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相关概念视频

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
Translocation of Proteins into the Mitochondria01:19

Translocation of Proteins into the Mitochondria

3.2K
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,...
3.2K
Mitochondrial Protein Sorting01:39

Mitochondrial Protein Sorting

4.4K
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...
4.4K
ATP Synthase: Mechanism01:48

ATP Synthase: Mechanism

15.1K
In animals, the mitochondrial F1F0 ATP synthase is the key protein that synthesizes ATP molecules through a complex catalytic mechanism. While the nuclear genome encodes the majority of ATP synthase subunits, the mitochondrial genome encodes some of the enzyme's most critical components. The formation of this multi-subunit enzyme is a complex multi-step process regulated at the level of transcription, translation, and assembly. Defects in one or more of these steps can result in decreased...
15.1K
The Inner Mitochondrial Membrane01:28

The Inner Mitochondrial Membrane

3.6K
The inner mitochondrial membrane is the primary site of ATP synthesis. The inner membrane domain that forms a smooth layer adjacent to the outer membrane is called the inner boundary membrane. This domain contains membrane transporters that drive metabolites in and out of the mitochondria.  In contrast, the inner membrane network that invaginates into the matrix space is called the cristae membrane. This domain accounts for principle mitochondrial function as it accommodates the protein...
3.6K
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

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相关实验视频

Updated: Sep 9, 2025

Visualization of ATP Synthase Dimers in Mitochondria by Electron Cryo-tomography
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Visualization of ATP Synthase Dimers in Mitochondria by Electron Cryo-tomography

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线粒体ATP的模式预测组织折叠

Bezia Lemma, Megan Rothstein, Pengfei Zhang

    bioRxiv : the preprint server for biology
    |September 5, 2025
    PubMed
    概括

    在胚胎发育过程中,线粒体通过在需要的地方集中能量来促进组织折叠. 这种局部化的能量生产在各个物种中得到保护,对于形成复杂的形状至关重要.

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    相关实验视频

    Last Updated: Sep 9, 2025

    Visualization of ATP Synthase Dimers in Mitochondria by Electron Cryo-tomography
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    Visualization of ATP Synthase Dimers in Mitochondria by Electron Cryo-tomography

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    科学领域:

    • 发育生物学
    • 细胞生物能学
    • 组织形态发生

    背景情况:

    • 胚胎发育依赖于协调的基因表达和机械力量.
    • 细胞能量主要来自三酸盐 (ATP) 的水解,为这些发育过程提供动力.
    • 上收缩是动物界上皮组织折叠的基本机制.

    研究的目的:

    • 研究胚胎组织形态发生过程中化学能量的空间模式.
    • 确定线粒体在尖端收缩和组织折叠中的作用.
    • 探索生物能量模式在发展中的保护和预测能力.

    主要方法:

    • 使用时间延迟成像来观察形态发生过程中的细胞动态.
    • 使用空间转录学来绘制基因表达和细胞状态.
    • 测量氧气消耗率以量化细胞能量生产.
    • 抑制氧化酸化以评估其对组织折叠的影响.

    主要成果:

    • 在缩过程中,线粒体在上皮细胞中被缩.
    • 线粒体密度,膜潜力和ATP水平的增加先于动肌素收缩和组织折叠.
    • 抑制氧化酸化可以防止组织折叠,强调其必要性.
    • 在,小和小鼠中保留了线粒体丰富模式.

    结论:

    • 局部化的线粒体活动和ATP生产对于驱动尖端收缩至关重要.
    • 空间生物能学是胚胎形态发生的一个关键,保存的特征.
    • 亚细胞能量模式可以预测组织折叠的动态.