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相关概念视频

Eukaryotic RNA Polymerases00:58

Eukaryotic RNA Polymerases

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RNA Polymerase (RNAP) is conserved in all animals, with bacterial, archaeal, and eukaryotic RNAPs sharing significant sequence, structural, and functional similarities. Among the three eukaryotic RNAPs, RNA Polymerase II is most similar to bacterial RNAP in terms of both structural organization and folding topologies of the enzyme subunits. However, these similarities are not reflected in their mechanism of action.
All three eukaryotic RNAPs require specific transcription factors, of which the...
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Bacterial RNA Polymerase00:43

Bacterial RNA Polymerase

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Unlike eukaryotes, bacteria use a single RNA Polymerase (RNAP) to transcribe all genes. The different subunits of bacterial RNAPhave distinct functions. The multisubunit structure of the bacterial RNAP helps the enzyme to maintain catalytic function, facilitate assembly, interact with DNA and RNA, and self-regulate its activity.
In most genes, the transcription site is a single base present upstream of the coding sequence. Though RNAP is a catalytically efficient enzyme, it does not recognize...
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Transcription Initiation01:47

Transcription Initiation

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Initiation is the first step of transcription in eukaryotes. Prokaryotic RNA Polymerase (RNAP) can bind to the template DNA and start transcribing. On the other hand, transcription in eukaryotes requires additional proteins, called transcription factors, to first bind to the promoter region in the DNA template. This binding helps recruit the specific RNAP that can assemble on the DNA and start transcription.
The promoters and enhancers and their accessory proteins allow tight regulation of...
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Riboswitches01:56

Riboswitches

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Riboswitches are non-coding mRNA domains that regulate the transcription and translation of downstream genes without the help of proteins. Riboswitches bind directly to a metabolite and can form unique stem-loop or hairpin structures in response to the amount of the metabolite present. They have two distinct regions – a metabolite-binding aptamer and an expression platform.
The aptamer has high specificity for a particular metabolite which allows riboswitches to specifically regulate...
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Translesion DNA Polymerases02:10

Translesion DNA Polymerases

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Translesion (TLS) polymerases rescue stalled DNA polymerases at sites of damaged bases by replacing the replicative polymerase and installing a nucleotide across the damaged site. Doing so, TLS allows additional time for the cell to repair the damage before resuming regular DNA replication.
TLS polymerases are found in all three domains of life - archaea, bacteria, and eukaryotes. Of the different classes of TLS polymerases, members of the Y family are fitted with specialized structures that...
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Replication in Eukaryotes01:29

Replication in Eukaryotes

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In eukaryotic cells, DNA replication is highly conserved and tightly regulated. Multiple linear chromosomes must be duplicated with high fidelity before cell division, so there are many proteins that fulfill specialized roles in the replication process. Replication occurs in three phases: initiation, elongation, and termination, and ends with two complete sets of chromosomes in the nucleus.
Many Proteins Orchestrate Replication at the Origin
Eukaryotic replication follows many of the same...
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相关实验视频

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mRNA Interactome Capture from Plant Protoplasts
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植物中的DNA依赖RNA聚合酶.

Dong-Lei Yang1, Kun Huang2, Deyin Deng3

  • 1National Key Laboratory of Crop Genetics & Germplasm Enhancement and Utilization, Nanjing Agricultural University, Nanjing 210095, China.

The Plant cell
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概括

植物有五种DNA依赖的RNA聚合酶 (Pols),它们将DNA转录为RNA. 独特的植物Pols (Pol IV和Pol V) 产生小型和长的非编码RNA用于可转移的元素沉默.

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Assessment of DNA Contamination in RNA Samples Based on Ribosomal DNA
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Discrimintion and Mapping of the Primary and Processed Transcripts in Maize Mitochondrion Using a Circular RT-PCR-based Strategy
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Assessment of DNA Contamination in RNA Samples Based on Ribosomal DNA
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科学领域:

  • 分子生物学分子生物学
  • 遗传学 遗传学 是一个
  • 植物科学 植物科学

背景情况:

  • 取决于DNA的RNA聚合酶 (Pols) 在所有生物体中对基因表达至关重要.
  • 细胞核中的Pol I,Pol II和Pol III会产生核糖体RNA,mRNA和转移RNA.
  • 植物独特地拥有Pol IV和Pol V,它们通过RNA生产参与了可转移元素沉默.

研究的目的:

  • 总结了解植物核局部化RNA聚合酶的最新进展.
  • 审查植物的进化,功能,结构和转录周期.

主要方法:

  • 关于植物RNA聚合酶的最新科学文献的综述.
  • 对Pol子单位组成和监管相互作用的比较分析.
  • 植物结构和功能数据的综合 波兰.

主要成果:

  • 工厂组共有共同的子单位,但由于独特的子单位,它们具有不同的功能.
  • 波尔IV和波尔V在产生用于表观遗传调节的小和长非编码RNA中起着至关重要的作用.
  • 最近的研究揭示了植物的复杂转录周期和调节网络.

结论:

  • 植物RNA聚合酶表现出超出其他真核生物的特殊作用.
  • 了解植物极点是解读表观遗传调节和基因组稳定性的关键.
  • 对植物结构和功能的进一步研究将促进植物生物学和生物技术的发展.