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相关概念视频

Mitochondrial Membranes01:45

Mitochondrial Membranes

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A single mitochondrion is a bean-shaped organelle enclosed by a double-membrane system. The outer membrane of mitochondria is smooth and contains many porins - the integral membrane transporters. Porins enable free diffusion of ions and small uncharged molecules through the outer mitochondrial membrane but limit the transport of molecules larger than 5000 Daltons. Further, the outer mitochondrial membrane forms a unique structure called membrane contact sites with other subcellular organelles,...
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Mitochondria01:37

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Mitochondria are eukaryotic cellular organelles that are known to produce energy through a process called oxidative phosphorylation. Besides their primary function, mitochondria are involved in various cellular processes, including cell growth, differentiation, signaling, metabolism, and senescence. Age-related changes cause a decline in mitochondrial quality and integrity due to increased mitochondrial mutations and oxidative damage. Thus, aging can severely impact mitochondrial functions,...
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In the CNS, neurogenesis, the birth of new neurons from stem cells, is limited to the hippocampus in adults. In other regions of the brain and spinal cord, neurogenesis is almost non-existent due to inhibitory influences from neuroglia, especially oligodendrocytes, and the absence of growth-stimulating cues. The myelin produced by oligodendrocytes in the CNS inhibits neuronal regeneration. Furthermore, astrocytes proliferate rapidly after neuronal damage, forming scar tissue that physically...
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The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
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相关实验视频

Updated: Dec 12, 2025

Understanding the Changes in Mitochondrial Morphology through Dynamic and Three-dimensional Fluorescence Micrographs
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转基因细胞中的线粒体动力学调节神经发生

Ryohei Iwata1,2,3,4,5, Pierre Casimir1,2,3,4,5, Pierre Vanderhaeghen6,2,3,4,5

  • 1VIB Center for Brain and Disease Research, 3000 Leuven, Belgium.

Science (New York, N.Y.)
|August 15, 2020
PubMed
概括

线粒体动力学,特别是融合和裂变,决定神经干细胞是否成为神经元或自我更新. 这一过程对于神经发生过程中的细胞命运决定至关重要.

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科学领域:

  • 神经科学
  • 细胞生物学
  • 发育生物学

背景情况:

  • 神经干细胞分化为神经元涉及器官重塑.
  • 器官细胞变化与细胞命运决定之间的因果关系尚不清楚.

研究的目的:

  • 研究线粒体动力学在小鼠和人类皮质神经生成中的作用.
  • 确定线粒体动力学是否会对神经干细胞命运产生影响.

主要方法:

  • 在小鼠和人类皮质细胞中检查神经发生过程中的线粒体动态.
  • 操纵线粒体的融合和裂变以观察细胞命运的影响.

主要成果:

  • 自行更新的子细胞表现出线粒体融合后的分裂.
  • 成为神经元的子细胞显示线粒体裂变的增加.
  • 促进分裂增强了神经元的命运;促进细胞分裂后的融合有利于自我更新.
  • 这种可塑性窗口在人体细胞中较长, 与它们更大的自我更新能力相关.

结论:

  • 线粒体动力学是神经干细胞命运的关键决定因素.
  • 存在着一个由线粒体动力学调节的宿命后可塑性时期.
  • 发现提供了关于神经发生和自我更新的物种特异性的见解.