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An Alternative Culture Method to Maintain Genomic Hypomethylation of Mouse Embryonic Stem Cells Using MEK Inhibitor PD0325901 and Vitamin C
Published on: June 1, 2018
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Profiling DNA Methylation in Human Naïve Pluripotent Stem Cells.
1Laboratory of Nutrition and Metabolic Epigenetics, Institute of Food, Nutrition and Health, ETH Zurich, Schwerzenbach, Switzerland. ferdinand.vonmeyenn@hest.ethz.ch.
Methods in Molecular Biology (Clifton, N.J.)
|December 6, 2021
Summary
This study optimizes DNA methylation analysis using Post Bisulfite Adapter Tagging (PBAT) sequencing, enabling accurate mapping of epigenetic changes in pluripotent stem cells even with minimal cell input.
Area of Science:
- Epigenetics and Genomics
- Stem Cell Biology
Background:
- DNA methylation is a key epigenetic modification crucial for cellular identity and reprogramming.
- Global demethylation and locus-specific changes, including loss of imprinting, characterize naïve pluripotency in stem cells.
- Bisulfite sequencing is the gold standard for DNA methylation analysis, but requires sufficient input DNA.
Purpose of the Study:
- To present an optimized Post Bisulfite Adapter Tagging (PBAT) protocol for genome-wide DNA methylation analysis.
- To enable sensitive and parallel processing of DNA methylation datasets from low cell numbers.
- To provide a streamlined bioinformatic pipeline for analyzing DNA methylation data, including imprint control regions.
Main Methods:
- Developed and optimized a Post Bisulfite Adapter Tagging (PBAT) protocol for DNA methylation profiling.
- Utilized low cell input (minimum 50 cells) for genome-wide bisulfite sequencing.
- Established bioinformatic steps for processing raw Illumina sequencing data and analyzing DNA methylation landscapes.
Main Results:
- The PBAT method allows for quantitative mapping of DNA methylation with high sensitivity.
- The protocol is effective for analyzing samples with limited cellular material, down to 50 cells.
- The method supports parallel processing of numerous samples and includes initial bioinformatic analysis steps.
Conclusions:
- The optimized PBAT protocol offers a robust and efficient method for genome-wide DNA methylation analysis.
- This technique is particularly valuable for studies involving limited cell numbers, such as stem cell reprogramming.
- The described workflow facilitates comprehensive DNA methylation profiling and analysis of epigenetic modifications.
Keywords:
Bisulfite conversionDNA methylationDNA methylomeESCEpigenomeHuman pluripotent stem cellsPBATPSCPost Bisulfite Adapter TaggingWhole-genome bisulfite sequencingMore Related Videos
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