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相关概念视频

Allosteric Regulation01:08

Allosteric Regulation

Allosteric regulation of enzymes occurs when the binding of an effector molecule to a site that is different from the active site causes a change in the enzymatic activity. This alternate site is called an allosteric site, and an enzyme can contain more than one of these sites. Allosteric regulation can either be positive or negative, resulting in an increase or decrease in enzyme activity. Most enzymes that display allosteric regulation are metabolic enzymes involved in the degradation or...
Enzyme Inhibition01:30

Enzyme Inhibition

Inhibitors are molecules that reduce enzyme activity by binding to the enzyme. In a normally functioning cell, enzymes are regulated by a variety of inhibitors. Drugs and other toxins can also inhibit enzymes. Some inhibitors bind to the enzyme’s active site, while others inhibit enzymatic activity by binding to other sites on the protein structure.
Overview of Metabolism01:40

Overview of Metabolism

Living cells constantly carry out various chemical reactions which are necessary for their proper functioning. These reactions are interlinked to one another via multiple pathways. The collection of these chemical reactions is known as metabolism.
Plant Metabolism
Sunlight, the primary source of energy in plants, is first absorbed by the chlorophyll pigments present in their leaves. Plants then use this energy to carry out photosynthesis, where water is oxidized into oxygen and carbon dioxide...
Regulation of Metabolism01:19

Regulation of Metabolism

Cellular needs and conditions vary from cell to cell and change within individual cells over time. For example, the required enzymes and energetic demands of stomach cells are different from those of fat storage cells, skin cells, blood cells, and nerve cells. Furthermore, a digestive cell works much harder to process and break down nutrients during the time that closely follows a meal compared with many hours after a meal. As these cellular demands and conditions vary, so do the amounts and...
Allosteric Proteins-ATCase01:19

Allosteric Proteins-ATCase

Binding sites linkages can regulate a protein's function.  For example, enzyme activity is often regulated through a feedback mechanism where the end product of the biochemical process serves as an inhibitor.
Aspartate transcarbamoylase (ATCase) is a cytosolic enzyme that catalyzes the condensation of L-aspartate and carbamoyl phosphate to  N-carbamoyl-L-aspartate. This reaction is the first step in pyrimidine biosynthesis. UTP and CTP, the end products of the pyrimidine synthesis pathway,...
GPCRs Regulate Adenylyl Cylase Activity01:09

GPCRs Regulate Adenylyl Cylase Activity

Some GPCRs transmit signals through adenylyl cyclase (AC), a transmembrane enzyme. AC helps synthesize second messenger cyclic adenosine monophosphate (cAMP). AC catalyzes cyclization reaction and converts ATP to cAMP by releasing a pyrophosphate. The pyrophosphate is further hydrolyzed to phosphate by the enzyme pyrophosphatase, which drives cAMP synthesis to completion. However, cAMP is rapidly degraded to 5′ AMP by the enzymes phosphodiesterase (PDE), preventing overstimulation of cells.
Two...

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大分子拥挤可以帮助调节谷氨酸脱酶活性吗?

Genesis Rosario1, Andrea Desrochers2, Alec Robitaille3

  • 1Weill Cornell Medicine, Imaging, Midtown East 416 East 55th Street New York, New York, New York 10065, United States.

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概括

线粒体中的宏分子拥挤和pH波动微调谷氨酸脱酶 (GDH) 活性. 拥挤有利于封闭的GDH构造,影响质效应因子对酶调节.

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科学领域:

  • 生物化学 生物化学
  • 酶学 是一种酶学.
  • 线粒体的新陈代谢

背景情况:

  • 谷氨酸脱酶 (GDH) 是一个关键的线粒体酶,调节代谢流动.
  • GDH活动受到全效应因子的严格控制,失调与疾病有关.
  • 线粒体矩阵环境,包括拥挤和pH值,可能会影响GHD调节.

研究的目的:

  • 调查宏分子拥挤和pH如何影响GHD动力学和全调节.
  • 阐明拥挤的线粒体矩阵在微调GDH活动中的作用.

主要方法:

  • 迈凯利斯-门动力学测定与合成和蛋白质拥挤剂.
  • 耳环图和古典分子动力学模拟.
  • 分析pH值依赖的效应和全效应因子相互作用.

主要成果:

  • 在拥挤条件下,GDH活性以pH依赖的方式下降.
  • 大分子拥挤有利于封闭的GDH构造,阻碍产品的释放.
  • 拥挤增加了关键氨酸残留物的pKa,在较低的pH值下促进了失败的复合物.
  • 拥挤取消了白激活,但没有抑制GTP.

结论:

  • 大分子拥挤和pH值是调节GHD活性的关键因素.
  • 排除的体积效应影响GDH构造和全调节.
  • 拥挤,pH和效应因子之间的复杂相互作用微调了GDH功能.