Epigenetic Reprogramming

Epigenetic reprogramming is a biological process that resets patterns of gene regulation without changing the underlying DNA sequence, enabling cells to change identity during development. It occurs through coordinated changes in DNA methylation, histone modifications, and chromatin organization that alter access to regulatory regions and can activate or silence developmental genes. In developmental biology, these resets help explain how embryos establish distinct cell types and how differentiated cells can be returned to a pluripotent state for induced pluripotent stem cell research. Studying epigenetic reprogramming clarifies cell fate decisions, developmental disorders, and prospects for regenerative medicine.

Epigenetic Reprogramming - Related Videos

Research

JoVE Journal - Biology
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Generation of Myospheres From hESCs by Epigenetic Reprogramming

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Cited by 8 •

2014

Here, we describe a protocol based on epigenetic reprogramming of human embryonic stem cells (hESCs) toward generating a homogeneous population of skeletal muscle progenitors that under permissive culture conditions form three-dimensional clusters of contractile myofibers (myospheres), which recapitulate biological features of human skeletal muscles.

Education

JoVE Science Education - Advanced Biology

An Overview of Epigenetics

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2023

Since the early days of genetics research, scientists have noted certain heritable phenotypic differences that are not due to differences in the nucleotide sequence of DNA. Current evidence suggests that these “epigenetic” phenomena might be controlled by a number of mechanisms, including the modification of DNA cytosine bases with methyl groups, the addition of various chemical groups to histone proteins, and the recruitment of protein factors to specific DNA sites via interactions with...

Epigenetic Regulation

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2019

Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer. In most mammals, females have two X chromosomes (XX) while males have an X and a Y chromosome (XY). The X chromosome contains significantly more genes than the Y chromosome. Therefore, to prevent an excess of X chromosome-linked gene expression in females, one of the two X chromosomes is randomly silenced during early development.

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.

Measuring Single-Cell Aging with an Imaging-based Biomarker of Chromatin and Epigenetic Aging

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2026

The protocol presents the imaging and computational workflow to extract and validate imaging-based chromatin and epigenetic age (ImAge).

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