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The role of MORC3 in silencing transposable elements in mouse embryonic stem cells
Varsha P Desai1, Jihed Chouaref2, Haoyu Wu2,3
1Department of Molecular, Cellular and Developmental Biology, University of California, Los Angeles, Los Angeles, CA, USA.
Background:
Microrchidia proteins (MORCs) are involved in epigenetic gene silencing in a variety of eukaryotic organisms. Deletion of MORCs result in several developmental abnormalities and their dysregulation has been implicated in developmental disease and multiple cancers. Specifically, mammalian MORC3 mutations are associated with immune system defects and human cancers such as bladder, uterine, stomach, lung, and diffuse large B cell lymphomas. While previous studies have shown that MORC3 binds to H3K4me3 in vitro and overlaps with H3K4me3 ChIP-seq peaks in mouse embryonic stem cells, the mechanism by which MORC3 regulates gene expression is unknown.
Results:
In this study, we identified that mutation in Morc3 results in a suppressor of variegation phenotype in a Modifiers of murine metastable epialleles Dominant (MommeD) screen. We also find that MORC3 functions as an epigenetic silencer of transposable elements (TEs) in mouse embryonic stem cells (mESCs). Loss of Morc3 results in upregulation of TEs, specifically those belonging to the LTR class of retrotransposons also referred to as endogenous retroviruses (ERVs). Using ChIP-seq we found that MORC3, in addition to its known localization at H3K4me3 sites, also binds to ERVs, suggesting a direct role in regulating their expression. Previous studies have shown that these ERVs are marked by the repressive histone mark H3K9me3 which plays a key role in their silencing. However, we found that levels of H3K9me3 showed only minor losses in Morc3 mutant mES cells. Instead, we found that loss of Morc3 resulted in increased chromatin accessibility at ERVs as measured by ATAC-seq.
Conclusions:
Our results reveal MORC3 as a novel regulator of ERV silencing in mouse embryonic stem cells. The relatively minor changes of H3K9me3 in the Morc3 mutant suggests that MORC3 acts mainly downstream of, or in a parallel pathway with, the TRIM28/SETDB1 complex that deposits H3K9me3 at these loci. The increased chromatin accessibility of ERVs in the Morc3 mutant suggests that MORC3 may act at the level of chromatin compaction to effect TE silencing.
Insights
Microrchidia protein C (MORC3) acts as an epigenetic silencer of endogenous retroviruses (ERVs) in mouse stem cells. Loss of MORC3 increases ERV chromatin accessibility, suggesting a role in chromatin compaction for gene silencing.
Area of Science:
- Epigenetics
- Molecular Biology
- Genomics
Background:
- Microrchidia proteins (MORCs) are crucial for epigenetic gene silencing across eukaryotes.
- Dysregulation of MORCs is linked to developmental abnormalities, immune defects, and cancers.
- Mammalian MORC3 mutations are associated with immune system disorders and various human cancers.
Purpose of the Study:
- To investigate the role of MORC3 in epigenetic gene regulation.
- To elucidate the mechanism by which MORC3 silences transposable elements (TEs).
- To understand MORC3's function in mouse embryonic stem cells (mESCs).
Main Methods:
- Modifier of murine metastable epialleles Dominant (MommeD) screen to identify MORC3 function.
- Chromatin immunoprecipitation sequencing (ChIP-seq) to determine MORC3 binding sites.
- Assay for Transposase-Accessible Chromatin using sequencing (ATAC-seq) to measure chromatin accessibility.
Main Results:
- MORC3 functions as an epigenetic silencer of transposable elements (TEs), particularly endogenous retroviruses (ERVs), in mESCs.
- Loss of MORC3 leads to the upregulation of ERVs, specifically LTR class retrotransposons.
- MORC3 binds directly to ERVs and its absence increases ERV chromatin accessibility.
Conclusions:
- MORC3 is a novel regulator of ERV silencing in mESCs.
- MORC3 likely acts downstream or in parallel to the H3K9me3 silencing pathway.
- MORC3 may regulate TE silencing by affecting chromatin compaction.
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