Molecular interrogation of hypothalamic organization reveals distinct dopamine neuronal subtypes

神经科学 多巴胺能 多巴胺 生物 下丘脑 视交叉上核 神经传递 谷氨酸的 酪氨酸羟化酶 谷氨酸受体 受体 生物化学
作者
Roman A. Romanov,Amit Zeisel,Joanne Bakker,Fatima Girach,Arash Hellysaz,Raju Tomer,Alán Alpár,Jan Mulder,Frédéric Clotman,Erik Keimpema,Brian Hsueh,Ailey Crow,Henrik Martens,Christian Schwindling,Daniela Calvigioni,Jaideep S. Bains,Zoltán Máté,Gábor Szabó,Yuchio Yanagawa,Mingdong Zhang
出处
期刊:Nature Neuroscience [Nature Portfolio]
卷期号:20 (2): 176-188 被引量:514
标识
DOI:10.1038/nn.4462
摘要

The hypothalamus contains the highest diversity of neurons in the brain. Many of these neurons can co-release neurotransmitters and neuropeptides in a use-dependent manner. Investigators have hitherto relied on candidate protein-based tools to correlate behavioral, endocrine and gender traits with hypothalamic neuron identity. Here we map neuronal identities in the hypothalamus by single-cell RNA sequencing. We distinguished 62 neuronal subtypes producing glutamatergic, dopaminergic or GABAergic markers for synaptic neurotransmission and harboring the ability to engage in task-dependent neurotransmitter switching. We identified dopamine neurons that uniquely coexpress the Onecut3 and Nmur2 genes, and placed these in the periventricular nucleus with many synaptic afferents arising from neuromedin S+ neurons of the suprachiasmatic nucleus. These neuroendocrine dopamine cells may contribute to the dopaminergic inhibition of prolactin secretion diurnally, as their neuromedin S+ inputs originate from neurons expressing Per2 and Per3 and their tyrosine hydroxylase phosphorylation is regulated in a circadian fashion. Overall, our catalog of neuronal subclasses provides new understanding of hypothalamic organization and function.
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