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相关概念视频

Regulation of Food Intake01:30

Regulation of Food Intake

Short-term regulation of food intake primarily involves neural signals from the gastrointestinal (GI) tract, blood nutrient levels, and GI tract hormones. Communication between the gut and brain via vagal nerve fibers plays a significant role in evaluating the contents of the gut. Clinical studies have shown that protein ingestion produces a more prolonged response in these nerve fibers compared to an equivalent amount of glucose. Additionally, the activation of stretch receptors caused by GI...
Neural Regulation01:37

Neural Regulation

Digestion begins with a cephalic phase that prepares the digestive system to receive food. When our brain processes visual or olfactory information about food, it triggers impulses in the cranial nerves innervating the salivary glands and stomach to prepare for food.
Neural Circuits01:25

Neural Circuits

Neural circuits and neuronal pools are two of the main structures found in the nervous system. Neural circuits are networks of neurons that work together to carry out a specific task or process. They consist of interconnected neurons and glial cells, which provide structural and metabolic support.
Neuronal pools are collections of nerve cells with similar functions and interact through chemical and electrical signals. These pools include both interneurons (the central neural circuit nodes that...
Diencephalon: Hypothalamus and Coordination01:23

Diencephalon: Hypothalamus and Coordination

The hypothalamus is a small yet highly complex and essential brain region that plays a crucial role in regulating various bodily functions. Anatomically, it is located at the base of the brain, just above the brainstem and below the thalamus, forming part of the limbic system.
The hypothalamus interacts with other brain regions, including the pituitary gland, through a direct physical connection called the hypothalamic-pituitary axis. The hypothalamus receives somatic and visceral inputs and...

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相关实验视频

Updated: May 24, 2026

Combining Quantitative Food-intake Assays and Forcibly Activating Neurons to Study Appetite in Drosophila
07:24

Combining Quantitative Food-intake Assays and Forcibly Activating Neurons to Study Appetite in Drosophila

Published on: April 24, 2018

解读一种神经元电路,该电路介导食欲.

Qi Wu1, Michael S Clark, Richard D Palmiter

  • 1Howard Hughes Medical Institute and Department of Biochemistry, University of Washington School of Medicine, Seattle, Washington 98195, USA.

Nature
|March 16, 2012
PubMed
概括

通过激发骨核 (PBN),消灭与骨相关蛋白 (AgRP) 神经元会导致饥饿. 谷氨酸性NTS和血清性神经元驱动这种PNB激发,控制食和体重.

科学领域:

  • 神经科学是一个神经科学.
  • 神经生物学 神经生物学 神经生物学
  • 生理学 生理学 生理学

背景情况:

  • 下丘脑中的阿古蒂相关蛋白 (AgRP) 神经元促进食和体重增加.
  • 废除AgRP神经元会导致饥饿,这与骨核 (PBN) 的过度活化有关.
  • 驱动这种饥饿反应的PNN激发性输入的来源以前是未知的.

研究的目的:

  • 鉴定AgRP神经元切除后负责PBN激发的神经回路.
  • 阐明特定神经元群体在调节食行为和体重方面的作用.
  • 调查PBN作为一个集成养相关信号的中心枢纽.

主要方法:

  • 利用小鼠模型进行有针对性的基因操纵和药理干预.
  • 研究了谷氨酸性神经元在单核管 (NTS) 和血清性神经元中的作用.
  • 研究了操纵PBN中血清素 (5-HT3) 受体和N-甲基D-酸盐 (NMDA) 受体的影响.

主要成果:

  • 谷氨酸性NTS神经元和尾部血清性神经元激发PBN神经元,抑制养.
  • 阻断NTS中的血清素 (5-HT3) 受体信号传递或在血清素神经元中禁用Tph2可以防止AgRP神经元切除后的饥饿.
  • 禁用NTS对PNNNMDA受体的谷氨酸信号,也可以防止饥饿.

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Real-time Analysis of Gut-brain Neural Communication: Cortex wide Calcium Dynamics in Response to Intestinal Glucose Stimulation
07:29

Real-time Analysis of Gut-brain Neural Communication: Cortex wide Calcium Dynamics in Response to Intestinal Glucose Stimulation

Published on: December 29, 2023

Simultaneous Detection of c-Fos Activation from Mesolimbic and Mesocortical Dopamine Reward Sites Following Naive Sugar and Fat Ingestion in Rats
08:07

Simultaneous Detection of c-Fos Activation from Mesolimbic and Mesocortical Dopamine Reward Sites Following Naive Sugar and Fat Ingestion in Rats

Published on: August 24, 2016

相关实验视频

Last Updated: May 24, 2026

Combining Quantitative Food-intake Assays and Forcibly Activating Neurons to Study Appetite in Drosophila
07:24

Combining Quantitative Food-intake Assays and Forcibly Activating Neurons to Study Appetite in Drosophila

Published on: April 24, 2018

Real-time Analysis of Gut-brain Neural Communication: Cortex wide Calcium Dynamics in Response to Intestinal Glucose Stimulation
07:29

Real-time Analysis of Gut-brain Neural Communication: Cortex wide Calcium Dynamics in Response to Intestinal Glucose Stimulation

Published on: December 29, 2023

Simultaneous Detection of c-Fos Activation from Mesolimbic and Mesocortical Dopamine Reward Sites Following Naive Sugar and Fat Ingestion in Rats
08:07

Simultaneous Detection of c-Fos Activation from Mesolimbic and Mesocortical Dopamine Reward Sites Following Naive Sugar and Fat Ingestion in Rats

Published on: August 24, 2016

  • 抑制PBN谷氨基基输出可以在AgRP神经元被切除后恢复食欲,并促进其他体重增加.
  • 结论:

    • 确定了谷氨酸性NTS和血清性神经元作为PBN激发和食抑制的关键驱动因素.
    • PBN 作为一个关键的集成枢纽,接收双向控制食和体重的输入.
    • 这项研究揭示了调节食欲和能量平衡的新型神经通路.