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Pivarshev, P.

Publications and source records attributed to Pivarshev, P..

2 recordsLinked to original sources

Tanycyte Bmal1 sex-specifically regulates weight gain and hypothalamic neurogenesis in female mice

The hypothalamic radial-glia-like tanycyte population plays important and intertwined roles in feeding and metabolism, reproduction, and seasonality. Although these processes are circadian-regulated and clock genes reportedly show robust cycling along the 3rd ventricle, the role of the clock in tanycytes has not yet been examined. We report here that clock genes cycle with much higher amplitude in ventral tanycytes compared to more dorsal ependymocytes of the 3rd ventricle, and that specific disruption of the tanycyte clock can be achieved by adult Bmal1 deletion using the RaxCreER driver. Adult tanycyte Bmal1 deletion did not affect circadian rhythms of wheel-running and sleep, but did inhibit weight gain on high-fat diet in female mice. Altered tanycyte-derived hypothalamic neurogenesis, which can regulate feeding and weight gain by contributing new neurons to nearby feeding-relevant nuclei, is one mechanism that likely contributes to this phenotype. Fate mapping studies showed that female mice have higher baseline tanycyte-derived neurogenesis than males, with many of the resulting neurons localizing to the feeding-relevant arcuate nucleus. Female but not male mice show reduced tanycyte-derived arcuate neurogenesis after adult tanycyte Bmal1 deletion and an increased percentage of newborn arcuate neurons take on a feeding-suppressing POMC neuropeptidergic fate. Thereby, skewing of feeding and satiety promoting fates link the weight homeostasis and neurogenesis effects. Together, our data establish tanycyte Bmal1 as a sexually dimorphic regulator of weight homeostasis, likely mediated at least in part by a female-specific neurogenesis effect in the feeding circuitry.

neuroscience↗

Hypermetabolic state is associated with circadian rhythm disruption in mouse and human cancer cells

Crosstalk between cellular metabolism and circadian rhythms is a fundamental building block of multicellular life, and disruption of this reciprocal communication could be relevant to degenerative disease, including cancer. Here, we investigated whether maintenance of circadian rhythms depends upon specific metabolic pathways, particularly in the context of cancer. We found that in adult mouse fibroblasts, ATP levels were a major contributor to overall levels of a clock gene luciferase reporter, although not necessarily to the strength of circadian cycling. In contrast, we identified significant metabolic control of circadian function in an in vitro mouse model of pancreatic adenocarcinoma. Metabolic profiling of a library of congenic tumor cell clones revealed significant differences in levels of lactate, pyruvate, ATP, and other crucial metabolites that we used to identify candidate clones with which to generate circadian reporter lines. Despite the shared genetic background of the clones, we observed diverse circadian profiles among these lines that varied with their metabolic phenotype: the most hypometabolic line had the strongest circadian rhythms while the most hypermetabolic line had the weakest rhythms. Treatment of these tumor cell lines with bezafibrate, a peroxisome proliferator-activated receptor (PPAR) agonist shown to increase OxPhos, decreased the amplitude of circadian oscillation in a subset of tumor cell lines. Strikingly, treatment with the Complex I antagonist rotenone enhanced circadian rhythms only in the tumor cell line in which glycolysis was also low, thereby establishing a hypometabolic state. We further analyzed metabolic and circadian phenotypes across a panel of human patient-derived melanoma cell lines and observed a significant negative association between metabolic activity and circadian cycling strength. Together, these findings suggest that metabolic heterogeneity in cancer directly contributes to circadian function, and that high levels of glycolysis or OxPhos independently disrupt circadian rhythms in these cells.

cancer biology↗