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相关概念视频

Epigenetic Regulation01:37

Epigenetic Regulation

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Epigenetic changes alter the physical structure of the DNA without changing the genetic sequence and often regulate whether genes are turned on or off. This regulation ensures that each cell produces only proteins necessary for its function. For example, proteins that promote bone growth are not produced in muscle cells. Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
X-chromosome...
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Methods of Nuclear Reprogramming01:24

Methods of Nuclear Reprogramming

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Nuclear reprogramming is a process of transforming one cell type into an unrelated cell type by epigenetic changes that alter the cell’s original gene expression pattern. Such epigenetic changes force cells to express a different set of genes, which play a significant role in inducing transformation into other cell types. Nuclear reprogramming offers applications in reproductive cloning for livestock propagation and regenerative medicine — developing patient-specific cells for...
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Chromatin Modification in iPS Cells01:32

Chromatin Modification in iPS Cells

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Chromatin modification alters gene expression; therefore, scientists can add histone-modifying enzymes, histone variants, and chromatin remodeling complexes to somatic cells to aid reprogramming into pluripotent stem (iPS) cells.
Compact chromatin makes reprogramming difficult. Enzymes, such as histone demethylases and acetyltransferases, are often added during reprogramming to loosen the chromatin, making the DNA more accessible to transcription factors. Molecules that inhibit histone...
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Regulation of Expression at Multiple Steps01:23

Regulation of Expression at Multiple Steps

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The gene expression in cells is regulated at different stages: (i) transcription, (ii) RNA processing, (iii) RNA localization, and (iv) translation. Transcriptional regulation is mediated by regulatory proteins such as transcription factors, activators, or repressors—these control gene expression by initiating or inhibiting the transcription of genes. Once a precursor or pre-mRNA is produced, it undergoes post-transcriptional modification, including 5' capping, splicing, and the...
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Somatic to iPS Cell Reprogramming01:29

Somatic to iPS Cell Reprogramming

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Reprogramming alters the gene expression in somatic cells, transforming them into induced pluripotent stem (iPS) cells over several generations. Scientists can reprogram cells by introducing genes for four transcription factors—Oct4, Sox2, Klf4, and c-Myc (OSKM) by viral or non-viral methods. These factors are also known as Yamanaka factors after Shinya Yamanaka, who first generated iPS cells using mouse skin cells. Yamanaka was awarded the Nobel Prize in Physiology or Medicine in 2012...
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Regulation of Expression Occurs at Multiple Steps02:24

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Characterizing RNA Modifications in Single Neurons Using Mass Spectrometry
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通过调节表观遗传重编程,对小脑发育至关重要

Jing Jiang1, Ming Zhang1, Wenjuan Xia1

  • 1State Key Laboratory of Reproductive Medicine and Offspring Health (Suzhou Centre), Suzhou Municipal Hospital, Gusu School, Suzhou Affiliated Hospital of Nanjing Medical University, Nanjing Medical University, Suzhou, 215002, China.

Journal of biomedical science
|August 29, 2025
PubMed
概括

在小鼠中,Fto基因的丧失导致小脑缩,原因是表皮转录学调节的改变. 这项研究显示,

关键词:
美国卡塔尔人大脑的发育H4K16ac 其他关键字m6A 修改

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科学领域:

  • 神经科学
  • 表观遗传学
  • 分子生物学

背景情况:

  • 表皮转录调节,特别是甲基化,对于小脑的发育和功能至关重要.
  • 在小脑中RNA脱甲基酶Fto的具体作用尚不清楚.

研究的目的:

  • 通过敲除小鼠模型研究Fto在小脑发育和功能中的作用.
  • 阐明Fto在小脑发育中的作用的分子机制.

主要方法:

  • 为表型分析生成Fto淘汰赛 (FtoKO) 小鼠.
  • 通过行为测试和尼斯尔染色来评估小脑功能.
  • 使用了包括免疫光,m6A-RIP-seq,ATAC-seq,CUT&Tag-seq和Co-IP在内的分子技术来分析基因表达,m6A水平和色素可访问性.

主要成果:

  • FtoKO小鼠表现出小脑动和异常的步态.
  • 减少FTO表达导致神经元发育和自我更新基因的表达改变.
  • 在机理上,Fto损失导致了Kat8上调,增加了m6A水平,并改变了H4K16ac的修饰,影响了染色质的可访问性.

结论:

  • 在小脑发育中发挥关键作用.
  • 通过对Kat8和染色质可获得性的A-依赖调节,Fto缺乏会扰乱小脑功能.
  • 这些发现突显了表皮转录学调节在神经发育过程中的重要性.