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Writing Memories with Light-Addressable Reinforcement Circuitry

机译:用光寻址增强电路书写记忆

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Dopaminergic neurons are thought to drive learning by signaling changes in the expectations of salient events, such as rewards or punishments. Olfactory conditioning in Drosophila requires direct dopamine action on intrinsic mushroom body neurons, the likely storage sites of olfactory memories. Neither the cellular sources of the conditioning dopamine nor its precise postsynaptic targets are known. By optically controlling genetically circumscribed subsets of dopaminergic neurons in the behaving fly, we have mapped the origin of aversive reinforcement signals to the PPL1 cluster of 12 dopaminergic cells. PPL1 projections target restricted domains in the vertical lobes and heel of the mushroom body. Artificially evoked activity in a small number of identifiable cells thus suffices for programming behaviorally meaningful memories. The delineation of core reinforcement circuitry is an essential first step in dissecting the neural mechanisms that compute and represent valuations, store associations, and guide actions.
机译:多巴胺能神经元被认为通过发信号通知期望事件(例如奖励或惩罚)的变化来驱动学习。果蝇中的嗅觉调节需要直接的多巴胺作用于固有的蘑菇体神经元,嗅觉记忆的可能储存位点。调节多巴胺的细胞来源及其精确的突触后靶标均未知。通过光学控制行为苍蝇中多巴胺能神经元的遗传外接子集,我们已经将厌恶性增强信号的来源映射到12个多巴胺能细胞的PPL1簇。 PPL1投影针对蘑菇体的垂直裂片和根部的受限区域。因此,在少数可识别单元中人工诱发的活动就足以对行为上有意义的记忆进行编程。在剖析计算和表示估值,存储关联和指导动作的神经机制时,核心增强电路的描绘是必不可少的第一步。

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