Zhang Li I, Tan Andrew Y Y, Schreiner Christoph E, Merzenich Michael M
Coleman Memorial Laboratory and W.M. Keck Foundation Center for Integrative Neuroscience, University of California, San Francisco, California 94143, USA.
Nature. 2003 Jul 10;424(6945):201-5. doi: 10.1038/nature01796.
The direction of frequency-modulated (FM) sweeps is an important temporal cue in animal and human communication. FM direction-selective neurons are found in the primary auditory cortex (A1), but their topography and the mechanisms underlying their selectivity remain largely unknown. Here we report that in the rat A1, direction selectivity is topographically ordered in parallel with characteristic frequency (CF): low CF neurons preferred upward sweeps, whereas high CF neurons preferred downward sweeps. The asymmetry of 'inhibitory sidebands', suppressive regions flanking the tonal receptive field (TRF) of the spike response, also co-varied with CF. In vivo whole-cell recordings showed that the direction selectivity already present in the synaptic inputs was enhanced by cortical synaptic inhibition, which suppressed the synaptic excitation of the non-preferred direction more than that of the preferred. The excitatory and inhibitory synaptic TRFs had identical spectral tuning, but with inhibition delayed relative to excitation. The spectral asymmetry of the synaptic TRFs co-varied with CF, as had direction selectivity and sideband asymmetry, and thus suggested a synaptic mechanism for the shaping of FM direction selectivity and its topographic ordering.
调频(FM)扫描的方向是动物和人类交流中一个重要的时间线索。在初级听觉皮层(A1)中发现了对FM方向具有选择性的神经元,但其拓扑结构及其选择性背后的机制在很大程度上仍不清楚。在此,我们报告在大鼠A1中,方向选择性与特征频率(CF)平行地按拓扑结构排列:低CF神经元偏好向上扫描,而高CF神经元偏好向下扫描。“抑制性边带”的不对称性,即尖峰反应的音调感受野(TRF)两侧的抑制区域,也与CF共同变化。体内全细胞记录表明,突触输入中已存在的方向选择性通过皮层突触抑制得到增强,这种抑制对非偏好方向的突触兴奋的抑制作用比对偏好方向更强。兴奋性和抑制性突触TRF具有相同的频谱调谐,但抑制相对于兴奋延迟。突触TRF的频谱不对称性与CF共同变化,与方向选择性和边带不对称性一样,因此提示了一种用于塑造FM方向选择性及其拓扑排列的突触机制。