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Zebrafish and medaka offer insights into the neurobehavioral correlates of vertebrate magnetoreception

机译:斑马鱼和青aka提供洞察脊椎动物磁感受的神经行为相关性。

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摘要

An impediment to a mechanistic understanding of how some species sense the geomagnetic field (“magnetoreception”) is the lack of vertebrate genetic models that exhibit well-characterized magnetoreceptive behavior and are amenable to whole-brain analysis. We investigated the genetic model organisms zebrafish and medaka, whose young stages are transparent and optically accessible. In an unfamiliar environment, adult fish orient according to the directional change of a magnetic field even in darkness. To enable experiments also in juveniles, we applied slowly oscillating magnetic fields, aimed at generating conflicting sensory inputs during exploratory behavior. Medaka (but not zebrafish) increase their locomotor activity in this assay. Complementary brain  activity mapping reveals neuronal activation in the lateral hindbrain during magnetic stimulation. These comparative data support magnetoreception in teleosts, provide evidence for a light-independent mechanism, and demonstrate the usefulness of zebrafish and medaka as genetic vertebrate models for studying the biophysical and neuronal mechanisms underlying magnetoreception.
机译:对某些物种如何感测地磁场(“磁感受”)进行机械理解的障碍是缺乏脊椎动物遗传模型,这些模型不能很好地表现出磁感应行为,并且可以进行全脑分析。我们研究了遗传模型生物斑马鱼和青aka,它们的幼年阶段是透明的并且在光学上可访问。在不熟悉的环境中,即使在黑暗中,成鱼也要根据磁场的方向变化进行定向。为了在少年中也能进行实验,我们施加了缓慢振荡的磁场,旨在在探索行为期间产生相互矛盾的感觉输入。 Medaka(而不是斑马鱼)在此测定法中增加其运动活性。补充性大脑活动图谱揭示了在磁刺激过程中外侧后脑神经元的激活。这些比较数据支持硬骨鱼的磁感受,为光独立机制提供了证据,并证明了斑马鱼和青aka作为遗传脊椎动物模型用于研究磁感受背后的生物物理和神经元机制的有用性。

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