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相关概念视频

Translocation of Proteins into the Mitochondria01:19

Translocation of Proteins into the Mitochondria

3.1K
Mitochondrial precursors are translocated to the internal subcompartments via independent mechanisms involving distinct protein machineries called translocases.
Sorting of outer membrane proteins:
Mitochondrial outer membrane proteins are of two types: the transmembrane, beta-barrel porins, and the membrane-anchored, alpha-helical proteins. Beta-barrel porin precursors are translocated by the TOM complex and inserted into the outer mitochondrial membrane by the SAM complex. In contrast,...
3.1K
Mitochondrial Protein Sorting01:39

Mitochondrial Protein Sorting

4.3K
Mitochondria are double-membrane organelles of the eukaryotes involved in cellular metabolism, signaling, ATP synthesis, and programmed cell death.  Each of these processes requires specific proteins and enzymes that must be correctly sorted to the right mitochondrial subcompartment for the proper functioning of the organelle.
Most of these mitochondrial proteins are encoded by the nucleus and imported to the mitochondria as unfolded or loosely folded precursors. Mitochondrial precursors...
4.3K
Termination of Translation01:44

Termination of Translation

25.4K
The large ribosomal subunit has several important structures essential to translation. These include the peptidyl transferase center (PTC) - which is the site where the peptide bond is formed - and a large, internal, water-filled tube through which the nascent polypeptide moves. This latter structure is called the Peptide Exit Tunnel, and it begins at the PTC and spans the body of the large ribosomal subunit. During translation, as the nascent polypeptide chain is synthesized, it passes through...
25.4K
Protein Transport into the Inner Mitochondrial Membrane01:34

Protein Transport into the Inner Mitochondrial Membrane

3.7K
Nuclear encoded mitochondrial precursors are imported to the inner membrane in a multistep process involving two separate translocons, TIM22 and TIM23. TIM23 is a cation-selective pore that remains closed by the N terminal segment of the protein. Negative charges on the TIM23 act as a receptor for the incoming precursor, pulling the positively charged matrix-targeting sequence for peptide insertion and translocation.
Transport of mitochondrial precursors across the TIM23 channel is driven by...
3.7K
Energy to Drive Translocation01:37

Energy to Drive Translocation

2.1K
Mitochondrial protein import is powered by two distinct energy sources: ATP hydrolysis and electrochemical potential across the inner membrane. Newly synthesized precursors are bound by cytosolic chaperones of the Hsp70 family, which guide them to the import receptors on the mitochondrial surface. Utilizing the energy of ATP hydrolysis, Hsp70 chaperones transfer these precursors to the TOM receptors on the mitochondrial outer membrane.
Generally, polypeptides are unfolded by two distinct...
2.1K
Mitochondrial Precursor Proteins01:39

Mitochondrial Precursor Proteins

2.6K
Mitochondrial precursors are partially unfolded or loosely folded polypeptide chains. Newly synthesized precursors are inhibited from spontaneously folding into their native conformation by the cytosolic chaperones, heat shock proteins 70 (Hsp70), and mitochondrial import stimulation factors (MSFs). Precursors bound to MSFs are guided to the TOM70-TOM37 receptors, while precursors bound to Hsp70  chaperones are targetted to TOM20-TOM22 receptor complexes.
Most of the mitochondrial...
2.6K

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Pseudouridine synthase PUS1 and initiation factor mtIF2 are human mitoribosomal small subunit assembly factors.

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相关实验视频

Updated: Jun 25, 2025

Author Spotlight: Advancing Techniques and Discoveries in Protein Synthesis and Assembly Through Innovative Mitochondrial Research
09:53

Author Spotlight: Advancing Techniques and Discoveries in Protein Synthesis and Assembly Through Innovative Mitochondrial Research

Published on: June 7, 2024

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解密神秘:人类线粒体中翻译终止

Annika Krüger1, Daria Kovalchuk1, Dmitrii Shiriaev1

  • 1Department of Medical Biochemistry and Biophysics, Division of Molecular Metabolism, Karolinska Institutet, Solnavägen 9, Solna 171 65, Sweden.

Human molecular genetics
|May 23, 2024
PubMed
概括

线粒体翻译终止依赖mtRF1和mtRF1a等因素来实现精确的蛋白质合成. 本综述详细介绍了它们在人类线粒体中的结构和功能.

科学领域:

  • 线粒体生物学 线粒体生物学
  • 分子遗传学 分子遗传学
  • 蛋白质合成 蛋白质合成

背景情况:

  • 线粒体翻译合成关键的氧化酸化蛋白质.
  • 精确的蛋白质生产需要精确的翻译终结.
  • 专门的因素控制了线粒体翻译终结.

研究的目的:

  • 审查当前关于人类线粒体翻译终止的知识.
  • 强调mtRF1和mtRF1a的结构和功能方面.
  • 提供对这些关键终止因素的全面概述.

主要方法:

  • 关于线粒体翻译终止的文献综述.
  • 对终止因子的结构数据分析.
  • 对mtRF1和mtRF1a.a.的分子功能的检查.

主要成果:

  • 线粒体翻译终止涉及特定因素.
  • 在这个过程中,mtRF1和mtRF1a是关键参与者.
  • 它们的结构和功能对于准确性至关重要.

结论:

  • 了解mtRF1和mtRF1a对于线粒体健康至关重要.
关键词:
线粒体翻译是指线粒体的翻译.线粒体翻译终止因子基基因组中的基基因组

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  • 这些因素确保了有效和正确的蛋白质合成.
  • 进一步的研究可以阐明它们在疾病中的作用.