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相关概念视频

Blood Flow01:29

Blood Flow

Blood is pumped by the heart into the aorta, the largest artery in the body, and then into increasingly smaller arteries, arterioles, and capillaries. The velocity of blood flow decreases with increased cross-sectional blood vessel area. As blood returns to the heart through venules and veins, its velocity increases. The movement of blood is encouraged by smooth muscle in the vessel walls, the movement of skeletal muscle surrounding the vessels, and one-way valves that prevent backflow.
Vascular Spasm01:16

Vascular Spasm

The vascular phase, also known as vasospasm, is the initial stage of hemostasis, crucial for preventing excessive bleeding when a blood vessel is injured. After a vessel is cut, nerves in the damaged area trigger pain and other sensory impulses. Simultaneously, the smooth muscles in the vessel wall contract, resulting in a vascular spasm. This contraction reduces the vessel's diameter at the injury site, slowing or stopping blood loss through the vessel wall. Vascular spasms typically last for...
Structure of Blood Vessels01:15

Structure of Blood Vessels

Blood is circulated throughout the human body through a network of blood vessels called the circulatory system. This system includes arteries that transport blood from the heart to various body parts. These arterial pathways divide into smaller vessels until they reach the arterioles, which further split into capillaries. It is within these minuscule capillaries that the exchange of nutrients and waste products takes place. After this exchange, the blood is collected by venules, which fuse to...
Autoregulation of Blood Flow01:17

Autoregulation of Blood Flow

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.
Development of Blood Vessels01:07

Development of Blood Vessels

The development of the vascular system in a fetus is a complex and intricate process that begins as early as 15 to 16 days post-conception. This process starts outside the embryo, specifically in the mesoderm of the yolk sac, chorion, and connecting stalk. Approximately two days later, the formation of blood vessels occurs within the embryo itself.
The initial formation of this system is facilitated by the small amount of yolk present in the ovum and yolk sac. Blood vessels originate from...
Anatomy of Blood Vessels01:20

Anatomy of Blood Vessels

The vascular system, an integral part of the circulatory system, comprises various blood vessels that play crucial roles in maintaining the body's homeostasis. These blood vessels form a complex and efficient circulatory network. The three primary categories of blood vessels are the arteries, veins, and capillaries.
Arteries
Arteries circulate oxygenated blood from the heart, except the pulmonary artery, which transports deoxygenated blood to the lungs. Large arteries, such as the aorta, have...

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相关实验视频

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Microfluidic Chips Controlled with Elastomeric Microvalve Arrays
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结构编程的毛细血管流动事件的微流体连锁反应

Mohamed Yafia1,2, Oriol Ymbern1,2, Ayokunle O Olanrewaju1,2,3

  • 1Biomedical Engineering Department, McGill University, Montreal, Quebec, Canada.

Nature
|May 18, 2022
PubMed
概括

我们开发了一种微流体连锁反应 (MCR), 这项创新使得复杂的测试和诊断无需外部设备,为多功能芯片实验室应用铺平了道路.

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科学领域:

  • 生物技术
  • 微流体学
  • 化学工程

背景情况:

  • 连锁反应是化学和生物过程的基础,但宏观应用有限.
  • 微流体实验室芯片系统通常依赖外部外围设备进行自动化.
  • 现有的毛细管微流体缺乏用于复杂液体处理的高级可编程性.

研究的目的:

  • 引入微流体连锁反应 (MCR) 以实现自主可编程的毛细血管流量控制.
  • 在单一芯片上展示MCR复杂液体处理算法的能力.
  • 展示MCR在无线,现场编程的芯片实验室中的潜力.

主要方法:

  • 集成MCR的单体芯片的3D打印.
  • 使用纸张产生的自由能量进行自主操作.
  • 开发有条件的,结构编程的毛细血管流动事件的MCR.

主要成果:

  • 在相互连接的芯片上自动连续释放300个位数.
  • 成功实施了SARS-CoV-2抗体检测协议.
  • 通过连续的分样和并行操作证明了血栓生成测定.

结论:

  • MCR技术提供无和无障碍的自主液体处理.
  • 在现场结构上编码程序,使实验室芯片设备节和多功能.
  • 这种方法在液体处理和临床诊断方面具有广泛的应用.