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Multiple Arithmetic Operations in a Single Neuron: The Recruitment of Adaptation Processes in the Cricket Auditory Pathway Depends on Sensory Context

机译:单个神经元中的多个算术运算:Audit听觉通路中适应过程的募集取决于感觉语境

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摘要

Sensory pathways process behaviorally relevant signals in various contexts and therefore have to adapt to differing background conditions. Depending on changes in signal statistics, this adjustment might be a combination of two fundamental computational operations: subtractive adaptation shifting a neuron's threshold and divisive gain control scaling its sensitivity. The cricket auditory system has to deal with highly stereotyped conspecific songs at low carrier frequencies, and likely much more variable predator signals at high frequencies. We proposed that due to the differences between the two signal classes, the operation that is implemented by adaptation depends on the carrier frequency. We aimed to identify the biophysical basis underlying the basic computational operations of subtraction and division.We performed in vivo intracellular and extracellular recordings in a first-order auditory interneuron (AN2) that is active in both mate recognition and predator avoidance. We demonstrated subtractive shifts at the carrier frequency of conspecific songs and division at the predator-like carrier frequency. Combined application of current injection and acoustic stimuli for each cell allowed us to demonstrate the subtractive effect of cell-intrinsic adaptation currents. Pharmacological manipulation enabled us to demonstrate that presynaptic inhibition is most likely the source of divisive gain control.We showed that adjustment to the sensory context can depend on the class of signals that are relevant to the animal. We further revealed that presynaptic inhibition is a simple mechanism for divisive operations. Unlike other proposed mechanisms, it is widely available in the sensory periphery of both vertebrates and invertebrates.
机译:感觉途径在各种情况下处理与行为相关的信号,因此必须适应不同的背景条件。根据信号统计的变化,此调整可能是两个基本计算操作的组合:减法适应性调整神经元的阈值和除法增益控制缩放其灵敏度。板球听觉系统必须在低载波频率下处理高度定型的特定歌曲,并在高频下处理更多可变的掠食者信号。我们提出,由于两个信号类别之间的差异,通过自适应实现的操作取决于载波频率。我们旨在确定减法和除法基本计算操作基础的生物物理基础。我们在一级听觉中间神经元(AN2)中进行了体内细胞内和细胞外记录,该神经元在伴侣识别和捕食者规避中都非常活跃。我们证明了在特定歌曲的载波频率处的减法频移和在类似捕食者的载波频率处的除法。电流注入和每个细胞的声刺激的组合应用使我们能够证明细胞固有适应电流的减法作用。药理学操作使我们能够证明突触前抑制很可能是分裂性增益控制的来源。我们表明,调节感觉环境可能取决于与动物相关的信号类别。我们进一步揭示了突触前抑制是分裂操作的简单机制。与其他提出的机制不同,它在脊椎动物和无脊椎动物的感官周围均广泛可用。

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