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Ahlburg, J.

Publications and source records attributed to Ahlburg, J..

2 recordsLinked to original sources

Post-transcriptional glucocorticoid receptor signalling synchronises circadian rhythms

Keeping cellular circadian clocks synchronised is critical for cellular and physiological health. Glucocorticoid (GC) hormones are the most potent systemic timing signal for cellular clocks, acting via the glucocorticoid receptor (GR), a transcription factor conventionally thought to synchronise cells by translocating into the nucleus and activating the transcription of clock genes. Our findings overturn this model: acute changes in GR translocation and nascent transcription are both dispensable for GC-resetting of the circadian clock. Instead, physiological GC pulses act post-transcriptionally to rapidly increase Period1 mRNA through enhanced RNA processing, not synthesis. This elevates PER1 protein production which, alone, is sufficient to reset the clock. Yet each pulse resets only a subset of cells, explaining why, in vivo, repeated daily hormonal cues are required for full re-entrainment after jet lag or shift work. We propose a new model for hormonal signalling to the circadian clock and identify RNA processing kinetics as a general regulatory lever for nuclear receptor signalling.

molecular biology↗

A lentiviral fluorescent reporter to study circadian rhythms in single cells

Circadian rhythms--self-sustained, [~]24-hour oscillations in transcript and protein levels--are generated by a cell-autonomous molecular clock. These rhythms shape how individual cells respond to external signals, influencing key decisions such as differentiation and apoptosis. However, current tools for visualizing circadian rhythms at the single-cell level often rely on genomic engineering and clonal expansion, limiting their accessibility and applicability. We present fluorescent circadian reporters based on the murine REVERB/Nr1d1 gene, delivered via lentiviral transduction and compatible with time-lapse single cell microscopy. These reporters produce oscillatory signals that depend on a functional circadian clock and can be used to determine a cells circadian dynamics parameters, such as phase and period. Their simple and efficient delivery makes them suitable for a wide variety of cell types, greatly expanding opportunities to study single-cell circadian dynamics and their impact across diverse biological processes and systems.

cell biology↗