Parvalbumin and Somatostatin: Biomarkers for Two Parallel Tectothalamic Pathways in the Auditory Midbrain

下丘 帕尔瓦布明 神经科学 生物 上丘 中脑 丘脑 抑制性突触后电位 兴奋性突触后电位 生长抑素 光遗传学 顶盖 中枢神经系统 核心
作者
Mengting Liu,Yixiao Gao,Fengyuan Xin,Ying Hu,Tao Wang,Fenghua Xie,Charles Shao,Tianyu Li,Ningyu Wang,Kexin Yuan
出处
期刊:The Journal of Neuroscience [Society for Neuroscience]
卷期号:44 (10): e1655232024-e1655232024 被引量:1
标识
DOI:10.1523/jneurosci.1655-23.2024
摘要

The inferior colliculus (IC) represents a crucial relay station in the auditory pathway, located in the midbrain's tectum and primarily projecting to the thalamus. Despite the identification of distinct cell classes based on various biomarkers in the IC, their specific contributions to the organization of auditory tectothalamic pathways have remained poorly understood. In this study, we demonstrate that IC neurons expressing parvalbumin (IC PV+ ) or somatostatin (IC SOM+ ) represent two minimally overlapping cell classes throughout the three IC subdivisions in mice of both sexes. Strikingly, regardless of their location within the IC, these neurons predominantly project to the primary and secondary auditory thalamic nuclei, respectively. Cell class-specific input tracing suggested that IC PV+ neurons primarily receive auditory inputs, whereas IC SOM+ neurons receive significantly more inputs from the periaqueductal gray and the superior colliculus (SC), which are sensorimotor regions critically involved in innate behaviors. Furthermore, IC PV+ neurons exhibit significant heterogeneity in both intrinsic electrophysiological properties and presynaptic terminal size compared with IC SOM+ neurons. Notably, approximately one-quarter of IC PV+ neurons are inhibitory neurons, whereas all IC SOM+ neurons are excitatory neurons. Collectively, our findings suggest that parvalbumin and somatostatin expression in the IC can serve as biomarkers for two functionally distinct, parallel tectothalamic pathways. This discovery suggests an alternative way to define tectothalamic pathways and highlights the potential usefulness of Cre mice in understanding the multifaceted roles of the IC at the circuit level.
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