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相关概念视频

Cotranslational Protein Translocation01:20

Cotranslational Protein Translocation

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Translocation of proteins across membranes is an ancient process that occurs even in bacteria and archaebacteria. In fact, the components of the translocation machinery are still conserved between prokaryotes and eukaryotes.
Sec61 channel partners for cotranslational translocation
During cotranslational translocation, the Sec61 channel partners with the signal recognition particle (SRP), the signal recognition particle receptor (SR), and the ribosomes to transport the nascent polypeptide chain...
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Membrane Transporters01:31

Membrane Transporters

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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...
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Protein Transport to the Thylakoids01:22

Protein Transport to the Thylakoids

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Thylakoids are membrane-bound sac-like structures within the chloroplast that serve as sites for photosynthesis. Thylakoid lumen contains many electron transport proteins and is enclosed by a thylakoid membrane rich in the light-harvesting complex. Proteins targeted to the thylakoids are transported as precursors and are sorted by the general TOC/TIC import pathway. Once the precursor reaches the stroma, stromal processing peptidases remove their transit signal and expose thylakoid signal...
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The Significance of Membrane Transport01:44

The Significance of Membrane Transport

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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...
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Protein Transport to the Stroma01:24

Protein Transport to the Stroma

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Chloroplasts are triple membrane structures with an outer membrane, an inner membrane, and a thylakoid membrane, each containing distinct metabolite transporters, membrane translocons, and enzymes. Appropriate sorting and translocating these proteins to their correct membrane systems is essential for chloroplast function.
Protein complexes called the translocon of the outer chloroplast membrane or TOC complex, and the translocon of the inner chloroplast membrane or TIC complex mediate the...
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Active Transport01:14

Active Transport

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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...
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Models and Methods to Evaluate Transport of Drug Delivery Systems Across Cellular Barriers
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小单元-单元逻辑控制TPMS架构中的运输.

Haozhang Zhong1,2, Yipei He1, Jiaxuan Wang3

  • 1Institute of Materials Modification and Modeling, Shanghai Jiao Tong University, Shanghai, China.

Advanced science (Weinheim, Baden-Wurttemberg, Germany)
|March 9, 2026
PubMed
概括

研究人员开发了一个新的框架,以了解三次周期最小表面 (TPMS) 如何输送流体. 这个模型将TPMS几何与效率联系起来,使得更好的能源和热系统的设计成为可能.

关键词:
通过3D打印打印3D打印.在TPMS的元材料中.细胞子单位的细胞.运输的功能是运输的功能.

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Introduction to Solid Supported Membrane Based Electrophysiology
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科学领域:

  • 材料科学 材料科学 材料科学
  • 化学工程是化学工程的重要组成部分.
  • 物理 物理学 物理

背景情况:

  • 下一代系统需要高效的多尺度运输架构.
  • 三次周期最小面 (TPMS) 提供可扩展的几何形状,但缺乏明确的性能链接.
  • 对TPMS拓性能关系的机制理解是有限的.

研究的目的:

  • 为TPMS运输引入一个子单元-单元管道框架.
  • 建立TPMS拓与运输效率之间的联系.
  • 为了实现高性能TPMS材料的合理设计.

主要方法:

  • 集成的晶体对称性分析与沃罗诺伊测样.
  • 开发了一个子单元细胞导管框架来分析TPMS.
  • 导出预测描述符和一个绩效系数.
  • 制造和测试的增材制造铜费舍尔-科赫TPMS热交换器.

主要成果:

  • TPMS可以分解为内在导管,其几何和连接性取决于拓.
  • 运输效率取决于管道的统一性和空间密度.
  • 费舍尔-科赫拓显示了热交换机效率的显著改善.
  • 实验结果验证了模型预测,显示效率增加了156倍.

结论:

  • 小单元-细胞导管框架为TPMS设计提供了可概括的机械基础.
  • 这种方法使TPMS架构材料的合理设计能够适用于各种运输应用.
  • 该研究促进了对TPMS的理解,用于能源,热和化学系统.