Yao Haishan, Shen Yaosong, Dan Yang
Department of Molecular and Cell Biology, University of California, Berkeley, CA 94720, USA.
Proc Natl Acad Sci U S A. 2004 Apr 6;101(14):5081-6. doi: 10.1073/pnas.0302510101. Epub 2004 Mar 24.
Visual stimuli are known to induce various changes in the receptive field properties of adult cortical neurons, but the underlying mechanisms are not well understood. Repetitive pairing of stimuli at two orientations can induce a shift in cortical orientation tuning, with the direction and magnitude of the shift depending on the temporal order and interval between the pair. Although the temporal specificity of the effect on the order of tens of milliseconds strongly suggests spike-timing-dependent synaptic plasticity (STDP) as the underlying mechanism, it remains unclear whether the modification occurs within the cortex or at earlier stages of the visual pathway. In the present study, we examined the involvement of an intracortical mechanism in this functional modification. First, we measured interocular transfer of the shift induced by monocular conditioning. We found complete transfer of the effect at both the physiological and psychophysical levels, indicating that the modification occurs largely in the cortex. Second, we analyzed the spike timing of cortical neurons during conditioning and found it commensurate with the requirement of STDP. Finally, we compared the measured shift in orientation tuning with the prediction of a model circuit that exhibits STDP at intracortical connections. This model can account for not only the temporal specificity of the effect but also the dependence of the shift on both orientations in the conditioning pair. These results indicate that modification of intracortical connections is a key mechanism in the stimulus-timing-dependent plasticity in orientation tuning.
已知视觉刺激会在成年皮层神经元的感受野特性上引发各种变化,但其潜在机制尚未完全明晰。在两个方向上重复配对刺激可诱发皮层方向调谐的偏移,偏移的方向和幅度取决于配对刺激之间的时间顺序和间隔。尽管对几十毫秒时间顺序的效应的时间特异性强烈表明,依赖于尖峰时间的突触可塑性(STDP)是潜在机制,但仍不清楚这种修饰是发生在皮层内还是视觉通路的早期阶段。在本研究中,我们考察了皮层内机制在这种功能修饰中的作用。首先,我们测量了单眼条件刺激所诱发的偏移的两眼间传递。我们发现在生理和心理物理学水平上该效应都能完全传递,这表明这种修饰主要发生在皮层。其次,我们分析了条件刺激期间皮层神经元的尖峰时间,发现其与STDP的要求相符。最后,我们将测量到的方向调谐偏移与一个在皮层内连接表现出STDP的模型电路的预测结果进行了比较。该模型不仅可以解释效应的时间特异性,还能解释偏移对条件刺激对中两个方向的依赖性。这些结果表明,皮层内连接的修饰是方向调谐中依赖于刺激时间的可塑性的关键机制。