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Burst-timing-dependent plasticity of NMDA receptor-mediated transmission in midbrain dopamine neurons.

机译:NMDA受体介导的中脑多巴胺神经元的爆发定时依赖可塑性。

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摘要

Bursts of spikes triggered by sensory stimuli in midbrain dopamine neurons evoke phasic release of dopamine in target brain areas, driving reward-based reinforcement learning and goal-directed behavior. NMDA-type glutamate receptors (NMDARs) play a critical role in the generation of these bursts. Here we report LTP of NMDAR-mediated excitatory transmission onto dopamine neurons in the substantia nigra. Induction of LTP requires burst-evoked Ca2+ signals amplified by preceding metabotropic neurotransmitter inputs in addition to the activation of NMDARs themselves. PKA activity gates LTP induction by regulating the magnitude of Ca2+ signal amplification. This form of plasticity is associative, input specific, reversible, and depends on the relative timing of synaptic input and postsynaptic bursting in a manner analogous to the timing rule for cue-reward learning paradigms in behaving animals. NMDAR plasticity might thus represent a potential neural substrate for conditioned dopamine neuron burst responses to environmental stimuli acquired during reward-based learning.
机译:由中脑多巴胺神经元的感觉刺激触发的尖峰爆发会引起目标脑区域多巴胺的阶段性释放,从而推动基于奖励的强化学习和目标定向行为。 NMDA型谷氨酸受体(NMDAR)在这些爆发的产生中起关键作用。在这里,我们报告NMDAR介导的兴奋性传输LTP到黑质中的多巴胺神经元上。 LTP的诱导除了需要激活NMDAR本身之外,还需要由前面的代谢型神经递质输入放大的猝发性Ca2 +信号。 PKA活性通过调节Ca2 +信号放大幅度来控制LTP诱导。这种可塑性形式是关联的,输入特定的,可逆的,并且以类似于行为动物提示性学习范式的时序规则的方式,取决于突触输入和突触后爆发的相对时间。因此,NMDAR可塑性可能代表了在基于奖励的学习过程中对环境刺激产生的条件性多巴胺神经元爆发反应的潜在神经基质。

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