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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Cholinergic synaptic transmission in adult Drosophila Kenyon cells in situ.
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Cholinergic synaptic transmission in adult Drosophila Kenyon cells in situ.

机译:成年果蝇Kenyon细胞中的胆碱能突触传递。

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Behavioral and genetic studies in Drosophila have contributed to our understanding of molecular mechanisms that underlie the complex processes of learning and memory. Use of this model organism for exploration of the cellular mechanisms of memory formation requires the ability to monitor synaptic activity in the underlying neural networks, a challenging task in the tiny adult fly. Here, we describe an isolated whole-brain preparation in which it is possible to obtain in situ whole-cell recordings from adult Kenyon cells, key members of a neural circuit essential for olfactory associative learning in Drosophila. The presence of sodium action potential (AP)-dependent synaptic potentials and synaptic currents in >50% of the Kenyon cells shows that these neurons are members of a spontaneously active neural circuit in the isolated brain. The majority of sodium AP-dependent synaptic transmission is blocked by curare and by alpha-bungarotoxin (alpha-BTX). This demonstrates that nicotinic acetylcholine receptors (nAChRs) are responsible for most of the spontaneous excitatory drive in this circuit in the absence of normal sensory input. Furthermore, analysis of sodium AP-independent synaptic currents provides the first direct demonstration that alpha-BTX-sensitive nAChRs mediate fast excitatory synaptic transmission in Kenyon cells in the adult Drosophila brain. This new preparation, in which whole-cell recordings and pharmacology can be combined with genetic approaches, will be critical in understanding the contribution of nAChR-mediated fast synaptic transmission to cellular plasticity in the neural circuits underlying olfactory associative learning.
机译:果蝇的行为和遗传研究有助于我们理解构成学习和记忆的复杂过程的分子机制。使用这种模型生物探索记忆形成的细胞机制需要具有监视基础神经网络中突触活动的能力,这对成年小苍蝇而言是一​​项艰巨的任务。在这里,我们描述了一种分离的全脑制剂,其中可以从成年Kenyon细胞获得原位全细胞记录,成年Kenyon细胞是果蝇嗅觉联想学习必不可少的神经回路的关键成员。超过50%的Kenyon细胞中依赖钠动作电位(AP)的突触电位和突触电流的存在表明,这些神经元是孤立大脑中自发活跃神经回路的成员。咖喱和α-真菌毒素(α-BTX)阻止了大多数钠AP依赖性突触传递。这表明在没有正常感觉输入的情况下,该回路中的大多数自发性兴奋性驱动作用是烟碱乙酰胆碱受体(nAChRs)。此外,不依赖钠AP的突触电流的分析提供了第一个直接的证明,即α-BTX敏感的nAChR介导了果蝇成年大脑中Kenyon细胞中快速的兴奋性突触传递。这种新的制备方法,其中全细胞记录和药理学可以与遗传学方法相结合,对于理解nAChR介导的快速突触传递对嗅觉联想学习背后的神经回路中细胞可塑性的贡献至关重要。

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