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Diversity in striatal synaptic circuits arises from distinct embryonic progenitor pools in the ventral telencephalon

机译:脊椎突触电路中的多样性来自腹侧脑电仑的不同胚胎祖先池中

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Synaptic circuits in the brain are precisely organized, but the processes that govern this precision are poorly understood. Here, we explore how distinct embryonic neural progenitor pools in the lateral ganglionic eminence contribute to neuronal diversity and synaptic circuit connectivity in the mouse striatum. In utero labeling of Tα1-expressing apical intermediate progenitors (aIP), as well as other progenitors (OP), reveals that both progenitors generate direct and indirect pathway spiny projection neurons (SPNs) with similar electrophysiological and anatomical properties and are intermingled in medial striatum. Subsequent optogenetic circuit-mapping experiments demonstrate that progenitor origin significantly impacts long-range excitatory input strength, with medial prefrontal cortex preferentially driving aIP-derived SPNs and visual cortex preferentially driving OP-derived SPNs. In contrast, the strength of local inhibitory inputs among SPNs is controlled by birthdate rather than progenitor origin. Combined, these results demonstrate distinct roles for embryonic progenitor origin in shaping neuronal and circuit properties of the postnatal striatum.
机译:大脑中的突触电路精确地组织,但管理这种精度的过程很难理解。在这里,我们探讨侧神经节卓越术中不同的胚胎神经祖池如何有助于鼠标纹状体中的神经元分集和突触电路连接。在UTEO标记的Tα1表达的顶端中间祖细胞(AIP)以及其他祖细胞(OP)中,表明两种祖细胞产生具有相似电生理学和解剖学性质的直接和间接途径的多孔突出突出神经元(SPN),并且在内侧纹状体中搅拌。随后的光学电路映射实验表明,祖母原源显着影响远程兴奋输入强度,中间前额叶皮质优先驱动均线衍生的SPN和可视皮质优先驱动OP-ermived SPN。相反,SPN中局部抑制性的强度由出生用途而不是祖先来源控制。结合,这些结果表明了胚胎祖细胞来源在形成后纹状体的神经元和电路性质中的不同作用。

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