Department of Neurobiology and Behavior, Stony Brook University, Stony Brook, New York 11794.
Graduate Program in Neuroscience, Stony Brook University, Stony Brook, New York 11794.
J Neurosci. 2023 Nov 1;43(44):7294-7306. doi: 10.1523/JNEUROSCI.2255-22.2023. Epub 2023 Sep 13.
In primary gustatory cortex (GC), a subregion of the insular cortex, neurons show anticipatory activity, encode taste identity and palatability, and their activity is related to decision-making. Inactivation of the gustatory thalamus, the parvicellular region of the ventral posteromedial thalamic nucleus (VPMpc), dramatically reduces GC taste responses, consistent with the hypothesis that VPMpc-GC projections carry taste information. Recordings in awake rodents reported that taste-responsive neurons can be found across GC, without segregated spatial mapping, raising the possibility that projections from the taste thalamus may activate GC broadly. In addition, we have shown that cortical inhibition modulates the integration of thalamic and limbic inputs, revealing a potential role for GABA transmission in gating sensory information to GC. Despite this wealth of information at the system level, the synaptic organization of the VPMpc-GC circuit has not been investigated. Here, we used optogenetic activation of VPMpc afferents to GC in acute slice preparations from rats of both sexes to investigate the synaptic properties and organization of VPMpc afferents in GC and their modulation by cortical inhibition. We hypothesized that VPMpc-GC synapses are distributed across GC, but show laminar- and cell-specific properties, conferring computationally flexibility to how taste information is processed. We also found that VPMpc-GC synaptic responses are strongly modulated by the activity regimen of VPMpc afferents, as well as by cortical inhibition activating GABA and GABA receptors onto VPMpc terminals. These results provide a novel insight into the complex features of thalamocortical circuits for taste processing. We report that the input from the primary taste thalamus to the primary gustatory cortex (GC) shows distinct properties compared with primary thalamocortical synapses onto other sensory areas. Ventral posteromedial thalamic nucleus afferents in GC make synapses with excitatory neurons distributed across all cortical layers and display frequency-dependent short-term plasticity to repetitive stimulation; thus, they do not fit the classic distinction between drivers and modulators typical of other sensory thalamocortical circuits. Thalamocortical activation of GC is gated by cortical inhibition, providing local corticothalamic feedback via presynaptic ionotropic and metabotropic GABA receptors. The connectivity and inhibitory control of thalamocortical synapses in GC highlight unique features of the thalamocortical circuit for taste.
在初级味觉皮层(GC),即脑岛的一个亚区,神经元表现出预期活动,对味觉身份和可接受性进行编码,其活动与决策相关。味觉丘脑(腹后内侧核的小细胞区,VPMpc)的失活极大地降低了 GC 的味觉反应,这与 VPMpc-GC 投射携带味觉信息的假设一致。在清醒的啮齿动物的记录中报告说,在 GC 中可以找到对味觉有反应的神经元,没有分离的空间映射,这增加了来自味觉丘脑的投射可能广泛激活 GC 的可能性。此外,我们已经表明,皮质抑制调节丘脑和边缘输入的整合,揭示了 GABA 传递在将感觉信息传入 GC 中的潜在作用。尽管在系统水平上有如此丰富的信息,但 VPMpc-GC 回路的突触组织尚未得到研究。在这里,我们使用光遗传学激活来自两性大鼠的急性切片制备物中的 VPMpc 传入纤维来研究 VPMpc 传入纤维在 GC 中的突触特性和组织及其被皮质抑制的调制。我们假设 VPMpc-GC 突触分布在 GC 中,但表现出分层和细胞特异性特性,为味觉信息的处理方式提供了计算灵活性。我们还发现,VPMpc-GC 突触反应强烈受到 VPMpc 传入纤维的活动模式以及激活 GABA 和 GABA 受体到 VPMpc 末梢的皮质抑制的调制。这些结果为味觉处理的丘脑皮质回路的复杂特征提供了新的见解。我们报告说,来自初级味觉丘脑的输入到初级味觉皮层(GC)的特性与其他感觉区域的初级丘脑皮质突触不同。GC 中的腹后内侧核传入纤维与分布在所有皮质层中的兴奋性神经元形成突触,并显示对重复刺激的频率依赖性短期可塑性;因此,它们不符合其他感觉丘脑皮质回路中典型的驱动与调制的经典区别。皮质抑制作用对 GC 的丘脑皮质激活进行门控,通过离子型和代谢型 GABA 受体提供局部皮质丘脑反馈。GC 中的丘脑皮质连接和抑制控制突出了味觉丘脑皮质回路的独特特征。