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関連する概念動画

Translational Regulation01:29

Translational Regulation

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,...
Exon Recombination02:32

Exon Recombination

The evolution of new genes is critical for speciation. Exon recombination, also known as exon shuffling or domain shuffling, is an important means of new gene formation. It is observed across vertebrates, invertebrates, and in some plants such as potatoes and sunflowers. During exon recombination, exons from the same or different genes recombine and produce new exon-intron combinations, which might evolve into new genes. 
Exon shuffling follows “splice frame rules.” Each exon has three reading...
Bacterial RNA Polymerase00:43

Bacterial RNA Polymerase

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...
Bacterial RNA Polymerase00:43

Bacterial RNA Polymerase

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...
Leaky Scanning02:28

Leaky Scanning

During most eukaryotic translation processes, the small 40S ribosome subunit scans an mRNA from its 5' end until it encounters the first start AUG codon. The large 60S ribosomal subunit then joins the smaller one to initiate protein synthesis. The location of the translation initiation is largely determined by the nucleotides near the start codon as there may be multiple translation initiation sites present on the mRNA.  Marilyn Kozak discovered that the sequence RCCAUGG (where R stands for...
Evolution of New Traits in Microbes01:24

Evolution of New Traits in Microbes

Microorganisms evolve rapidly due to their large population sizes and short generation times, often exhibiting measurable changes within days under laboratory conditions. Natural selection acts on standing genetic variation, enabling the retention and amplification of beneficial traits that confer fitness advantages in changing environments.Adaptive Pigment Regulation in RhodobacterIn Rhodobacter, a genus of purple non-sulfur bacteria, light-harvesting pigments such as bacteriochlorophyll and...

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関連する実験動画

Updated: Jun 12, 2026

A Non-Coding Small RNA MicC Contributes to Virulence in Outer Membrane Proteins in Salmonella Enteritidis
06:30

A Non-Coding Small RNA MicC Contributes to Virulence in Outer Membrane Proteins in Salmonella Enteritidis

Published on: January 27, 2021

Myxococcusの発達を制御するsRNAの適応的進化.

Yuen-Tsu N Yu1, Xi Yuan, Gregory J Velicer

  • 1Department of Biology, Indiana University, Bloomington, IN 47405, USA.

Science (New York, N.Y.)
|May 22, 2010
PubMed
まとめ

小型RNAs (sRNAs) は生物学を調節する. 特定のsRNAであるPxrは,Myxococcus xanthusの発達を制御し,その突然変異は,チーター菌株の発達を適応的に復元した.

科学分野:

  • 微生物学 微生物学とは
  • 分子生物学は分子生物学である.
  • 進化生物学の進化生物学について

背景:

  • 小型RNA (sRNA) 分子は,生物学的過程における重要な調節因子である.
  • sRNA配列における適応進化の証拠は限られている.
  • プロカリオットの多細胞発達には,複雑な制御ネットワークが伴う.

研究 の 目的:

  • Myxococcus xanthus.の多細胞発達の調節に関与するsRNAを特定し,特徴づけること.
  • 発現型適応におけるsRNA進化の役割を調査する.
  • 進化的変化に対するsRNA調節体の直接的な影響を実証する.

主な方法:

  • Myxococcus xanthus.における新しいsRNA,Pxrの特定について
  • 果実体の発達を調節するPxrの役割の機能分析.
  • M. xanthusのチーター株に対するPxr変異の影響を研究するための遺伝子操作.

主要な成果:

  • Pxrは,M. xanthus.の果実体発達のネガティブレギュレータとして特定されました.
  • Pxrの自発的な変異により,その調節機能は廃止された.

さらに関連する動画

Fluorescence Live-cell Imaging of the Complete Vegetative Cell Cycle of the Slow-growing Social Bacterium Myxococcus xanthus
11:45

Fluorescence Live-cell Imaging of the Complete Vegetative Cell Cycle of the Slow-growing Social Bacterium Myxococcus xanthus

Published on: June 20, 2018

Adaptation at the Extremes of Life: Experimental Evolution with the Extremophile Archaeon Sulfolobus acidocaldarius
08:11

Adaptation at the Extremes of Life: Experimental Evolution with the Extremophile Archaeon Sulfolobus acidocaldarius

Published on: June 14, 2024

関連する実験動画

Last Updated: Jun 12, 2026

A Non-Coding Small RNA MicC Contributes to Virulence in Outer Membrane Proteins in Salmonella Enteritidis
06:30

A Non-Coding Small RNA MicC Contributes to Virulence in Outer Membrane Proteins in Salmonella Enteritidis

Published on: January 27, 2021

Fluorescence Live-cell Imaging of the Complete Vegetative Cell Cycle of the Slow-growing Social Bacterium Myxococcus xanthus
11:45

Fluorescence Live-cell Imaging of the Complete Vegetative Cell Cycle of the Slow-growing Social Bacterium Myxococcus xanthus

Published on: June 20, 2018

Adaptation at the Extremes of Life: Experimental Evolution with the Extremophile Archaeon Sulfolobus acidocaldarius
08:11

Adaptation at the Extremes of Life: Experimental Evolution with the Extremophile Archaeon Sulfolobus acidocaldarius

Published on: June 14, 2024

  • Pxrの削除は,栄養が豊富な環境でも,通常の飢餓のトリガーを回避して,発達を可能にしました.
  • Pxr変異は,社会的に欠陥のあるM. xanthus cheater株の発達能力を回復させた.
  • 結論:

    • Pxrは,ミキソバクテリアの成長から発達への移行を制御する重要なチェックポイントとして機能します.
    • この研究は,sRNAの調節体が主要な表型特性の適応的進化を推進できるという直接的な証拠を提供します.
    • sRNA分子は,プロカリオットの複雑な多細胞発達を制御し,進化的適応を促進します.