in magnetite-based receptors in the upper beak. Directional input from these receptors seems to affect the behavior only when the regular inclination compass does not work properly. Evolutionary considerations suggest that magnetite-based receptors may represent an ancient mechanism that, in birds, has been replaced by the modern inclination compass based on radical-pair processes now used for directional orientation.

摘要

鸟类的迁徙定向涉及基于自由基对过程的倾斜罗盘。然而,在某些光照条件下,会观察到“固定方向”反应,这种反应不会经历典型的春季和秋季迁徙定向的季节性变化。为了确定潜在的转导机制,我们分析了在502纳米绿松石色光和590纳米黄色光组合下的固定方向反应,并将565纳米绿色光下的迁徙定向作为对照。对自由基对机制具有诊断性的高频场会扰乱迁徙定向,但不会影响固定方向反应。相比之下,对鸟类上喙(鸟类体内发现磁铁矿的部位)进行局部麻醉会扰乱固定方向反应,但不会影响迁徙定向。因此,这两种反应基于不同的物理原理,罗盘反应基于自由基对机制,而固定方向反应可能起源于上喙中基于磁铁矿的受体。只有当常规倾斜罗盘不能正常工作时,来自这些受体的定向输入似乎才会影响行为。进化方面的考虑表明,基于磁铁矿的受体可能代表一种古老的机制,在鸟类中,这种机制已被现在用于定向的基于自由基对过程的现代倾斜罗盘所取代。