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Introduction to Enzyme Kinetics01:19

Introduction to Enzyme Kinetics

Enzyme kinetics studies the rates of biochemical reactions. Scientists monitor the reaction rates for a particular enzymatic reaction at various substrate concentrations. Additional trials with inhibitors or other molecules that affect the reaction rate may also be performed.
The experimenter can then plot the initial reaction rate or velocity (Vo) of a given trial against the substrate concentration ([S]) to obtain a graph of the reaction properties. For many enzymatic reactions involving a...
Effect of Temperature Change on Reaction Rate02:28

Effect of Temperature Change on Reaction Rate

The Arrhenius equation,
Predicting Reaction Outcomes02:24

Predicting Reaction Outcomes

Kinetics describes the rate and path by which a reaction occurs. In contrast, thermodynamics deals with state functions and describes the properties, behavior, and components of a system. It is not concerned with the path taken by the process and cannot address the rate at which a reaction occurs. Although it does provide information about what can happen during a reaction process, it does not describe the detailed steps of what appears on an atomic or a molecular level. On the other hand,...
Enzyme Kinetics01:19

Enzyme Kinetics

Enzymes speed up reactions by lowering the activation energy of the reactants. The speed at which the enzyme turns reactants into products is called the rate of reaction. Several factors impact the rate of reaction, including the number of available reactants. Enzyme kinetics is the study of how an enzyme changes the rate of a reaction.
Scientists typically study enzyme kinetics with a fixed amount of enzyme in the controlled environment of a test tube. When more reactant, or substrate, is...
Transition State Theory01:25

Transition State Theory

Transition-state theory, also known as activated-complex theory, provides a molecular-level explanation of reaction rates in both gas-phase and solution-phase reactions. It extends earlier kinetic models by considering the formation of a short-lived, high-energy configuration during a reaction.The progress of a chemical reaction can be represented using a reaction profile, which plots potential energy against the reaction coordinate. As two reactant molecules approach one another, their...
Free Energy and Equilibrium02:56

Free Energy and Equilibrium

The free energy change for a process may be viewed as a measure of its driving force. A negative value for ΔG represents a driving force for the process in the forward direction, while a positive value represents a driving force for the process in the reverse direction. When ΔGrxn is zero, the forward and reverse driving forces are equal, and the process occurs in both directions at the same rate (the system is at equilibrium).
Recall that Q is the numerical value of the mass action expression...

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相关实验视频

Updated: Jul 15, 2026

Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions
13:00

Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions

Published on: April 4, 2014

贝塔-的动力效应

Raffaello Romeo1, Giuseppina D'Amico, Emilia Sicilia

  • 1Dipartimento di Chimica Inorganica, Chimica Analitica e Chimica Fisica, Università di Messina, Salita Sperone, 31-Vill. S. Agata-98166 Messina, Italy. rromeo@unime.it

Journal of the American Chemical Society
|April 6, 2007
PubMed
概括

这项研究表明,β-素通过毒性相互作用加速复合物异构化. 这些相互作用稳定了中间体,这对于理解催化中激活至关重要.

科学领域:

  • 有机金属化学 有机金属化学
  • 计算化学计算化学
  • 反应动力学反应动力学

背景情况:

  • 阴离子复合物经历从 cis 到 trans 异构体的异构化.
  • 反应机制涉及溶剂解离和中间体的形成.
  • 替代剂和溶剂相互作用的作用尚未完全理解.

研究的目的:

  • 为了研究cis-[Pt(R')(S)(PR3)2]+的未催化异构化到跨异构体.
  • 阐明机制,包括确定速率的步骤和中间阶段.
  • 了解β-和毒性相互作用对反应速率的影响.

主要方法:

  • 结合动力实验和密度函数理论 (DFT) 计算.
  • 对反应路径,过渡状态和中间结构的分析.
  • 分离能量的量化和激活障碍.

主要成果:

  • 异构化通过溶剂损失和T形中间体进行.
  • β-通过β-的动力效应显著加快反应速度.
  • DFT证实中介物中存在Pt....eta2-HC的毒性相互作用,使它们稳定21-33kJmol-1.

结论:

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Last Updated: Jul 15, 2026

Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions
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Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions

Published on: April 4, 2014

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  • 抗性相互作用在稳定复杂中间体中起着关键作用.
  • 了解这些相互作用对于控制反应通路至关重要,特别是在酸盐激活过程中.
  • β-的动力效应提供了一个加速这些反应的机制.