V1侧抑制对神经系统的控制知觉对比敏感度

Joseph Del Rosario, Stefano Coletta, Soon Ho Kim, Zach Mobille, Kayla Peelman, Brice Williams, Alan J. Otsuki, Alejandra Del Castillo Valerio, Kendell Worden, Lou T Blanpain, Lyndah Lovell, Hannah Choi, Bilal Haider
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引用次数: 0

摘要

侧抑制是感觉系统功能的核心原则。它被认为是通过抑制神经元的激活来运作的,抑制神经元限制了感觉兴奋的空间传播。很多关于抑制在感觉系统中的作用的研究都集中在视觉皮层;然而,皮层外侧抑制的神经元、计算和机制仍然存在争议,其对视觉感知的重要性仍然未知。在这里,我们测试了来自小鼠初级视觉皮层(V1) PV或SST神经元的侧抑制如何调节神经和知觉对刺激对比的敏感性。PV神经元的侧抑制以均匀减法的方式降低了神经和知觉对视觉对比的敏感性,而SST神经元的侧抑制更有效地改变了神经和知觉对比敏感性的斜率(或增益)。神经回路模型确定了SST神经元在空间上广泛的侧向投射是关键因素,我们通过直接的阈下测量证实了这一点,即SST与PV侧向抑制的空间足迹更大。总之,这些结果定义了V1侧抑制中细胞类型特定的计算作用,并建立了它们对对比度敏感性的独特影响,对比度敏感性是视觉世界的一个基本方面。
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Lateral inhibition in V1 controls neural & perceptual contrast sensitivity
Lateral inhibition is a central principle for sensory system function. It is thought to operate by the activation of inhibitory neurons that restrict the spatial spread of sensory excitation. Much work on the role of inhibition in sensory systems has focused on visual cortex; however, the neurons, computations, and mechanisms underlying cortical lateral inhibition remain debated, and its importance for visual perception remains unknown. Here, we tested how lateral inhibition from PV or SST neurons in mouse primary visual cortex (V1) modulates neural and perceptual sensitivity to stimulus contrast. Lateral inhibition from PV neurons reduced neural and perceptual sensitivity to visual contrast in a uniform subtractive manner, whereas lateral inhibition from SST neurons more effectively changed the slope (or gain) of neural and perceptual contrast sensitivity. A neural circuit model identified spatially extensive lateral projections from SST neurons as the key factor, and we confirmed this with direct subthreshold measurements of a larger spatial footprint for SST versus PV lateral inhibition. Together, these results define cell-type specific computational roles for lateral inhibition in V1, and establish their unique consequences on sensitivity to contrast, a fundamental aspect of the visual world.
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