Study / S9DML22MX2018-12-21
Genome-wide quantification of the effects of DNA methylation on human gene regulation
Amanda J Lea, Christopher M Vockley, Rachel A Johnston, Christina A Del Carpio, Luis B Barreiro et al.
About this study
Changes in DNA methylation are involved in development, disease, and the response to environmental conditions. However, not all regulatory elements are functionally methylation-dependent (MD). Here, we report a method, mSTARR-seq, that assesses the causal effects of DNA methylation on regulatory activity at hundreds of thousands of fragments (millions of CpG sites) simultaneously. Using mSTARR-seq, we identify thousands of MD regulatory elements in the human genome. MD activity is partially predictable using sequence and chromatin state information, and distinct transcription factors are associated with higher activity in unmethylated versus methylated DNA. Further, pioneer TFs linked to higher activity in the methylated state appear to drive demethylation of experimentally methylated sites. MD regulatory elements also predict methylation-gene expression relationships across individuals, where they are 1.6x enriched among sites with strong negative correlations. mSTARR-seq thus provides a map of MD regulatory activity in the human genome and facilitates interpretation of differential methylation studies.
Full author list & citation
Amanda J Lea, Christopher M Vockley, Rachel A Johnston, Christina A Del Carpio, Luis B Barreiro, Timothy E Reddy, Jenny Tung. Genome-wide quantification of the effects of DNA methylation on human gene regulation. 2018-12-21. https://doi.org/10.7554/eLife.37513
Experiments 1
E5N7TC583
A genome-scale library of GM12878 genomic fragments was cloned into the CpG-free pmSTARRseq1 self-transcribing reporter and assayed after either M.SssI methylation or mock/sham treatment. The two plasmid states were transfected into human K562 cells, and reporter RNA was compared with plasmid DNA input across the primary replicate set.