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相关概念视频

Transcellular Transport of Solutes01:23

Transcellular Transport of Solutes

3.5K
Transcellular transport of solutes is the movement of substances like monosaccharides and amino acids through polarized cells. This transport mechanism is primarily seen in epithelial and endothelial cells aided by membrane transport proteins such as channels and transporters. The tight junctions between these cells confine the membrane proteins to the two sides of the cell. The epithelial cells have distinct apical and basolateral domains. In contrast, the endothelial cells show the luminal...
3.5K
Facilitated Diffusion01:16

Facilitated Diffusion

316
The plasma membrane, a critical structure in cellular biology, houses an array of transporters, or carrier proteins, interspersed within its lipid bilayer. These proteins play a crucial role in solute transport through facilitated diffusion, a form of passive diffusion that uses transporters to move the molecules across the membrane.
In this process, substrates such as organic compounds and ions interact with a transporter on one side, triggering conformational changes in proteins that enable...
316
The Significance of Membrane Transport01:44

The Significance of Membrane Transport

23.6K
The transport of solutes across the cell membrane is essential for metabolic processes, like maintaining cell size and volume, generating the action potential, exchanging nutrients and gases, etc. Membrane transport can be either passive or active. It can be simple diffusion, facilitated, or mediated transport aided by transport proteins such as transporters and channels.
Transporters facilitate either an active or passive movement of solutes. They can allow a single-molecule transport down its...
23.6K
Transport Across the Golgi01:26

Transport Across the Golgi

4.1K
While it is unclear how molecules move between adjacent Golgi cisternae, it is apparent that the molecules move from cis- cisterna, the entry face, to the trans- cisterna, the exit face. Experiments initially suggested vesicles that bud from one cisterna and fuse with the next cisterna to transport proteins between the cisternae. This vesicular transport model describes the Golgi apparatus as a relatively static structure with a unique enzyme composition in each cisterna. Molecules are...
4.1K
Membrane Transporters01:31

Membrane Transporters

10.4K
Transporters are essential membrane transport proteins with functions related to cell nutrition, homeostasis, communication, etc. Approximately 7% of all genes in the human genome code for transporters or transporter-related proteins.
Transporters are mainly composed of alpha-helices, built from bundles of ten or more helices traversing the plasma membrane. The solute-binding sites are located midway, where some of the helices are broken or distorted, making space for the binding site through...
10.4K
Mechanisms of Drug Absorption: Paracellular, Transcellular, and Vesicular Transport01:23

Mechanisms of Drug Absorption: Paracellular, Transcellular, and Vesicular Transport

446
Drugs need to permeate cell membranes to reach their target sites after administration. Orally administered drugs must transcend intestinal epithelial membrane barriers to infiltrate the systemic circulation. Drugs with a molecular weight of less than 500 Daltons diffuse through gaps between neighboring cells, called paracellular pathways.
However, most drugs use the transcellular route, traversing directly through the cell membranes via two mechanisms: passive and active transport. Passive...
446

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相关实验视频

Updated: Jun 7, 2025

Spatial Temporal Analysis of Fieldwise Flow in Microvasculature
09:39

Spatial Temporal Analysis of Fieldwise Flow in Microvasculature

Published on: November 18, 2019

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通过不断发展的空间网络,交通的脆弱性.

Ali Molavi1, Hossein Hamzehpour1, Reza Shaebani2

  • 1Department of Physics, <a href="https://ror.org/0433abe34">K.N. Toosi University of Technology</a>, Tehran 15875-4416, Iran.

Physical review. E
|November 20, 2024
PubMed
概括

研究人员通过阻止中央交通枢纽来研究不断发展的空间网络中的阻塞漏洞. 他们发现了一条与自身相似的阻塞路径,从而能够预测网络不可穿透性,并揭示了增加的空间相关性.

科学领域:

  • 网络科学 网络科学
  • 复杂的系统复杂的系统.
  • 材料科学 是一种材料科学.

背景情况:

  • 了解多孔介质和城市基础设施等网络中的运输弹性至关重要.
  • 空间网络表现出对阻塞的脆弱性,影响了强度和故障.

研究的目的:

  • 调查不断发展的空间网络的阻塞脆弱性.
  • 为了确定阻塞骨干的特征,并预测网络不可穿透性.

主要方法:

  • 在多孔格子结构上对中央运输枢纽进行详尽的搜索.
  • 主要枢纽的递归确定和阻断,直到网络无透.
  • 阻塞骨干分形尺寸和最短路径长度分布的分析.

主要成果:

  • 阻塞骨干表现出一种自我相似的路径,其碎形维度小于最佳路径裂模型.
  • 一个主曲线根据初始占用率和网络大小预测网络不可穿透性的开始.
  • 阻塞过程导致最短路径长度分布的扩大,表明空间相关性增加.

结论:

  • 该研究提供了对网络阻塞的自我相似性质的见解.
  • 建立了一个网络不可穿透性的预测模型.

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  • 这些发现与了解和管理各种现实世界的网络中的弹性有关.