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Reward-timing-dependent bidirectional modulation of cortical microcircuits during optical single-neuron operant conditioning

机译:单向神经元光学调节过程中皮质微电路的与时基相关的双向调制

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摘要

Animals rapidly adapt to environmental change. To reveal how cortical microcircuits are rapidly reorganized when an animal recognizes novel reward contingency, we conduct two photon calcium imaging of layer 2/3 motor cortex neurons in mice and simultaneously reinforce the activity of a single cortical neuron with water delivery. Here we show that when the target neuron is not relevant to a pre-trained forelimb movement, the mouse increases the target neuron activity and the number of rewards delivered during 15-min operant conditioning without changing forelimb movement behaviour. The reinforcement bidirectionally modulates the activity of subsets of non-target neurons, independent of distance from the target neuron. The bidirectional modulation depends on the relative timing between the reward delivery and the neuronal activity, and is recreated by pairing reward delivery and photoactivation of a subset of neurons. Reward-timing-dependent bidirectional modulation may be one of the fundamental processes in microcircuit reorganization for rapid adaptation.
机译:动物迅速适应环境变化。为了揭示当动物认识到新的奖励意外事件时皮质微电路是如何快速重组的,我们对小鼠的第2/3层运动皮层神经元进行了两次光子钙成像,并通过输水同时增强了单个皮质神经元的活动。在这里,我们显示出当目标神经元与预先训练的前肢运动不相关时,鼠标会在不改变前肢运动行为的情况下增加目标神经元活动和15分钟操作条件下传递的奖励数量。增强物双向调节非目标神经元子集的活动,而与距目标神经元的距离无关。双向调制取决于奖励交付和神经元活动之间的相对时间,并通过配对奖励交付和神经元子集的光激活来重新创建。依赖于时序的双向调制可能是微电路重组中快速适应的基本过程之一。

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