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相关概念视频

ATP Driven Pumps II: P-type Pumps01:34

ATP Driven Pumps II: P-type Pumps

4.9K
The P-type pumps are a large family of integral membrane transporter ATPases. They are divided into five major types based on substrate specificity, from I to V.
A typical P-type pump has three cytosolic domains: nucleotide-binding (N), phosphorylation (P), and activator (A) domains. These domains are connected to the membrane-spanning helices by short amino acid segments. ATP hydrolysis and covalent phosphoenzyme intermediate formation are crucial parts of the catalytic cycle. At the highly...
4.9K
Primary Active Transport01:29

Primary Active Transport

10.3K
In contrast to passive transport, active transport involves a substance being moved through membranes in a direction against its concentration or electrochemical gradient. There are two types of active transport: primary active transport and secondary active transport. Primary active transport utilizes chemical energy from ATP to drive protein pumps embedded in the cell membrane. With energy from ATP, the pumps transport ions against their electrochemical gradients—a direction they would...
10.3K
ATP Driven Pumps III: V-type Pumps01:30

ATP Driven Pumps III: V-type Pumps

3.8K
V-type pumps are ATP-driven pumps found in the vacuolar membranes of plants, yeast, endosomal and lysosomal membranes of animal cells, plasma membranes of a few specialized eukaryotic cells, and some prokaryotes. They are also known as the V1Vo-ATPase, that couple ATP hydrolysis to transport protons against a concentration gradient.
The peripheral or cytosolic V1 domain with eight subunits is involved in ATP hydrolysis. The integral or transmembrane V0 domain containing at least five subunits...
3.8K
ATP Driven Pumps I: An Overview01:27

ATP Driven Pumps I: An Overview

8.2K
ATP-driven pumps, also known as transport ATPases, are integral membrane proteins. They have binding sites for ATP located on the membrane's cytosolic side and the ion-conducting domain in the transmembrane region. These pumps use the free energy released from ATP hydrolysis to move the solutes across cell membranes against an electrochemical gradient.
There are four main types of ATP-driven pumps - P-type, V-type, F-type, and ABC transporter. All these pumps are of varying complexities and...
8.2K
Active Transport01:14

Active Transport

743
Active transport is a critical biological process that allows cells to move solutes against an electrochemical gradient. This process requires direct energy input and is characterized by its selectivity, saturability, and susceptibility to competitive inhibition.
Primary active transporters, like Na+, K+ and -ATPase, directly utilize ATP to move ions across the membrane. These transporters play significant roles in various physiological processes. For instance, Na+, K+ and -ATPase maintain...
743
Secondary Active Transport01:32

Secondary Active Transport

7.1K
One example of how cells use the energy contained in electrochemical gradients is demonstrated by glucose transport into cells. The ion vital to this process is sodium (Na+), which is typically present in higher concentrations extracellularly than in the cytosol. Such a concentration difference is due, in part, to the action of an enzyme "pump" embedded in the cellular membrane that actively expels Na+ from a cell. Importantly, as this pump contributes to the high concentration of...
7.1K

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相关实验视频

Updated: Jul 15, 2025

Membrane Transport Processes Analyzed by a Highly Parallel Nanopore Chip System at Single Protein Resolution
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Membrane Transport Processes Analyzed by a Highly Parallel Nanopore Chip System at Single Protein Resolution

Published on: August 16, 2016

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将催化活性毛孔转化为活性.

G C Antunes1, P Malgaretti1, J Harting1,2

  • 1Helmholtz-Institut Erlangen-Nürnberg für Erneuerbare Energien (IEK-11), Forschungszentrum Jülich, Cauer Str. 1, 91058 Erlangen, Germany.

The Journal of chemical physics
|October 3, 2023
PubMed
概括

由于对称性破裂,活跃的毛孔可以充当微. 这项研究表明,孔隙不对称性和溶解物反应时间控制了这些活跃运输系统中的转换和流量.

科学领域:

  • 物理化学 物理化学
  • 化学工程是化学工程的重要组成部分.
  • 生物物理学的生物物理.

背景情况:

  • 活跃的毛孔表现出自我扩散的osmotic 运输,涉及向导和溶解物消耗.
  • 之前的研究表明,在对称的毛孔中,自发的对称性被打破,从而实现微.
  • 了解活跃孔的动态对于设计微流体设备至关重要.

研究的目的:

  • 研究活孔中的转换的控制机制.
  • 探索孔隙不对称性和溶解物反应时间尺度对运输动态的作用.
  • 为了证明毛孔形状和催化模式如何影响活毛孔性能.

主要方法:

  • 开发一个半分析模型的自我扩散的osmotic运输.
  • 对向和扩散运输时间尺度的分析.
  • 模拟消耗孔内溶液的逆化学反应.
  • 研究孔隙不对称性对流速和过渡行为的影响.

主要成果:

  • 在对称毛孔中的过渡由三个时间尺度来规范:向导,扩散和溶液停留时间.
  • 孔不对称性引入了第二个辅向启用过渡.
  • 不对称的毛孔在参数调节的流速中表现出不连续的跳跃和歇斯底里.

更多相关视频

Unraveling Entropic Rate Acceleration Induced by Solvent Dynamics in Membrane Enzymes
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Unraveling Entropic Rate Acceleration Induced by Solvent Dynamics in Membrane Enzymes

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Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
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Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess

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相关实验视频

Last Updated: Jul 15, 2025

Membrane Transport Processes Analyzed by a Highly Parallel Nanopore Chip System at Single Protein Resolution
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Membrane Transport Processes Analyzed by a Highly Parallel Nanopore Chip System at Single Protein Resolution

Published on: August 16, 2016

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Unraveling Entropic Rate Acceleration Induced by Solvent Dynamics in Membrane Enzymes
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Unraveling Entropic Rate Acceleration Induced by Solvent Dynamics in Membrane Enzymes

Published on: January 16, 2016

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Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
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Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess

Published on: June 1, 2022

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结论:

  • 毛孔形状和催化模式是活跃毛孔动态的相互关联因素.
  • 这项研究提供了对设计活体毛孔的见解,以优化送性能.
  • 这项研究促进了对活体系统中微流体运输现象的理解.