Jove
Visualize
联系我们
JoVE
x logofacebook logolinkedin logoyoutube logo
关于 JoVE
概览领导团队博客JoVE 帮助中心
作者
出版流程编辑委员会范围与政策同行评审常见问题投稿
图书馆员
用户评价订阅访问资源图书馆顾问委员会常见问题
研究
JoVE JournalMethods CollectionsJoVE Encyclopedia of Experiments存档
教育
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab Manual教师资源中心教师网站
使用条款与条件
隐私政策
政策

相关概念视频

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.
Hormonal Regulation01:40

Hormonal Regulation

Hormones regulate a significant portion of digestion through activation of the neuroendocrine system. The neuroendocrine system of digestion contains many different hormones all with multiple functions that are both, directly and indirectly, involved in digestion.
Neurochemical Transmission: Sites of Drug Action01:26

Neurochemical Transmission: Sites of Drug Action

Neurochemical transmission, the conduction of electrical impulses between neurons mediated by neurotransmitters, plays a vital role in various physiological processes. Autonomic drugs exert their effects by modulating neurotransmission within the autonomic nervous system. For instance, drugs such as hemicholinium block the precursor uptake necessary for synthesizing acetylcholine, an essential autonomic neurotransmitter. Following synthesis, neurotransmitters are stored in vesicles. Metyrosine...
The Physiology of Taste01:24

The Physiology of Taste

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 diffusion of...
Pathophysiology of Vomiting01:22

Pathophysiology of Vomiting

Vomiting is a complex physiological response to expel harmful or irritating substances from the body. It's a defensive mechanism triggered by stimuli like poisons, microbial toxins, cytotoxic drugs, and mechanical abdominal distension. The process is centrally coordinated by the vomiting (or emetic) center located in the medulla of the brainstem. This area, rich in muscarinic M1, histamine H1, neurokinin 1 (NK1), and serotonin 5-HT3 receptors, coordinates the act of vomiting through interaction...
Intestinal Phase of Digestion01:29

Intestinal Phase of Digestion

The intestinal phase of digestion is the third and final stage of the digestive process, occurring after the cephalic and gastric phases. It begins when chyme, a partially digested mixture of food and digestive enzymes, enters the small intestine from the stomach. This phase is crucial for nutrient absorption and involves complex hormonal and enzymatic interactions.
The arrival of the chyme in the small intestine distends the duodenum, which triggers the enterogastric reflex. This distension...

您也可能阅读

相关文章

通过共同作者、期刊和引用图与本文相关的文章。

排序
Same author

Large-scale visualization of α-synuclein oligomers in Parkinson's disease brain tissue.

Nature biomedical engineering·2025
Same author

Dopamine D2 receptor upregulation in dorsal striatum in the LRRK2-R1441C rat model of early Parkinson's disease revealed by in vivo PET imaging.

Scientific reports·2025
Same author

Rapid modulation of striatal cholinergic interneurons and dopamine release by satellite astrocytes.

Nature communications·2024
Same author

Impaired striatal glutathione-ascorbate metabolism induces transient dopamine increase and motor dysfunction.

Nature metabolism·2024
Same author

Beta bursts in the parkinsonian cortico-basal ganglia network form spatially discrete ensembles.

Neurobiology of disease·2024
Same author

A single dose of cocaine rewires the 3D genome structure of midbrain dopamine neurons.

bioRxiv : the preprint server for biology·2024

相关实验视频

Updated: Jul 7, 2026

3D-Neuronavigation In Vivo Through a Patient's Brain During a Spontaneous Migraine Headache
10:39

3D-Neuronavigation In Vivo Through a Patient's Brain During a Spontaneous Migraine Headache

Published on: June 2, 2014

通过厌恶性刺激,在腹部 tegmental 区域均抑制多巴胺神经元.

Mark A Ungless1, Peter J Magill, J Paul Bolam

  • 1Medical Research Council Anatomical Neuropharmacology Unit, Department of Pharmacology, University of Oxford, Mansfield Road, Oxford OX1 3TH, UK. mark.ungless@zoo.ox.ac.uk

Science (New York, N.Y.)
|March 27, 2004
PubMed
概括
此摘要是机器生成的。

多巴胺神经元被奖励激发,而不是厌恶的刺激. 意想不到的是,以前认为是多巴胺释放的神经元被发现是非多巴胺的,并被负面经历激活.

更多相关视频

A Method of Nodose Ganglia Injection in Sprague-Dawley Rat
09:28

A Method of Nodose Ganglia Injection in Sprague-Dawley Rat

Published on: November 25, 2014

Vagus Nerve Stimulation as a Tool to Induce Plasticity in Pathways Relevant for Extinction Learning
11:02

Vagus Nerve Stimulation as a Tool to Induce Plasticity in Pathways Relevant for Extinction Learning

Published on: August 21, 2015

相关实验视频

Last Updated: Jul 7, 2026

3D-Neuronavigation In Vivo Through a Patient's Brain During a Spontaneous Migraine Headache
10:39

3D-Neuronavigation In Vivo Through a Patient's Brain During a Spontaneous Migraine Headache

Published on: June 2, 2014

A Method of Nodose Ganglia Injection in Sprague-Dawley Rat
09:28

A Method of Nodose Ganglia Injection in Sprague-Dawley Rat

Published on: November 25, 2014

Vagus Nerve Stimulation as a Tool to Induce Plasticity in Pathways Relevant for Extinction Learning
11:02

Vagus Nerve Stimulation as a Tool to Induce Plasticity in Pathways Relevant for Extinction Learning

Published on: August 21, 2015

科学领域:

  • 神经科学是一个神经科学.
  • 奖励系统研究奖励系统研究
  • 多巴胺作用的神经元功能.

背景情况:

  • 多巴胺神经元对于奖励行为至关重要.
  • 奖励编码理论认为多巴胺神经元对奖励做出反应,而不是对厌恶刺激.
  • 显著的百分比的假定多巴胺神经元矛盾地表现出对厌恶刺激的刺激.

研究的目的:

  • 为了研究多巴胺神经元对厌恶性刺激的反应的神经元身份.
  • 澄清多巴胺神经元在处理厌恶与奖励刺激中的作用.
  • 根据神经元反应差异,重新评估奖励编码理论.

主要方法:

  • 在麻醉大鼠的腹部 tegmental 区域的电生理学记录.
  • 使用已确定的标记物识别多巴氨基神经元.
  • 用厌恶刺激进行刺激,以观察神经元反应.

主要成果:

  • 被厌恶刺激激发的神经元的群体被确定为非多巴胺的.
  • 腹部 tegmental 区域的真实多巴胺神经元被厌恶刺激所抑制.
  • 这挑战了多巴胺神经元对负面刺激做出反应的概念.

结论:

  • 多巴胺神经元主要参与处理奖励信号.
  • 一个独特的非多巴胺神经元群体调解对厌恶刺激的反应.
  • 这些发现支持了大脑中奖励和厌恶处理的精细模型.