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関連する概念動画

Regulation of Food Intake01:30

Regulation of Food Intake

339
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...
339
Neural Regulation01:37

Neural Regulation

39.8K
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.
39.8K
Cell Signaling Feedback Loops01:07

Cell Signaling Feedback Loops

6.6K
Positive and negative feedback loops are crucial for regulating biological signaling systems. These feedback loops are processes that connect output signals to their inputs.
Negative feedback loops
Most signaling systems have negative feedback loops that can perform different functions such as output limiter, and adaptation.
Output limiter
Upon receiving an input signal, the cellular response rapidly increases until a threshold is reached. Beyond this threshold, a negative feedback loop...
6.6K
The Physiology of Taste01:24

The Physiology of Taste

4.2K
The perception of a salty flavor is facilitated by sodium ions within the oral salivary fluid. Upon consumption of a salty substance, salt crystals disassemble, leading to the liberation of its constituents—Na+ and Cl- ions. These ions subsequently dissolve into the salivary fluid present in the oral cavity. The external environment of the gustatory cells experiences an elevation in Na+ concentration, thereby establishing a potent concentration gradient. This gradient propels the...
4.2K
Neural Circuits01:25

Neural Circuits

1.5K
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...
1.5K
Regulation of the Digestive System01:25

Regulation of the Digestive System

923
Digestive activity regulation hinges on three primary components. Activation is prompted by a multitude of mechanical and chemical indicators, primarily detected by receptors within the stomach and intestines' walls. These receptors predominantly respond to factors such as mechanical stretching of the organ walls, changes in pH and osmolarity, and the presence of digesting materials and their by-products.
The effectors in this regulation system are glands and smooth muscles. Activation of...
923

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関連する実験動画

Updated: Sep 9, 2025

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

8.4K

タンパク質の食欲を駆動するフード・フォワード・スイングリング・サーキット

I Tastekin, I de Haan Vicente, R J Beresford

    bioRxiv : the preprint server for biology
    |September 5, 2025
    PubMed
    まとめ

    ドロソフィラのタンパク質欠乏は 特定の神経回路を活性化することで 食物連鎖を延長します この経路はサスタインニューロンを巻き込み 飲み放題の制御を強化し 栄養の必要性を 食事の行動と結びつけます

    科学分野:

    • 神経科学
    • 動物 の 行動
    • 感覚システム

    背景:

    • 栄養素の利用可能性は 食事パターンに影響します
    • ドロソフィラのタンパク質欠乏は 食事の時間が長くなります
    • 栄養運動の制御が変化する 神経学的根拠はよくわかっていない.

    研究 の 目的:

    • タンパク質欠乏状態のドロソフィラの長時間の餌を制御する運動メカニズムを解明する.
    • 栄養素の検知と 食事行動の調節を 結びつける神経回路を特定する

    主な方法:

    • 電子顕微鏡 (EM) コネクトミクスを用いて神経経路をマッピングした.
    • サスタインニューロンを含む特定のニューロンの作用を調査した.
    • 味覚神経から運動神経までの 感覚運動回路を調べました

    主要な成果:

    • タンパク質に敏感なニューロンを 飲み込むモーターニューロンに繋ぐ センサーモーター経路を特定しました
    • サスタインニューロンは 効率的な食物輸送のために 複数の飲み運動ニューロンを調整することが判明しました
    • この経路は飲み込みを容易にし 長期にわたる栄養分を 維持することが示されています

    さらに関連する動画

    Control of Eating Behavior Using a Novel Feedback System
    04:48

    Control of Eating Behavior Using a Novel Feedback System

    Published on: May 8, 2018

    11.1K
    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

    741

    関連する実験動画

    Last Updated: Sep 9, 2025

    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

    8.4K
    Control of Eating Behavior Using a Novel Feedback System
    04:48

    Control of Eating Behavior Using a Novel Feedback System

    Published on: May 8, 2018

    11.1K
    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

    741

    結論:

    • 専用の感覚運動回路が 生理学的タンパク質の必要性を 精密な運動制御に変換します
    • サスタインニューロンは 飲み方のモーターニューロンを調整し 食事の時間を調整する 重要な部位です
    • この研究では 内部状態が 食事の時間の構造に 直接影響を及ぼすことが分かりました