相关实验视频
Updated: May 1, 2026

06:49
A High Output Method to Isolate Cerebral Pericytes from Mouse
Published on: January 14, 2020
10.2K
毛细血管细胞调节大脑血液流动在健康和疾病
Catherine N Hall1, Clare Reynell1, Bodil Gesslein2
1Department of Neuroscience, Physiology & Pharmacology University College London, Gower St., London, WC1E 6BT, UK.
Nature
|March 28, 2014
概括
大脑周细胞积极调节毛细管扩张,控制大脑血流和功能成像信号. 预防细胞膜收缩可能会在中风后保护神经元.
科学领域:
- 神经科学是一个神经科学.
- 脑血管生物学 脑血管生物学
- 生理学 生理学 生理学
背景情况:
- 神经元活动增加大脑血流,支持功能性脑部成像.
- 这种血液流动的精确调节者,特别是毛细血管或动脉小管是否是主要的,仍在争论中.
研究的目的:
- 研究毛细血管细胞在调节大脑血流中的作用及其对功能成像信号的贡献.
- 阐明介质细胞介导的血管扩张和收缩的分子机制.
主要方法:
- 用于体内研究,观察感官输入期间的血流动力学.
- 采用神经递质刺激 (谷氨酸) 来探测细胞周围细胞的反应.
- 研究了前列腺素E2和氧化在细胞周围细胞信号传递中的作用.
- 在缺血条件下检查了细胞周细胞的行为和生存能力.
主要成果:
- 神经元活动和谷氨酸触发信使释放,导致细胞周周放松和毛细血管扩张.
- 前列腺素E2调解扩张,而氧化抑制了血管收缩的20-HETE.
- 在体内,毛细血管在动脉小管之前扩张,占流量增加的84%.
- 缺血诱导细胞周围细胞收缩,可能导致细胞周围细胞死亡和不可逆转的毛细血管损伤.
结论:
- 细胞是大脑血流和功能成像中的BOLD信号的关键调节者.
- 细胞收缩和缺血期间死亡有助于神经元损伤和血脑屏障的破坏.
- 准细胞周围细胞收缩可能为中风恢复提供治疗效益.
相关概念视频
Autoregulation of Blood Flow
10.0K
Autoregulation mechanisms are characterized by their inherent capacity for self-regulation without necessitating specific nervous stimulation or endocrine control. These mechanisms facilitate the adjustment of blood flow and, therefore, perfusion specific to each tissue region. This self-regulation encompasses chemical signals and myogenic controls.
Chemical Signaling in Autoregulation
Chemical signaling operates at the precapillary sphincter level, inciting either contraction or relaxation....
Chemical Signaling in Autoregulation
Chemical signaling operates at the precapillary sphincter level, inciting either contraction or relaxation....
10.0K
The Blood-brain Barrier
47.3K
Overview
47.3K
Regulation of Angiogenesis and Blood Supply
2.9K
Rapidly dividing tumors, embryos, and wounded tissues require more oxygen than usual, lowering the oxygen concentration in the blood. At low oxygen or hypoxic conditions, an oxygen-sensitive transcription factor called the hypoxia-inducible factor 1 or HIF1 is activated. HIF1 is a dimeric protein of alpha (ɑ) and beta (β) subunits. Under optimal oxygen conditions, HIF1β is present in the nucleus while HIF1ɑ remains in the cytosol. HIF1ɑ is hydroxylated by prolyl...
2.9K
Capillary Beds
6.5K
Capillary beds are networks of tiny blood vessels that play a crucial role in the circulatory system. These beds are where the exchange of gases, nutrients, and waste products occurs between the blood and surrounding tissues. Each capillary bed consists of numerous capillaries, which are the smallest blood vessels in the body, typically only one cell-thick. This thinness allows for the efficient diffusion of substances.
Capillaries connect arterioles, small branches of arteries, to venules,...
Capillaries connect arterioles, small branches of arteries, to venules,...
6.5K
Regulation of Hematopoietic Stem Cells
3.4K
All blood and immune cells are produced from the multipotent hematopoietic stem cells (HSCs) by the process of hematopoiesis. However, they all have a limited life span. In addition, many are depleted in immune surveillance or combatting an injury or infection. This makes blood one of the most regenerative tissues. Hematopoiesis helps replenish these blood and immune cells, restoring the body's normal functioning. However, overproduction of blood and immune cells can make them cancerous or...
3.4K
Neural Regulation of Blood Pressure
8.9K
The neural regulation of blood pressure involves intricate interactions between the autonomic nervous system (ANS) and cardiovascular system, ensuring adequate perfusion of tissues. This regulation primarily occurs through baroreceptor and chemoreceptor reflexes, involving both short-term and long-term mechanisms.
Baroreceptor Reflex
Baroreceptors, located in the carotid sinuses and aortic arch, detect changes in blood pressure. When blood pressure rises, these stretch-sensitive receptors...
Baroreceptor Reflex
Baroreceptors, located in the carotid sinuses and aortic arch, detect changes in blood pressure. When blood pressure rises, these stretch-sensitive receptors...
8.9K

