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相关概念视频

Enzymes02:34

Enzymes

Inside living organisms, enzymes act as catalysts for many biochemical reactions involved in cellular metabolism. The role of enzymes is to reduce the activation energies of biochemical reactions by forming complexes with its substrates. The lowering of activation energies favor an increase in the rates of biochemical reactions.
Enzyme deficiencies can often translate into life-threatening diseases. For example, a genetic abnormality resulting in the deficiency of the enzyme G6PD...
Cooperative Allosteric Transitions01:58

Cooperative Allosteric Transitions

Cooperative allosteric transitions can occur in multimeric proteins, where each subunit of the protein has its own ligand-binding site. When a ligand binds to any of these subunits, it triggers a conformational change that affects the binding sites in the other subunits; this can change the affinity of the other sites for their respective ligands. The ability of the protein to change the shape of its binding site is attributed to the presence of a mix of flexible and stable segments in the...
Catalytically Perfect Enzymes01:07

Catalytically Perfect Enzymes

The theory of catalytically perfect enzymes was first proposed by W.J. Albery and J. R. Knowles in 1976. These enzymes catalyze biochemical reactions at high-speed. Their catalytic efficiency values range from 108-109 M-1s-1. These enzymes are also called 'diffusion-controlled' as the only rate-limiting step in the catalysis is that of the substrate diffusion into the active site. Examples include triose phosphate isomerase, fumarase, and superoxide dismutase.
Cooperative Allosteric Transitions01:58

Cooperative Allosteric Transitions

Cooperative allosteric transitions can occur in multimeric proteins, where each subunit of the protein has its own ligand-binding site. When a ligand binds to any of these subunits, it triggers a conformational change that affects the binding sites in the other subunits; this can change the affinity of the other sites for their respective ligands. The ability of the protein to change the shape of its binding site is attributed to the presence of a mix of flexible and stable segments in the...
Cooperative Allosteric Transitions01:58

Cooperative Allosteric Transitions

Cooperative allosteric transitions can occur in multimeric proteins, where each subunit of the protein has its own ligand-binding site. When a ligand binds to any of these subunits, it triggers a conformational change that affects the binding sites in the other subunits; this can change the affinity of the other sites for their respective ligands. The ability of the protein to change the shape of its binding site is attributed to the presence of a mix of flexible and stable segments in the...
Bioreactor Controls-II01:18

Bioreactor Controls-II

In aerobic fermentations, oxygen is vital for microbial growth and metabolite production. Since air comprises only about 20% oxygen and the gas is poorly soluble in water—just 9 ppm at 20°C—supplying sufficient oxygen becomes a critical challenge, especially in high-demand processes like yeast growth or citric acid production. Even a fully saturated broth may offer only a few seconds of oxygen availability.To address this, sterile or scrubbed air is introduced into the fermentor via a sparger...

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相关实验视频

Updated: Jul 20, 2026

A New Approach for the Comparative Analysis of Multiprotein Complexes Based on 15N Metabolic Labeling and Quantitative Mass Spectrometry
08:04

A New Approach for the Comparative Analysis of Multiprotein Complexes Based on 15N Metabolic Labeling and Quantitative Mass Spectrometry

Published on: March 13, 2014

共价中间体和酶能力能力.

Thomas C Bruice1, Paula Yurkanis Bruice

  • 1Department of Chemistry and Biochemistry, University of California, Santa Barbara, California 93106, USA. tcbruice@chem.ucsb.edu

Journal of the American Chemical Society
|September 8, 2005
PubMed
概括

酶效率源于水中的缓慢反应速率,而不是形成共价中间体. 这一发现澄清了酶催化背后的机制.

科学领域:

  • 生物化学 生物化学
  • 酶学 是一种酶学.
  • 化学动力学 化学动力学

背景情况:

  • 酶是加速生化反应的生物催化剂.
  • 了解酶效率对于各种生物和医学应用至关重要.
  • 在酶催化中共价中间体的作用一直是一个长期存在的问题.

研究的目的:

  • 调查导致高酶效率的主要因素.
  • 为了确定共价中间体形成或反应速率常数是否是关键.
  • 阐明酶的催化机制,特别是在水性环境中.

主要方法:

  • 对各种酶反应的动态数据的分析.
  • 酶催化反应的计算建模.
  • 在水中的反应速率与酶结合状态的比较.

主要成果:

  • 酶效率主要归因于水中的反应的小速率常数.
  • 同价中间体的形成似乎不是实现高酶效率的重要因素.
  • 酶反应中的速率限制步骤通常与溶剂相互作用有关.

结论:

  • 通过优化反应环境来实现高酶效率,从而降低了水中的速率常数.

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  • 缺乏对共价中间体的依赖,简化了许多酶催化机制的理解.
  • 进一步的研究可以专注于调节溶剂效应以增强酶活性.