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相关概念视频

Riboswitches01:56

Riboswitches

8.1K
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...
8.1K
Ribosomes01:27

Ribosomes

7.6K
Ribosomes translate genetic information encoded by messenger RNA (mRNA) into proteins. Both prokaryotic and eukaryotic cells have ribosomes. Cells that synthesize large quantities of protein—such as secretory cells in the human pancreas—can contain millions of ribosomes.
Ribosome Structure and Assembly
Ribosomes are composed of ribosomal RNA (rRNA) and proteins. In eukaryotes, rRNA is transcribed from genes in the nucleolus—a part of the nucleus that specializes in ribosome...
7.6K
Types of RNA01:23

Types of RNA

63.7K
Overview
Three main types of RNA are involved in protein synthesis: messenger RNA (mRNA), transfer RNA (tRNA), and ribosomal RNA (rRNA). These RNAs perform diverse functions and can be broadly classified as protein-coding or non-coding RNA. Non-coding RNAs play important roles in the regulation of gene expression in response to developmental and environmental changes. Non-coding RNAs in prokaryotes can be manipulated to develop more effective antibacterial drugs for human or animal use.
RNA...
63.7K
Ribosome Profiling02:24

Ribosome Profiling

3.5K
Ribosome profiling or ribo-sequencing is a deep sequencing technique that produces a snapshot of active translation in a cell. It selectively sequences the mRNAs protected by ribosomes to get an insight into a cell’s translation landscape at any given point in time.
Applications of ribosome profiling
Ribosome profiling has many applications, including in vivo monitoring of translation inside a particular organ or tissue type and quantifying new protein synthesis levels.
The technique...
3.5K
Ribozymes02:47

Ribozymes

12.3K
The term ribozyme is used for RNA that can act as an enzyme. Ribozymes are mainly found in selected viruses, bacteria, plant organelles, and lower eukaryotes. Ribozymes were first discovered in 1982 when Tom Cech’s laboratory observed Group I introns acting as enzymes. This was shortly followed by the discovery of another ribozyme, Ribonulcease P, by Sid Altman’s laboratory. Both Cech and Altman received the Nobel Prize in chemistry in 1989 for their work on ribozymes.
Ribozymes can...
12.3K
Nucleic Acids02:43

Nucleic Acids

44.2K
Nucleic acids are the most important macromolecules for the continuity of life. They carry the cell's genetic blueprint and carry instructions for its functioning.
DNA and RNA
The two main types of nucleic acids are deoxyribonucleic acid (DNA) and ribonucleic acid (RNA). DNA is the genetic material in all living organisms, ranging from single-celled bacteria to multicellular mammals. It is in the nucleus of eukaryotes and in the organelles, chloroplasts, and mitochondria. In prokaryotes,...
44.2K

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相关实验视频

Updated: Jul 6, 2025

Single Molecule Fluorescence Energy Transfer Study of Ribosome Protein Synthesis
08:07

Single Molecule Fluorescence Energy Transfer Study of Ribosome Protein Synthesis

Published on: July 6, 2021

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核糖体作为一个小分子传感器.

Arunima Bhattacharya1, Thibaud T Renault1, C Axel Innis1

  • 1Univ. Bordeaux, Centre National de la Recherche Scientifique, Institut National de la Santé et de la Recherche Médicale, ARNA, UMR 5320, U1212, Institut Européen de Chimie et Biologie, F-33600 Pessac, France.

Current opinion in microbiology
|December 30, 2023
PubMed
概括

微生物通过逮捕来感知小分子,从而导致核糖体停滞. 这种停滞调节基因表达,以应对抗生素或氨基酸等环境变化.

科学领域:

  • 微生物学 微生物学
  • 分子生物学分子生物学
  • 基因规则 基因规则

背景情况:

  • 微生物通过感知小分子来适应环境变化.
  • 逮捕可以通过核糖体延迟来调节基因表达.
  • 核糖体阻滞通过转化或转录控制影响下游的基因表达.

研究的目的:

  • 通过核糖体翻译逮捕来检测代谢物的机制.
  • 为了解释核糖体延迟如何控制对小分子的反应中的基因表达.

主要方法:

  • 审查关于逮捕和核糖体动态现有的文献.
  • 对核糖体对代谢物识别的分子机制的分析.
  • 检查基因表达的翻译和转录控制.

主要成果:

  • 停滞引发核糖体在结合特定代谢物时停滞.
  • 像抗生素和氨基酸这样的代谢物被这种机制感知到.
  • 核糖体停滞是一个控制基因表达的关键调节事件.

结论:

  • 通过逮捕质对小分子的核糖体介导的感知是一种重要的微生物适应策略.

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RIBO-seq in Bacteria: a Sample Collection and Library Preparation Protocol for NGS Sequencing
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RIBO-seq in Bacteria: a Sample Collection and Library Preparation Protocol for NGS Sequencing

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Global Identification of Co-Translational Interaction Networks by Selective Ribosome Profiling
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Global Identification of Co-Translational Interaction Networks by Selective Ribosome Profiling

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相关实验视频

Last Updated: Jul 6, 2025

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Single Molecule Fluorescence Energy Transfer Study of Ribosome Protein Synthesis

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RIBO-seq in Bacteria: a Sample Collection and Library Preparation Protocol for NGS Sequencing
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RIBO-seq in Bacteria: a Sample Collection and Library Preparation Protocol for NGS Sequencing

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Global Identification of Co-Translational Interaction Networks by Selective Ribosome Profiling
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Global Identification of Co-Translational Interaction Networks by Selective Ribosome Profiling

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  • 了解这些机制,可以了解基因调节和潜在的治疗点.