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在斑马鱼幼虫中,热诱发游泳行为的全脑环路模型。

A Brain-wide Circuit Model of Heat-Evoked Swimming Behavior in Larval Zebrafish.

机构信息

Department of Molecular and Cellular Biology, Harvard University, Cambridge, MA 02138, USA.

The Rowland Institute at Harvard, Cambridge, MA 02142, USA.

出版信息

Neuron. 2018 May 16;98(4):817-831.e6. doi: 10.1016/j.neuron.2018.04.013. Epub 2018 May 3.

Abstract

Thermosensation provides crucial information, but how temperature representation is transformed from sensation to behavior is poorly understood. Here, we report a preparation that allows control of heat delivery to zebrafish larvae while monitoring motor output and imaging whole-brain calcium signals, thereby uncovering algorithmic and computational rules that couple dynamics of heat modulation, neural activity and swimming behavior. This approach identifies a critical step in the transformation of temperature representation between the sensory trigeminal ganglia and the hindbrain: A simple sustained trigeminal stimulus representation is transformed into a representation of absolute temperature as well as temperature changes in the hindbrain that explains the observed motor output. An activity constrained dynamic circuit model captures the most prominent aspects of these sensori-motor transformations and predicts both behavior and neural activity in response to novel heat stimuli. These findings provide the first algorithmic description of heat processing from sensory input to behavioral output.

摘要

热感觉提供了关键信息,但温度的表示形式如何从感觉转化为行为还知之甚少。在这里,我们报告了一种制备方法,该方法允许控制向斑马鱼幼虫输送热量,同时监测运动输出和全脑钙信号成像,从而揭示了将热调节、神经活动和游泳行为的动力学联系起来的算法和计算规则。这种方法确定了温度表示形式在感觉三叉神经节和后脑之间转换的一个关键步骤:简单的持续三叉神经刺激表示形式被转化为绝对温度以及后脑中温度变化的表示形式,这解释了观察到的运动输出。一个受活动约束的动态电路模型捕捉到了这些感觉-运动转换的最显著方面,并预测了对新热刺激的行为和神经活动的反应。这些发现提供了从感觉输入到行为输出的热处理的第一个算法描述。

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