Doxycycline Inducible System

The doxycycline inducible system is a genetic method that enables researchers to control gene expression at selected times, making it valuable for studying gene function and cellular responses. In the commonly used Tet-On design, doxycycline binds a modified tetracycline-controlled transactivator, allowing it to bind tetracycline response elements and activate transcription; Tet-Off systems use the opposite regulatory response. Because induction is generally reversible and can be adjusted by doxycycline concentration, the system provides temporal control with minimal disruption to experimental conditions. It is widely applied in cultured cells, animal models, developmental biology, disease research, and studies requiring precise regulation of protein production.

Doxycycline Inducible System - Related Videos

Research

JoVE Journal - Biology
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Generation of Induced Pluripotent Stem Cells by Reprogramming Mouse Embryonic Fibroblasts with a Four Transcription Factor, Doxycycline Inducible Lentiviral Transduction System

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Cited by 22 •

2009

The Stemgent Dox Inducible Mouse TF Lentivirus Set can reprogram mouse embryonic fibroblasts (MEFs) to induced pluripotent stem (iPS) cells. Here we demonstrate the protocol for DOX-inducible expression of mouse reprogramming transcription factors Oct4, Sox2, Klf4 and c-Myc to generate iPS colonies that express common mES pluripotency markers.

Research

JoVE EoE - Neuronal Culture Techniques

In Vitro Induction of Neuromuscular Junctions from Engineered Human-Induced Pluripotent Stem Cells

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2025

This experiment details a method for generating neuromuscular junctions from human-induced pluripotent stem cells. It uses a staged differentiation process to promote myotube and motor neuron development and synapse formation, yielding functional neuromuscular junctions.

Differentiating Engineered Human Induced Pluripotent Stem Cells into Functional Motor Neurons

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2025

This video showcases the process of differentiating human iPSCs into motor neurons. The rationale involves utilizing iPSCs that have been genetically modified to express specific transcription factors. When cultured in a media containing doxycycline, this antibiotic triggers the expression of transcription factors, thereby promoting iPSC differentiation into motor neuron progenitors. Ultimately, the progenitors are cultured in a neuronal medium to yield mature and functional motor neurons.

Inducible Tet-On Regulatable System-Based Gene Expression In Vivo: A Tetracycline-Induced Gene Expression System for Target Gene Transcription Activation in Mouse Model

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2025

This video demonstrates the tetracycline, or Tet-On, gene expression system in a mouse model. In the presence of doxycycline, a tetracycline derivative, the Tet-On system consisting of reverse tetracycline-controlled transactivator protein becomes activated and expresses the gene of interest.

Differentiating Human Induced Pluripotent Stem Cells into Neurons on Micro-Electrode Arrays

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2025

The video demonstrates a method for generating excitatory cortical neurons from human-induced pluripotent stem cells (hiPSCs). Upon doxycycline induction, the hiPSCs overexpress neurogenin-2, a neural-specific transcription factor. By using specific media and co-culturing with astrocytes, this process facilitates the hiPSCs' differentiation into neurons with synaptic connections.

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