Active Genetics & Molecular Biology Cells, Biochemistry & Physiology
DNA replication coupled mechanisms that control cell fate transitions
Summary
Original abstract (not yet simplified)Developmental signalling cues drive major chromatin and transcriptional changes, via the combined action of transcription factors and chromatin effectors. However, it remains unclear how such signalling cues induce the earliest chromatin changes that commit cells to differentiation. We have established a system in human induced pluripotent stem cells (iPSCs) to investigate the mechanisms of cell fate transitions in replicating cells...
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Developmental signalling cues drive major chromatin and transcriptional changes, via the combined action of transcription factors and chromatin effectors. However, it remains unclear how such signalling cues induce the earliest chromatin changes that commit cells to differentiation. We have established a system in human induced pluripotent stem cells (iPSCs) to investigate the mechanisms of cell fate transitions in replicating cells and open this area for exploration. We recently identified a set of proteins that are rapidly recruited in the vicinity of replication forks when iPSCs are exposed to signals that induce differentiation, and that are essential for differentiation. We will use genetics, biochemistry, and microscopy to identify causative factors and understand how these proteins rapidly respond to differentiation signals. We will develop a new tool to target degradation of such factors, specifically in the vicinity of replication forks, to identify replication coupled mechanisms that change the chromatin landscape and drive differentiation. The utilisation of cutting-edge technologies and new approaches will make this possible for the first time. With our previous work, we are in a unique position to explore which factors are essential for this process and how this could be manipulated to guide iPSC differentiation for future cell therapies.
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Researchers
Constance Alabert (EPMC Awardee)
Related Research
Grants with similar aims, by meaning.
Understanding how enhancer chromatin transduces extracellular signalling during developmental transitions in human pluripotent cells
Differentiation competence of pluripotent cells.
Higher-order chromatin structure and regulatory sequence variation in human induced pluripotent stem cell (iPSC) self-renewal and differentiation
New epigenetic reprogramming factors: functional testing in ES and iPS cells and development of small molecule modulators
Transcription factor control of dynamic transitions within and beyond pluripotency
Original classification
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