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関連する概念動画

Operons02:09

Operons

Prokaryotes can control gene expression through operons—DNA sequences consisting of regulatory elements and clustered, functionally related protein-coding genes. Operons use a single promoter sequence to initiate transcription of a gene cluster (i.e., a group of structural genes) into a single mRNA molecule. The terminator sequence ends transcription. An operator sequence, located between the promoter and structural genes, prohibits the operon’s transcriptional activity if bound by a repressor...
Prokaryotic Transcriptional Activators and Repressors01:58

Prokaryotic Transcriptional Activators and Repressors

The organization of prokaryotic genes in their genome is notably different from that of eukaryotes. Prokaryotic genes are organized, such that the genes for proteins involved in the same biochemical process or function are located together in groups. This group of genes, along with their regulatory elements, are collectively known as an operon. The functional genes in an operon are transcribed together to give a single strand of mRNA known as polycistronic mRNA.
Transcription of prokaryotic...
Co-activators and Co-repressors02:04

Co-activators and Co-repressors

Gene transcription is regulated by the synergistic action of several proteins that form a complex at a gene regulatory site. This is observed in eukaryotes, where the regulation of gene expression is a complex process. Regulatory proteins in eukaryotes can broadly be classified into two types – regulators that bind directly to specific DNA sequences and co-regulators that associate with regulatory proteins but cannot directly bind to the DNA. These co-regulators are further divided into...
Prokaryotic Transcriptional Activators and Repressors01:58

Prokaryotic Transcriptional Activators and Repressors

The organization of prokaryotic genes in their genome is notably different from that of eukaryotes. Prokaryotic genes are organized, such that the genes for proteins involved in the same biochemical process or function are located together in groups. This group of genes, along with their regulatory elements, are collectively known as an operon. The functional genes in an operon are transcribed together to give a single strand of mRNA known as polycistronic mRNA.
Transcription of prokaryotic...
Co-activators and Co-repressors02:04

Co-activators and Co-repressors

Gene transcription is regulated by the synergistic action of several proteins that form a complex at a gene regulatory site. This is observed in eukaryotes, where the regulation of gene expression is a complex process. Regulatory proteins in eukaryotes can broadly be classified into two types – regulators that bind directly to specific DNA sequences and co-regulators that associate with regulatory proteins but cannot directly bind to the DNA. These co-regulators are further divided into...
Inducible Operons: lac Operon01:25

Inducible Operons: lac Operon

The lac operon in Escherichia coli is a model for understanding inducible gene regulation and metabolic flexibility. It integrates local control by lactose and global regulation through catabolite repression, enabling E. coli to preferentially metabolize glucose when available and switch to lactose utilization when glucose is scarce.Structure and Function of the lac OperonThe lac operon contains three structural genes: lacZ (β-galactosidase), lacY (lactose permease), and lacA (thiogalactoside...

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関連する実験動画

Updated: May 7, 2026

Single-molecule Imaging of Gene Regulation In vivo Using Cotranslational Activation by Cleavage (CoTrAC)
11:31

Single-molecule Imaging of Gene Regulation In vivo Using Cotranslational Activation by Cleavage (CoTrAC)

Published on: March 15, 2013

ラック・レプレッサーは,一時的な遺伝子活性化タンパク質である.

S B Straney1, D M Crothers

  • 1Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, Connecticut 06511.

Cell
|December 4, 1987
PubMed
まとめ

ラック抑制剤は,E. coli lac UV5プロモーターDNAへの初期RNAポリメラーゼ結合を大幅に強化します. この拘束力のある安定化は,以前の考えに反して,弾圧の解放時にシステムの迅速な反応を容易にします.

科学分野:

  • 分子生物学は分子生物学である.
  • 遺伝学 遺伝学とは
  • バイオケミストリー バイオケミストリー

背景:

  • ラック抑制剤は,伝統的に遺伝子転写を阻害することを理解しています.
  • E. coli lac UV5プロモーターでの転写開始の初期段階におけるその正確な役割は議論されている.

研究 の 目的:

  • E. coli lac UV5プロモーターに対するRNAポリメラーゼの初期結合に対するラック・レプレッサーの効果を調査する.
  • ラック・レプレッサーが転写開始に影響を与えるメカニズムを解明する.

主な方法:

  • 実験方法の組み合わせ.
  • 転写開始の運動学的研究.
  • RNAポリメラーゼ-DNA結合の分析.

主要な成果:

  • ラック抑制剤は,ラックUV5プロモーターへのRNAポリメラーゼ結合を100倍以上増加させます.
  • 抑制剤は,転写開始のイソメリゼーションステップをブロックします.
  • IPTGの添加により,オープンコンプレックス形成と転写が可能になり,低ポリメラーゼ濃度では,抑制剤と誘導剤が最初の生産的な転写ラウンドの速度を増加させます.

さらに関連する動画

In vivo Application of the REMOTE-control System for the Manipulation of Endogenous Gene Expression
08:54

In vivo Application of the REMOTE-control System for the Manipulation of Endogenous Gene Expression

Published on: March 29, 2019

Monitoring Protein-RNA Interaction Dynamics In Vivo at High Temporal Resolution Using χCRAC
09:15

Monitoring Protein-RNA Interaction Dynamics In Vivo at High Temporal Resolution Using χCRAC

Published on: May 9, 2020

関連する実験動画

Last Updated: May 7, 2026

Single-molecule Imaging of Gene Regulation In vivo Using Cotranslational Activation by Cleavage (CoTrAC)
11:31

Single-molecule Imaging of Gene Regulation In vivo Using Cotranslational Activation by Cleavage (CoTrAC)

Published on: March 15, 2013

In vivo Application of the REMOTE-control System for the Manipulation of Endogenous Gene Expression
08:54

In vivo Application of the REMOTE-control System for the Manipulation of Endogenous Gene Expression

Published on: March 29, 2019

Monitoring Protein-RNA Interaction Dynamics In Vivo at High Temporal Resolution Using χCRAC
09:15

Monitoring Protein-RNA Interaction Dynamics In Vivo at High Temporal Resolution Using χCRAC

Published on: May 9, 2020

結論:

  • ラック・レプレッサーは,プリトランスクリプション複合体を安定させ,開始を阻害する二重の役割を果たします.
  • この二重の役割は,単純な抑圧よりも広範な規制モデルを示唆しています.
  • この発見は,トランスクリプションにおけるラック・レプレッサー機能に関する従来の見解に異議を唱えている.