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相关概念视频

Ligand Binding and Linkage00:49

Ligand Binding and Linkage

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Allosteric proteins have more than one ligand binding site; the binding of a ligand to any of these sites influences the binding of ligands to the other sites. When a protein is allosteric, its binding sites are called coupled or linked.  In the case of enzymes, the site that binds to the substrate is known as the active site and the other site is known as the regulatory site. When a ligand binds to the regulatory site, this leads to conformational changes in the protein that can influence...
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Cooperative Allosteric Transitions01:58

Cooperative Allosteric Transitions

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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...
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The Two-State Receptor Model01:29

The Two-State Receptor Model

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The two-state receptor model explains a drug's interaction with receptors, such as G protein-coupled receptors and ligand-gated ion channels, to induce or inhibit a biological response. When no natural ligands are present, a receptor exists in an equilibrium of inactive (Ri) and active (Ra) conformations. The inactive form does not produce a response, while the active form generates a basal effect known as constitutive activity.
The binding affinity of a drug determines its interaction with...
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Ligand Binding Sites02:40

Ligand Binding Sites

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Proteins are dynamic macromolecules that carry out a wide variety of essential processes; however, the activities of most proteins depend on their interactions with other molecules or ions, known as ligands.
Protein-ligand interactions are quite specific; even though numerous potential ligands surround a cellular protein at any given time, only a particular ligand can bind to that protein. Moreover, a ligand binds only to a dedicated area on the surface of the protein, known as the...
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The Equilibrium Binding Constant and Binding Strength02:18

The Equilibrium Binding Constant and Binding Strength

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The equilibrium binding constant (Kb) quantifies the strength of a protein-ligand interaction. Kb can be calculated as follows when the reaction is at equilibrium:
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Conserved Binding Sites

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Many proteins’ biological role depends on their interactions with their ligands, small molecules that bind to specific locations on the protein known as ligand-binding sites. Ligand-binding sites are often conserved among homologous proteins as these sites are critical for protein function.
Binding sites are often located in large pockets, and if their location on a protein’s surface is unknown, it can be predicted using various approaches. The energetic method computationally...
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Method for Efficient Refolding and Purification of Chemoreceptor Ligand Binding Domain
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关于用于调节反应率的联体构造性自我适应的理论研究.

Chunhui Shan1, Xiong Liu2, Xiaoling Luo2

  • 1College of Chemistry, Chongqing Normal University, Chongqing, 401331, China. chunhui.shan@cqnu.edu.cn.

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概括

约西-催化剂可实现高效的循环/碳化. 密度功能理论 (DFT) 揭示了一种独特的基插入机制,并且连接体自我适应是这个过程中高反选择性的关键.

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科学领域:

  • 有机金属化学 有机金属化学
  • 催化剂是一种催化剂.
  • 计算化学的计算化学

背景情况:

  • (Pd) 催化剂与约西福斯型连接体对于高效的催化过程至关重要.
  • 了解反应机制是优化选择性和反应性的关键.

研究的目的:

  • 为了阐明反应机制和Pd-催化 1,6-enynes. carbonylation 的 Pd-催化循环/碳化中的动态形状变化.
  • 调查约西福斯-Pd连接体构造在反应性和酶选择性中的作用.

主要方法:

  • 密度函数理论 (DFT) 的计算.
  • 对反应途径的分析,包括迁移的插入.
  • 表面距离投影地图和分子间几何学 (IGM) 分析.

主要成果:

  • 最有利的途径涉及一个不寻常的基插入到碳键.
  • 约西福斯-Pd骨干自我适应允许两个不同的连接体构造,增强反应性.
  • 对于迁移插入,控制速率和enantioselectivity,一个半椅子形状是首选的.
  • 连接体和基质之间的固体相互作用对酶选择性至关重要.

结论:

  • DFT计算提供了对Pd催化循环/碳化过程的机理性见解.
  • 连接体构造和基质-连接体固体效应对于实现高反选择性至关重要.
  • 该研究强调了催化剂设计和计算方法在开发选择性催化过程中的重要性.