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Reeh, R. H.

Publications and source records attributed to Reeh, R. H..

2 recordsLinked to original sources

Circadian desynchronization desensitizes insulin-producing cells to cytokine-mediated transcriptomic remodeling and cell death: a novel beta-cell anti-apoptotic response to inflammation

Perturbation of the circadian clock is a risk factor for metabolic diseases. {beta}-Cell specific clock disruption causes glucose intolerance in mice, associated with oxidative stress and secretory failure in {beta}-cells. Proinflammatory cytokines alter the expression of core-clock machinery in human and rodent {beta}-cells, but the molecular mechanisms and consequences for cell viability are unclear. We hypothesized that cytokine-mediated clock perturbation in {beta}-cells is NF-{kappa}B driven, concomitant with cytokine-induced apoptosis, and depends on the cellular synchronization status. Cytokine-mediated changes of core-clock mRNA expression observed in non-synchronized INS-1 cells were potentiated in synchronized cells. These transcriptional changes differentially translated into alterations in core-clock protein levels. Interestingly, synchronization also sensitized INS-1 cells to cytokine-mediated cytotoxicity, associated with potentiation in the expression of inducible (ind) proteasomal catalytic subunits, ER stress markers, NF-{kappa}B activity, and activation of the intrinsic apoptotic pathway. Small-molecule NF- {kappa}B inhibition abrogated cytokine-mediated regulation of clock gene expression in both synchronized and non-synchronized INS-1 cells and reversed cytokine-mediated alterations in circadian parameters in INS-1 reporter cells at non-cytotoxic concentrations. However, at cytotoxic cytokine concentrations, NF-{kappa}B inhibition caused a loss of circadian rhythmicity while still reducing the cytotoxic effects of cytokines, indicating a differential effect of NF-{kappa}B signaling in controlling {beta}-cell viability and clock regulation. We propose that in synchronized cells, the proinflammatory transcriptional activity of NF-{kappa}B is enhanced by interaction with clock transcription factors, as has been suggested for the clock activator Brain and muscle Arnt-like protein-1 (Bmal1). Thus, desynchronization provides a novel anti-apoptotic defense mechanism in response to cytokine assault, similar to that provided by {beta}-cell phenotypic de-differentiation.

cell biology↗

Nutrient Abundance Signals the Changing of the Seasons by Phosphorylating PER2

The circadian clock synchronizes metabolic and behavioral cycles with the rotation of the Earth by integrating environmental cues, such as light. Nutrient content also regulates the clock, though how and why this environmental signal affects the clock remains incompletely understood. Here, we elucidate a role for nutrient in regulating circadian alignment to seasonal photoperiods. High fat diet (HFD) promoted entrainment to a summer light cycle and inhibited entrainment to a winter light cycle by phosphorylating PER2 on serine 662. PER2-S662 phospho-mimetic mutant mice were incapable of entraining to a winter photoperiod, while PER2-S662 phospho-null mutant mice were incapable of entraining to a summer photoperiod, even in the presence of HFD. Multi-omic experimentation in conjunction with isocaloric hydrogenated-fat feeding, revealed a role for polyunsaturated fatty acids in nutrient-dependent seasonal entrainment. Altogether, we identify the mechanism whereby nutrient content shifts circadian rhythms to anticipate seasonal photoperiods in which that nutrient state predominates. HIGHLIGHTSO_LIHigh fat diet promotes entrainment to summer but inhibits entrainment to winter. C_LIO_LICalorie restriction promotes entrainment to winter but inhibits entrainment to summer. C_LIO_LIPER2-S662 phosphorylation is required for nutritional regulation of seasonal circadian entrainment. C_LIO_LIDietary polyunsaturated fatty acids regulate seasonal circadian entrainment. C_LI

neuroscience↗