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Stavridis, M.

Publications and source records attributed to Stavridis, M..

2 recordsLinked to original sources

An O-GlcNAc transferase pathogenic variant that affects pluripotent stem cell self-renewal

O-linked {beta}-N-acetylglucosamine (O-GlcNAc) transferase (OGT) is an essential enzyme that modifies proteins with O-GlcNAc. Inborn OGT genetic variants were recently shown to mediate a novel type of Congenital Disorder of Glycosylation (OGT-CDG) which is characterized by X-linked intellectual disability (XLID) and developmental delay. Here, we report an OGTC921Y variant which co-segregates with XLID and epileptic seizures, and results in loss of catalytic activity. Colonies formed by mouse embryonic stem cells carrying OGTC921Y show decreased levels of protein O-GlcNAcylation accompanied by decreased levels of Oct4, Sox2 and extracellular alkaline phosphatase (ALP), implying reduced self-renewal capacity. These data establish a link between OGT-CDG and embryonic stem cell self-renewal, providing a foundation for examining the developmental aetiology of this syndrome. Summary statementWe show that the C921Y O-GlcNAc transferase variant found in patients with intellectual disability leads to a defect in pluripotent stem cell self-renewal and decreased levels of stem cell markers.

molecular biology↗

An ERK5-KLF2 signalling module regulates early embryonic gene expression dynamics and stem cell rejuvenation

The ERK5 MAP kinase signalling pathway drives transcription of naive pluripotency genes in mouse Embryonic Stem Cells (mESCs). However, how ERK5 impacts on other aspects of mESC biology has not been investigated. Here, we employ quantitative proteomic profiling to identify proteins whose expression is regulated by the ERK5 pathway in mESCs. This reveals a function for ERK5 signalling in regulating dynamically expressed early embryonic 2-cell stage (2C) genes including the mESC rejuvenation factor ZSCAN4. ERK5-dependent ZSCAN4 induction in mESCs increases telomere length, a key rejuvenative process required for prolonged culture. Mechanistically, ERK5 promotes ZSCAN4 and 2C gene expression via transcription of the KLF2 pluripotency transcription factor. Surprisingly, ERK5 also directly phosphorylates KLF2 to drive ubiquitin-dependent degradation, encoding negative-feedback regulation of 2C gene expression. In summary, our data identify a regulatory module whereby ERK5 kinase and transcriptional activities bi-directionally control KLF2 levels to pattern dynamic 2C gene transcription and mESC rejuvenation.

developmental biology↗