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GABA regulates synaptic integration of newly generated neurons in the adult brain

机译:GABA调节成人大脑中新生成的神经元的突触整合

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Adult neurogenesis, the birth and integration of new neurons from adult neural stem cells, is a striking form of structural plasticity and highlights the regenerative capacity of the adult mammalian brain(1-8). Accumulating evidence suggests that neuronal activity regulates adult neurogenesis and that new neurons contribute to specific brain functions(1-8). The mechanism that regulates the integration of newly generated neurons into the pre-existing functional circuitry in the adult brain is unknown. Here we show that newborn granule cells in the dentate gyrus of the adult hippocampus are tonically activated by ambient GABA (gamma-aminobutyric acid) before being sequentially innervated by GABA- and glutamate-mediated synaptic inputs. GABA, the major inhibitory neurotransmitter in the adult brain, initially exerts an excitatory action on newborn neurons owing to their high cytoplasmic chloride ion content(9-12). Conversion of GABA- induced depolarization ( excitation) into hyperpolarization ( inhibition) in newborn neurons leads to marked defects in their synapse formation and dendritic development in vivo. Our study identifies an essential role for GABA in the synaptic integration of newly generated neurons in the adult brain, and suggests an unexpected mechanism for activity-dependent regulation of adult neurogenesis, in which newborn neurons may sense neuronal network activity through tonic and phasic GABA activation.
机译:成年神经发生是成年神经干细胞新神经元的诞生和整合,是结构可塑性的显着形式,并突出了成年哺乳动物脑的再生能力(1-8)。越来越多的证据表明,神经元的活动调节着成年人的神经发生,新的神经元对特定的脑功能有贡献(1-8)。调节新生成的神经元整合到成人脑中先前存在的功能电路中的机制尚不清楚。在这里,我们显示成年海马齿状回中的新生颗粒细胞在被GABA和谷氨酸介导的突触输入依次支配之前,被周围的GABA(γ-氨基丁酸)激活。 GABA是成人大脑中主要的抑制性神经递质,由于其胞质中的氯离子含量较高,因此最初会对新生神经元产生兴奋作用(9-12)。在新生神经元中,GABA诱导的去极化(激发)转变为超极化(抑制)会导致它们在体内的突触形成和树突发育显着缺陷。我们的研究确定了GABA在成人大脑中新生成的神经元的突触整合中的重要作用,并提出了一种依赖于成人神经发生的活动依赖性调节的意外机制,其中新生神经元可能通过补品和阶段性GABA激活来感知神经元网络活动。

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