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A Taste Circuit that Regulates Ingestion by Integrating Food and Hunger Signals

机译:通过整合食物和饥饿信号来调节摄入的味觉回路

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摘要

Ingestion is a highly regulated behavior that integrates taste and hunger cues to balance food intake with metabolic needs. To study the dynamics of ingestion in the vinegar fly Drosophila melanogaster, we developed Expresso, an automated feeding assay that measures individual meal-bouts with high temporal resolution at nanoliter scale. Flies showed discrete, temporally precise ingestion that was regulated by hunger state and sucrose concentration. We identify 12 cholinergic local interneurons (IN1, for "ingestion neurons'') necessary for this behavior. Sucrose ingestion caused a rapid and persistent increase in IN1 interneuron activity in fasted flies that decreased proportionally in response to subsequent feeding bouts. Sucrose responses of IN1 interneurons in fed flies were significantly smaller and lacked persistent activity. We propose that IN1 neurons monitor ingestion by connecting sugar-sensitive taste neurons in the pharynx to neural circuits that control the drive to ingest. Similar mechanisms for monitoring and regulating ingestion may exist in vertebrates.
机译:摄入是一种高度管制的行为,将口味和饥饿感融为一体,以平衡食物摄入与新陈代谢的需求。为了研究黑蝇果蝇摄食的动力学,我们开发了Expresso,这是一种自动进食测定法,可以以纳升级的高时间分辨率测量单个进食量。苍蝇表现出离散的,时间精确的摄取,这受饥饿状态和蔗糖浓度的调节。我们确定了12种胆碱能的局部中间神经元(IN1,用于“摄取神经元”),蔗糖的摄入引起禁食果蝇中IN1中间神经元活性的持续快速增加,而这种空腹果蝇随后的进食次数也相应降低。我们认为IN1神经元通过将咽中糖敏感味觉神经元与控制摄取驱动力的神经回路连接来监测摄取,而在脊椎动物中可能存在类似的监测和调节摄取的机制。 。

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