Wallace M N, Palmer A R
MRC Institute of Hearing Research, University Park, Nottingham NG7 2RD, UK.
Exp Brain Res. 2008 Jan;184(2):179-91. doi: 10.1007/s00221-007-1092-z. Epub 2007 Sep 8.
In visual and somatosensory cortex there are important functional differences between layers. Although it is difficult to identify laminar borders in the primary auditory cortex (AI) laminar differences in functional processing are still present. We have used electrodes inserted orthogonal to the cortical surface to compare the response properties of cells in all six layers of AI in anaesthetised guinea pigs. Cells were stimulated with short tone pips and two conspecific vocalizations. When frequency response areas were measured for 248 units the tuning bandwidth was broader for units in the deep layers. The mean Q (10) value for tuning in layers IV-VI was significantly smaller (Mann-Whitney test P < 0.001) than for layers I-III. When response latencies were measured, the shortest latencies were found in layer V and the mean latency in this layer was shorter than in any of the more superficial layers (I-IV) when compared with a Tukey analysis of variance (P < 0.005). There were also laminar differences in the best threshold with layer V having the highest mean value. The mean best threshold for layer V (32.7 dB SPL) was significantly different from the means for layers II (25.5 dB SPL) and III (26.3 dB SPL). The responses to two vocalizations also varied between layers: the response to the first phrase of a chutter was smaller and about 10 ms later in the deep layers than in layers II and III. By contrast, the response to an example of whistle was stronger in the deep layers. These results are consistent with a model of AI that involves separate inputs to different layers and descending outputs from layers V/VI (to thalamus and brainstem) that are different from the output from layers II/III (to ipsilateral cortex).
在视觉和躯体感觉皮层中,各层之间存在重要的功能差异。虽然在初级听觉皮层(AI)中很难识别层界,但功能处理方面的层间差异仍然存在。我们使用垂直于皮层表面插入的电极,比较了麻醉豚鼠AI所有六层中细胞的反应特性。用短音爆和两种同种发声刺激细胞。当测量248个单位的频率反应区域时,深层单位的调谐带宽更宽。IV - VI层调谐的平均Q(10)值显著小于I - III层(曼 - 惠特尼检验P < 0.001)。测量反应潜伏期时,最短潜伏期出现在V层,与Tukey方差分析相比,该层的平均潜伏期短于任何较浅层(I - IV层)(P < 0.005)。最佳阈值也存在层间差异,V层的平均最佳阈值最高。V层的平均最佳阈值(32.7 dB SPL)与II层(25.5 dB SPL)和III层(26.3 dB SPL)的平均值显著不同。对两种发声的反应在各层之间也有所不同:对颤音第一乐句的反应在深层比在II层和III层小且延迟约l0毫秒。相比之下,对哨声示例的反应在深层更强。这些结果与AI的模型一致,该模型涉及向不同层的单独输入以及V/VI层(至丘脑和脑干)与II/III层(至同侧皮层)不同的下行输出。