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Neurometric amplitude-modulation detection threshold in the guinea-pig ventral cochlear nucleus

机译:豚鼠腹侧耳蜗核的神经测量振幅调制检测阈值

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摘要

Amplitude modulation (AM) is a pervasive feature of natural sounds. Neural detection and processing of modulation cues is behaviourally important across species. Although most ecologically relevant sounds are not fully modulated, physiological studies have usually concentrated on fully modulated (100% modulation depth) signals. Psychoacoustic experiments mainly operate at low modulation depths, around detection threshold (∼5% AM). We presented sinusoidal amplitude-modulated tones, systematically varying modulation depth between zero and 100%, at a range of modulation frequencies, to anaesthetised guinea-pigs while recording spikes from neurons in the ventral cochlear nucleus (VCN). The cochlear nucleus is the site of the first synapse in the central auditory system. At this locus significant signal processing occurs with respect to representation of AM signals. Spike trains were analysed in terms of the vector strength of spike synchrony to the amplitude envelope. Neurons showed either low-pass or band-pass temporal modulation transfer functions, with the proportion of band-pass responses increasing with increasing sound level. The proportion of units showing a band-pass response varies with unit type: sustained chopper (CS) > transient chopper (CT) > primary-like (PL). Spike synchrony increased with increasing modulation depth. At the lowest modulation depth (6%), significant spike synchrony was only observed near to the unit's best modulation frequency for all unit types tested. Modulation tuning therefore became sharper with decreasing modulation depth. AM detection threshold was calculated for each individual unit as a function of modulation frequency. Chopper units have significantly better AM detection thresholds than do primary-like units. AM detection threshold is significantly worse at 40 dB vs. 10 dB above pure-tone spike rate threshold. Mean modulation detection thresholds for sounds 10 dB above pure-tone spike rate threshold at best modulation frequency are (95% CI) 11.6% (10.0–13.1) for PL units, 9.8% (8.2–11.5) for CT units, and 10.8% (8.4–13.2) for CS units. The most sensitive guinea-pig VCN single unit AM detection thresholds are similar to human psychophysical performance (∼3% AM), while the mean neurometric thresholds approach whole animal behavioural performance (∼10% AM).
机译:调幅(AM)是自然声音的普遍特征。在整个物种中,神经检测和调制提示的处理在行为上很重要。尽管大多数与生态相关的声音并未完全调制,但生理研究通常集中在完全调制(100%调制深度)信号上。心理声学实验主要在低调制深度下进行,大约在检测阈值(约5%AM)附近。我们向麻醉的豚鼠展示了正弦振幅调制的音调,在一定的调制频率范围内,系统地将调制深度在零和100%之间系统地变化,同时记录了来自腹侧耳蜗核(VCN)中神经元的尖峰。耳蜗核是中央听觉系统中第一个突触的部位。在这个位置,就AM信号的表示而言,发生了重要的信号处理。根据与振幅包络同步的峰值矢量强度分析了峰值串。神经元显示出低通或带通时间调制传递函数,带通响应的比例随声音水平的增加而增加。显示带通响应的单位比例随单位类型而变化:持续斩波(CS)>瞬时斩波(CT)>初级像(PL)。尖峰同步随着调制深度的增加而增加。在最低调制深度(6%)下,对于所有测试的单元类型,仅在接近单元的最佳调制频率时才观察到明显的尖峰同步。因此,随着调制深度的减小,调制调谐变得更加清晰。计算每个单独单元的AM检测阈值,作为调制频率的函数。斩波器单元的AM检测阈值明显优于初级单元。 AM检测阈值在40 dB时比在纯音尖峰率阈值之上的10 dB时差得多。在最佳调制频率下,比纯音尖峰率阈值高10 dB的声音的平均调制检测阈值为PL单元为(95%CI)11.6%(10.0-13.1),CT单元为9.8%(8.2-11.5)和10.8% CS单位为(8.4-13.2)。最敏感的豚鼠VCN单单位AM检测阈值类似于人类的心理生理表现(〜3%AM),而平均神经测量阈值接近整个动物的行为表现(〜10%AM)。

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