Bardy C, Huang J Y, Wang C, Fitzgibbon T, Dreher B
Discipline of Anatomy and Histology, School of Medical Sciences and Bosch Institute (F13), The University of Sydney, Sydney, NSW 2006, Australia.
Neuroscience. 2009 Jan 23;158(2):951-68. doi: 10.1016/j.neuroscience.2008.09.057. Epub 2008 Oct 10.
In anesthetized and immobilized domestic cats, we have studied the effects of brief reversible inactivation (by cooling to 10 degrees C) of the ipsilateral or contralateral postero-temporal visual (PTV) cortices on: 1) the magnitude of spike-responses of neurons in striate cortex (cytoarchitectonic area 17, area V1) to optimized sine-wave modulated contrast-luminosity gratings confined to the classical receptive fields (CRFs) and 2) the relative strengths of modulation of CRF-induced spike-responses by gratings extending into the extra-classical receptive field (ECRF). Consistent with our previous reports (Bardy et al., 2006; Huang et al., 2007), inactivation of ipsilateral PTV cortex (presumed homologue of primate infero-temporal cortex) resulted in significant reversible changes (almost all substantial reductions) in the magnitude of spike-responses to CRF-confined stimuli in about half of the V1 neurones. Similarly, in half of the present sample, inactivation of ipsilateral PTV cortex resulted in significant reversible changes (in over 70% of cases, reduction) in the relative strength of ECRF modulation of the CRF-induced spike-responses. By contrast, despite the fact that receptive fields of all V1 cells tested were located within 5 degrees of representation of the zero vertical meridian, inactivation of contralateral PTV cortex only rarely resulted in significant (yet invariably small) changes in the magnitude of spike-responses to CRF-confined stimuli or significant (again invariably small) changes in the relative strength of ECRF modulation of spike-responses. Thus, the ipsilateral, but not contralateral, 'higher-order' visual cortical areas make significant contribution not only to the magnitude of CRF-induced spike-responses but also to the relative strengths of ECRF-induced modulation of the spike-responses of V1 neurons. Therefore, the feedback signals originating from the ipsilateral higher-order cortical areas appear to make an important contribution to contextual modulation of responses of neurons in the primary visual cortices.
在麻醉并固定的家猫身上,我们研究了同侧或对侧后颞视觉(PTV)皮质短暂可逆性失活(冷却至10摄氏度)对以下方面的影响:1)纹状皮质(细胞构筑区17,V1区)中神经元对局限于经典感受野(CRF)的优化正弦波调制对比度 - 亮度光栅的锋电位反应幅度;2)延伸至超经典感受野(ECRF)的光栅对CRF诱发锋电位反应的调制相对强度。与我们之前的报告(Bardy等人,2006年;Huang等人,2007年)一致,同侧PTV皮质(假定为灵长类动物颞下皮质的同源物)失活导致约一半的V1神经元对CRF局限刺激的锋电位反应幅度出现显著的可逆变化(几乎所有都是大幅降低)。同样,在本样本的一半中,同侧PTV皮质失活导致CRF诱发锋电位反应的ECRF调制相对强度出现显著的可逆变化(超过70%的情况为降低)。相比之下,尽管所有测试的V1细胞的感受野都位于零垂直子午线代表的5度范围内,但对侧PTV皮质失活仅很少导致对CRF局限刺激的锋电位反应幅度出现显著(但总是很小)变化,或CRF诱发锋电位反应的ECRF调制相对强度出现显著(同样总是很小)变化。因此,同侧而非对侧的“高阶”视觉皮质区域不仅对CRF诱发的锋电位反应幅度有显著贡献,而且对V1神经元锋电位反应的ECRF诱发调制相对强度也有显著贡献。所以,源自同侧高阶皮质区域的反馈信号似乎对初级视觉皮质中神经元反应的背景调制做出了重要贡献。