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相关概念视频

The Supercomplexes in the Crista Membrane01:41

The Supercomplexes in the Crista Membrane

The mitochondrial cristae membrane is the primary site for the oxidative phosphorylation (OXPHOS) process of energy conversion mediated through respiratory complexes I to V. These complexes have been widely studied for decades, and it has been proven that they form supramolecular structures called respiratory supercomplexes (SC). These higher-order complexes may be crucial in maintaining the biochemical structure and improving the physiological activity of the individual complexes while...
Electron Transport Chain: Complex III and IV01:43

Electron Transport Chain: Complex III and IV

During the electron transport chain, electrons from NADH and FADH2 are first transferred to complexes I and II, respectively. These two complexes then transfer the electrons to ubiquinol, which carries them further to complex III. Complex III passes the electrons across the intermembrane space to Cyt c, which carries them further to complex IV. Complex IV donates electrons to oxygen and reduces it to water. As electrons pass through complexes I, III, and IV, the energy released aids the pumping...
Electrophysiology of Normal Cardiac Rhythm01:19

Electrophysiology of Normal Cardiac Rhythm

The normal cardiac rhythm is a synchronized electrical activity that facilitates the regular and coordinated contraction of the heart muscle. This process is essential for efficient blood circulation throughout the body. The fundamental elements involved in establishing and maintaining this rhythm include the unique electrical properties of cardiac muscle cells, the sinoatrial (SA) node's pacemaker function, the specialized conducting system, and the ionic mechanisms underlying each phase of...
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Typical heart performance is influenced by heart rate, rhythm, myocardial contraction, and metabolism or blood flow. The cardiac muscle exhibits distinct electrophysiological features, including pacemaker activity and calcium channel control, which play a vital role in the heart's response to various drugs. The autonomic nervous system, comprising the sympathetic and parasympathetic branches, regulates heart rate. Sympathetic activation increases heart rate, while parasympathetic activation...
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The heart, an organ critical to survival, gets nourishment not from the blood it pumps but from a separate circulation system known as coronary circulation. This is the shortest circulation in the body and is responsible for supplying the heart with the nutrients it needs to function effectively.
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心房动增加左心房和左心房附属体的超氧化物产量:NADPH和山丁氧化酶的作用.

Samuel C Dudley1, Nyssa E Hoch, Louise A McCann

  • 1Division of Cardiology, Department of Medicine, Emory University School of Medicine, Atlanta, GA, USA. sdudley@emory.edu

Circulation
|September 1, 2005
PubMed
概括

心房动 (AF) 增加左心室和附属部分的超氧化物产量,由NADPH和山丁氧化酶活动驱动. 这种氧化压力可能会导致AF相关的并发症,如血栓形成和炎症.

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科学领域:

  • 心血管研究研究心血管研究
  • 氧化压力生物学 氧化压力生物学
  • 心房动病理生理学

背景情况:

  • 心房动 (AF) 增加了由于左心房附属体 (LAA) 血栓的中风风险.
  • AF与内心功能障碍,氧化 (NO*) 降低,等离子体激活剂抑制剂-1.1的增加有关.
  • 假设:AF中LAA NO*的减少与超氧化物 (O2*-) 产量增加有关.

研究的目的:

  • 调查AF与左心室 (LA) 和LAA中超氧化物产生之间的关联.
  • 确定AF中超氧化物产量增加的酶源.

主要方法:

  • 在猪中,AF通过快速心房节奏在一周内诱导.
  • 使用电子自旋共振和细胞染色体C减小试验测量了超氧化物产量.
  • 通过酶试验评估了NADPH氧化酶和丁氧化酶的活动.

主要成果:

  • 与对照群相比,AF猪的LA和LAA的基础超氧化物产量显著增加了2.7-3.0倍.
  • 通过这两种测量技术证实了LAA超氧化物产量的增加.
  • 在AF中,NADPH氧化酶和山丁氧化酶活动升高,导致超氧化物生成.

结论:

  • 心房动显著提高了LA和LAA的超氧化物产量.
  • 增加的NADPH氧化酶和丁氧化酶活动是这种高超氧化物生产的关键贡献者.
  • 高水平的超氧化物及其代谢物可能导致AF相关的病理,包括血栓形成,炎症和组织重塑.