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相关概念视频

Nucleosome Remodeling02:54

Nucleosome Remodeling

9.2K
Nucleosomes are the basic units of chromatin compaction. Each nucleosome consists of the DNA bound tightly around a histone core, which makes the DNA inaccessible to DNA binding proteins such as DNA polymerase and RNA polymerase. Hence, the fundamental problem is to ensure access to DNA when appropriate, despite the compact and protective chromatin structure.
Nucleosome remodeling complex
Eukaryotic cells have specialized enzymes called ATP-dependent nucleosome remodeling enzymes. These enzymes...
9.2K
The Nucleosome Core Particle01:12

The Nucleosome Core Particle

959
Nucleosomes are the DNA-histone complex, where the DNA strand is wound around the histone core. The histone core is an octamer containing two copies of H2A, H2B, H3, and H4 histone proteins.
Nucleosomes, paradoxically, perform two opposite functions simultaneously. On the one hand, their primary aim is to protect the delicate DNA strands from physical damage and help achieve a higher compaction ratio. On the other hand, they must allow polymerase enzymes to access histone-bound DNA during...
959
The Nucleosome01:19

The Nucleosome

1.7K
Human DNA is almost two meters long. However, it is compressed inside a tiny nucleus measuring only a few microns in diameter. To make this degree of compaction possible, DNA is organized into several sequential levels so that it can fit into such a tiny space. The most compact form of DNA is a chromosome that can be seen under a microscope in a dividing cell.
In a chromosome, DNA is wound twice around a protein complex called a histone octamer core, which consists of 8 histone proteins. This...
1.7K
Chromatin Structure Regulates pre-mRNA Processing02:41

Chromatin Structure Regulates pre-mRNA Processing

7.1K
In eukaryotic cells, nascent mRNA transcripts need to undergo many post-transcriptional modifications to reach the cell cytoplasm and translate into functional proteins. For a long time, transcription and pre-mRNA processing were considered two independent events that occur sequentially in the cell. However, it has now been well established that transcription and pre-mRNA processing are two simultaneous processes that are precisely regulated inside the cell.
The chromatin structure, especially...
7.1K
Histone Modification02:32

Histone Modification

13.4K
The histone proteins have a flexible N-terminal tail extending out from the nucleosome. These histone tails are often subjected to post-translational modifications such as acetylation, methylation, phosphorylation, and ubiquitination. Particular combinations of these modifications form “histone codes” that influence the chromatin folding and tissue-specific gene expression.
Acetylation
The enzyme histone acetyltransferase adds acetyl group to the histones. Another enzyme, histone...
13.4K
Spreading of Chromatin Modifications02:25

Spreading of Chromatin Modifications

8.3K
The histone proteins in the nucleosomes are post-translationally modified (PTM) to increase or decrease access to DNA. The commonly observed PTMs are methylation, acetylation, phosphorylation, and ubiquitination of lysine amino acids in the histone H3 tail region. These histone modifications have specific meaning for the cell. Hence, they are called "histone code". The protein complex involved in histone modification is termed as "reader-writer" complex.
Writers
The writer...
8.3K

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相关实验视频

Updated: Jul 26, 2025

Probing The Structure And Dynamics Of Nucleosomes Using Atomic Force Microscopy Imaging
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Probing The Structure And Dynamics Of Nucleosomes Using Atomic Force Microscopy Imaging

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核动力学如何调节DNA上的蛋白质搜索?

Sujeet Kumar Mishra1, Arnab Bhattacherjee1

  • 1School of Computational and Integrative Sciences, Jawaharlal Nehru University, New Delhi 110067, India.

The journal of physical chemistry. B
|June 13, 2023
PubMed
概括

核细胞的动态,包括呼吸和滑动,会影响DNA的转录因子搜索时间. 了解这些机制揭示了基因调节和细胞命运决定的关键因素.

科学领域:

  • 分子生物学分子生物学
  • 生物物理学的生物物理.
  • 遗传学 是一个遗传学.

背景情况:

  • 核细胞由基因组蛋白和DNA组成,包装了真核细胞DNA并调节了基因的可访问性.
  • 核动力学对于控制调节蛋白的DNA位点可访问性至关重要,影响细胞的身份和命运.

研究的目的:

  • 开发一个分析框架来评估核酶体动态对转录因子标搜索的影响.
  • 区分核细胞呼吸与滑动对蛋白质搜索效率的影响.

主要方法:

  • 使用离散状态随机模型用于转录因子搜索动态.
  • 采用实验确定的动力速率的第一通道概率计算.
  • 通过广泛的蒙特卡洛模拟来验证分析结果.

主要成果:

  • 核细胞呼吸和滑动动力学为DNA位点访问提供了不同的机制.
  • 在核细胞的转录因子搜索策略中存在实质性的差异,核细胞经历呼吸与滑动.
  • 已识别的分子因素显著影响转录因子搜索效率.

结论:

  • 核细胞的动态创造了一个动态的景观,对基因调节至关重要.

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  • 蛋白质和核酶体动态的相互作用决定了转录因子结合的效率.
  • 这一框架为细胞命运决定的分子基础提供了洞察力.