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Woods, F.

Publications and source records attributed to Woods, F..

2 recordsLinked to original sources

Engineering protein expression dynamics with Tet-ON and dTAG degron systems: from precise control to oscillations

Precise temporal control of protein expression is essential for dissecting protein function and dynamic cellular processes. We present a framework for engineering tunable oscillatory protein expression (repeated pulses in expression) using widely adopted molecular tools, applying them to modulate NGN3 expression. Single-cell time-lapse microscopy reveals that the Tet-On system unexpectedly generates asynchronous oscillations in protein expression under continuous doxycycline administration. These oscillations are dependent on protein instability and are not tunable by doxycycline concentration. In contrast, the dTAG degron system enables precise, reversible, concentration-dependent control of protein degradation and reaccumulation. Coupled with a constitutive promoter, we achieve synchronous oscillatory protein expression (COD: Constituitive promoter driving Oscillations via Degradation). Mathematical modelling identifies optimal dTAG drug addition and removal timings using the COD system to flexibly tune NGN3 oscillation periods while maintaining other oscillatory parameters (mean level and peak-to-trough fold-change). Using microfluidics (COD+CHIPS) we reproduce model-predicted 5 and 10 hours periodicities while maintaining similar mean levels and peak-to-trough fold-changes. This work introduces a generalisable, programmable approach for generating and modulating protein oscillations, allowing investigation into how dynamic protein expression governs cellular function.

developmental biology↗

NGN3 oscillatory expression controls the timing of human pancreatic endocrine differentiation

Understanding protein expression dynamics is crucial for the mechanistic understanding of cell differentiation. We investigate the dynamics of NGN3, a transcription factor critical for pancreatic endocrine development, including their function and decoding mechanisms. A knock-in endogenous reporter shows that the expression of NGN3 protein oscillates with a 13-hour periodicity in human iPS-derived endocrine progenitors and is switched off as cells differentiate to {beta}-like and -like cells. Increasing the stability of NGN3 protein results in one broad peak of expression instead of oscillations, with a larger peak to trough fold-change. This leads to precocious endocrine differentiation to both {beta}-like and -like cells and precocious expression of key NGN3 target genes. Single-cell analysis of dynamics, mathematical modelling and bioinformatics suggest that decoding of NGN3 oscillations occurs by fold-change detection via an incoherent feedforward motif that explains both normal and precocious differentiation. Our findings suggest that oscillatory NGN3 dynamics control the timing of differentiation, but not fate specification.

developmental biology↗