Cellular Reprogramming

Cellular reprogramming is the process of changing a cell’s identity by resetting its gene-expression and epigenetic state, a capability that reveals how cell fate is controlled in biology. In a widely used approach, defined transcription factors activate pluripotency-associated genes and suppress programs linked to the original differentiated state, converting mature cells into induced pluripotent stem cells. These cells can produce many specialized cell types, supporting research on development, disease modeling, drug testing, and regenerative medicine. Reprogramming also helps scientists study epigenetic memory, improve cell-based therapies, and investigate how altered cell identity contributes to disease.

Cellular Reprogramming - Related Videos

Research

JoVE Journal - Developmental Biology

Evaluation of Injury-induced Senescence and In Vivo Reprogramming in the Skeletal Muscle

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Cited by 14 •

2017

Here we present a detailed protocol to detect both senescent and pluripotent stem cells in the skeletal muscle upon injury while inducing in vivo reprogramming. This method is suitable for evaluating the role of cellular senescence during tissue regeneration and reprogramming in vivo.

Direct Reprogramming of Mouse Fibroblasts into Melanocytes

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Cited by 2 •

2021

Here, we describe an optimized direct reprogramming system for melanocytes and a high-efficiency, concentrated virus packaging system that ensures smooth direct reprogramming.

Direct Neuronal Reprogramming of Mouse Astrocytes into Neurons

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2025

This video showcases the direct reprogramming of astrocytes expressing transforming factors into neurons. Transformation factors trigger a cascade of molecular events facilitating astrocyte-to-neuron conversion. The process is further supported by supplying specific agents and supplements through a neuronal differentiation medium.

Electrophysiological Recordings of Reprogrammed Neurons in a Mouse Brain Slice

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2025

This video demonstrates a protocol to evaluate the maturation and reprogramming of glial cells into neurons in a transfected mouse striatum slice. The experiment measures resting membrane potential and response to current injections using neuron-specific fluorescent markers and electrophysiological techniques. Voltage spikes during these measurements indicate successful neuronal maturation and reprogramming.

Reprogramming Primary Amniotic Fluid and Membrane Cells to Pluripotency in Xeno-free Conditions

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Cited by 3 •

2017

This protocol describes the reprogramming of primary amniotic fluid and membrane mesenchymal stem cells into induced pluripotent stem cells using a non-integrating episomal approach in fully chemically defined conditions. Procedures of extraction, culture, reprogramming, and characterization of the resulting induced pluripotent stem cells by stringent methods are detailed.

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