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相关概念视频

Translational Regulation01:29

Translational Regulation

106
Translational regulation in prokaryotes ensures efficient protein synthesis by controlling ribosome access to mRNA. This regulation is mediated by secondary RNA structures, including translational riboswitches, RNA thermometers, and small RNAs (sRNAs), which respond to intracellular and environmental signals to modulate gene expression.Translational RiboswitchesRiboswitches in the leader region of mRNAs can regulate translation by altering the accessibility of the Shine-Dalgarno (SD) sequence,...
106
RNA Interference01:23

RNA Interference

26.5K
RNA interference (RNAi) is a process in which a small non-coding RNA molecule blocks the post-transcriptional expression of a gene by binding to its messenger RNA (mRNA) and preventing the protein from being translated.
This process occurs naturally in cells, often through the activity of genomically-encoded microRNAs. Researchers can take advantage of this mechanism by introducing synthetic RNAs to deactivate specific genes for research or therapeutic purposes. For example, RNAi could be used...
26.5K
siRNA - Small Interfering RNAs02:30

siRNA - Small Interfering RNAs

17.0K
Small interfering RNAs, or siRNAs, are short regulatory RNA molecules that can silence genes post-transcriptionally, as well as the transcriptional level in some cases. siRNAs are important for protecting cells against viral infections and silencing transposable genetic elements.
In the cytoplasm, siRNA is processed from a double-stranded RNA, which comes from either endogenous DNA transcription or exogenous sources like a virus. This double-stranded RNA is then cleaved by the...
17.0K
Types of RNA01:23

Types of RNA

65.3K
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...
65.3K
Experimental RNAi02:15

Experimental RNAi

6.3K
RNA interference (RNAi) is a cellular mechanism that inhibits gene expression by suppressing its transcription or activating the RNA degradation process. The mechanism was discovered by Andrew Fire and Craig Mello in 1998 in plants. Today, it is observed in almost all eukaryotes, including protozoa, flies, nematodes, insects, parasites, and mammals. This precise cellular mechanism of gene silencing has been developed into a technique that provides an efficient way to identify and determine the...
6.3K
Riboswitches01:56

Riboswitches

8.6K
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...
8.6K

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相关实验视频

Updated: Sep 17, 2025

DNA-Tethered RNA Polymerase for Programmable In vitro Transcription and Molecular Computation
09:26

DNA-Tethered RNA Polymerase for Programmable In vitro Transcription and Molecular Computation

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在单链RNA (ssRNA) 中的形态驱动导电性调制.

Arpan De1, Arindam K Das2, M P Anantram1

  • 1Department of Electrical and Computer Engineering, University of Washington, Seattle, WA 98195, USA. arpan99@uw.edu.

Nanoscale horizons
|July 4, 2025
PubMed
概括

单链RNA (ssRNA) 的形态波动会影响其电荷传输特性. 增加盐度稳定了ssRNA,为分子电子应用提供了控制导电性的策略.

科学领域:

  • 分子生物物理学 分子生物物理学
  • 纳米技术 纳米技术
  • 量子电子学 量子电子学

背景情况:

  • RNA的结构多功能性使得复杂的纳米设备成为可能.
  • 在分子电子学中RNA的潜力受到形状波动的限制.
  • 了解RNA的动态性质是利用其电子性质的关键.

研究的目的:

  • 研究形状波动对单链RNA (ssRNA) 电荷传输的影响.
  • 探索用于调节性RNA基分子装置的控制这些波动的方法.

主要方法:

  • 使用分子动力学模拟建立了ssRNA不稳定性基准.
  • 在123个不同的ssRNA构造中分析了量子传输.
  • 研究了盐度对ssRNA稳定性和导电性的影响.

主要成果:

  • 平均ssRNA电导率为1.7 × 10-3 G0,具有很高的变异性 (SD ≈ 5.2 × 10-3 G0).
  • 导电性主要受到脊柱曲和核酸定位的影响.
  • 增加的盐度显著稳定了ssRNA,减少了导电率波动.

结论:

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Nanomanipulation of Single RNA Molecules by Optical Tweezers

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  • ssRNA导电性可以通过控制其构造来调整.
  • 折叠和展开状态之间的可切换导电性提供双模式.
  • 编程式折叠和ssRNA的导电性可以推进分子电子学.