bioRxiv Science⌕ Search

Biology subjects

Gamu, D.

Publications and source records attributed to Gamu, D..

3 recordsLinked to original sources

Impact of Voluntary Wheel Running on Gene Expression of Histone 3 Lysine 27-Modifying Enzymes in Mouse Skeletal Muscle

Skeletal muscle is highly plastic and capable of remodelling its contractile and metabolic properties depending on physical demands. Such remodelling requires modification of chromatin structure to support transcriptional activation and suppression of gene programs. Chromatin dynamics depend, in part, on the acetylation and methylation of histone 3 lysine 27 (H3K27), which is controlled by several H3K27-specific acetyltransferases, deacetylases, methyltransferases and demethylases. Several histone post-translational modifications in muscle have been shown to be modulated by exercise. Here, we sought to examine whether major H3K27 regulators are altered by endurance training. Male and female C57BL/6J mice were provided with voluntary running wheels for 6 weeks and compared to sex-matched sedentary controls with locked running wheels. Gene expression of various slow/oxidative and fast/glycolytic skeletal muscles was then measured. We found voluntary running induced modest changes in H3K27 acetyltransferases, along with several components of the polycomb-repressive complex 2 in a muscle- and sex-specific manner. Our findings indicate that the capacity for both acetylation and methylation of H3K27 is modulated by chronic endurance exercise, suggesting that chromatin dynamics are a mechanistic component of exercise-induced muscle remodelling.

physiology↗

NPAS4 is an allostatic regulator of POMC neuronal activity during diet-induced obesity

RationaleObesity is characterized by a chronic positive energy balance and altered function of cell types that regulate food intake. These cell types include proopiomelanocortin (POMC) neurons in the arcuate nucleus (ARC) of the hypothalamus that detect peripheral signals and promote a reduction in food intake upon activation. Downstream of neuronal activation, activity- regulated genes such as Neuronal PAS domain protein 4 (Npas4) are induced as part of the response to environmental stimuli. Npas4 is known to have cytoprotective roles in both neurons and pancreatic beta cells. A previous Npas4 knockout study in both mouse pancreatic beta cells and ARC neurons implied a potential role of Npas4 in regulating food intake. However, the specific sites of Npas4 action in the ARC are unknown. We hypothesized that Npas4 in POMC neurons of the ARC has a role in regulating food intake during obesity. MethodsWe quantified Npas4 expression in POMC neurons of the arcuate nucleus in mice exposed to various positive energy states known to activate POMC neurons using RNAscope fluorescent in situ hybridization. Next, we generated adult male mice with a conditional Npas4 knockout specifically in their ARC POMC neurons (POMC-NPAS4 KO) and metabolically characterized them for 30 weeks on regular chow or 60% high-fat diet (HFD) at room temperature. In addition, we performed single cell RNA sequencing (scRNA-seq) on microdissected ARC tissue and neighbouring regions from fasted or 1hr refed POMC-NPAS4 KO mice and controls at 6 weeks of HFD, in order to identify Npas4-regulated and feeding- regulated transcriptional changes in POMC neurons. ResultsNpas4 was expressed in POMC neurons, and its expression was induced in response to positive energy states such as refeeding, oral glucose, and acute HFD feeding. HFD-fed POMC- NPAS4 KO males showed significantly reduced body weight starting at 10 weeks of HFD, and weighed 8-10 grams less than controls by 30 weeks. With metabolic cages and manual food intake measurements, we determined this difference was not the result of increased energy expenditure or physical activity, but was due to decreased food intake prior to the observed lack of gain in body weight. Using the ARC single-cell dataset, we found that POMC neurons of KO mice showed an enhanced refeeding-induced transcriptional response, dysregulated immediate early gene expression in response to refeeding, and reduced expression of genes encoding GABA-A receptor subunits. Furthermore, cell-to-cell communication analysis revealed that POMC neurons of KO mice specifically lost inhibitory GABAergic signaling inputs, some of which came from agouti-related protein (AgRP) neurons, and gained excitatory glutamatergic signaling inputs compared to POMC neurons of control littermates. ConclusionsTaken together, the results suggest that activity-dependent expression of Npas4 in POMC neurons tempers the activity of these cells upon overnutrition. Loss of Npas4 causes cell- autonomous loss of the capacity to sense nutrient intake. Molecularly, this is driven by reduced expression of inhibitory GABA-A receptors and an overall increase in POMC neuronal activity, leading to decreased food intake and decreased weight gain. In conclusion, for the first time we report a role for the transcription factor Npas4 in POMC neurons of the ARC, and demonstrate it plays an indispensable role in controlling feeding behavior in states of overnutrition.

physiology↗

The H3K27 acetyltransferase p300 is dispensable for thermogenic adipose tissue formation and function.

Brown adipose tissue (BAT) is specialized for thermogenesis because it contains uncoupling protein (UCP)-1. BAT is also an endocrine organ, producing many signalling molecules important for regulating the metabolism of peripheral organs. Mounting evidence suggest that histone modifying enzymes are integral for the development, tissue maintenance, and postnatal functioning of brown and beige adipocytes. p300 and its functional homologue CREB-binding protein (CBP) are histone acetyltransferases that form the transcriptionally activating histone 3 acetyl-lysine 27 (H3K27ac) mark. Using Ucp1-Cre, we examined the requirement of p300 activity specifically within thermogenic adipocytes. We hypothesized that loss of p300 activity would impair gene programming integral for BAT development/function, rendering knockouts susceptible to metabolic dysfunction and unable to form beige adipocytes. Despite successful knockdown, brown fat was completely unaffected by p300 deletion. As such, knockout mice showed a comparable metabolic profile to littermate controls in response to diet-induced obesity. Furthermore, de novo beige adipogenesis within subcutaneous fat by a {beta}3 adrenergic agonist remained intact in knockout mice. Although p300 and CBP have non-overlapping roles in other tissues, our results indicate p300 HAT activity is dispensable within thermogenic fats, likely due to functional compensation by CBP.

physiology↗