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Central Cellular Mechanisms Underlying Temperature-Dependent Changes in the Goldfish Startle-Escape Behavior

机译:金鱼惊逃行为中温度依赖性变化的基础细胞中心机制。

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摘要

Activation of auditory afferents on the lateral dendrite of the Mauthner (M)-cell triggers an escape response (C-start) in goldfish. To study distinct behavioral changes and their physiological correlates on a cellular level we examined the effect of acute changes of temperature on M-cell membrane properties and intracellular responses to sound clicks and on C-start kinematics and behavior, focusing on threshold and initial escape direction, two properties determined on the M-cell level. Cooling slowed C-start motor performance, increasing response latency and decreasing peak velocity and peak acceleration, but increased the probability of triggering the escape. In addition, the likelihood of escapes in an inappropriate direction (e.g., responses toward the stimulus instead of away from it) increased at low temperatures. On a cellular level, cooling caused a distinct increase in input resistance of the M-cell and in the dendritic space constant for the auditory-evoked synaptic potentials. Moreover, cooling decreased the magnitude and delayed the onset of feedforward inhibition of the M-cell. These temperature-induced changes in the network and in the intrinsic M-cell properties combine to support behavioral hyperexcitability, but apparently also alter the directional decision-making process during an escape. More generally, our results illustrate that the balance between excitatory and inhibitory influences can determine the expression of a behavior and its modification and at the same time underline the significance of temperature for nervous system function and behavior.
机译:Mauthner(M)细胞的侧向枝晶上听觉传入的激活触发了金鱼的逃逸反应(C起始)。为了研究不同的行为变化及其在细胞水平上的生理相关性,我们研究了温度的急剧变化对M细胞膜特性和细胞内对声响的响应以及对C-start运动学和行为的影响,重点是阈值和初始逃逸方向,这是在M细胞级别上确定的两个属性。冷却减慢了C启动电机的性能,增加了响应等待时间,并降低了峰值速度和峰值加速度,但增加了触发逃逸的可能性。另外,在低温下,向不适当方向逃逸的可能性(例如,对刺激的反应而不是远离刺激的反应)增加了。在细胞水平上,冷却导致听觉诱发的突触电位的M细胞输入电阻和树突空间常数明显增加。而且,冷却降低了幅度并延迟了M细胞前馈抑制的开始。网络和固有M细胞特性的这些温度诱导的变化相结合以支持行为超兴奋性,但显然也改变了逃跑过程中的方向决策过程。更普遍地说,我们的结果表明,兴奋性和抑制性影响之间的平衡可以确定行为的表达及其修饰,同时强调温度对神经系统功能和行为的重要性。

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