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Gauthier, B. R.

Publications and source records attributed to Gauthier, B. R..

2 recordsLinked to original sources

The Metabesity Factor HMG20A Potentiates Astrocyte Survival and Reactivity Preserving Neuronal Integrity

RationaleWe recently demonstrated that the Metabesity factor HMG20A regulates islet beta-cell functional maturity and adaptation to physiological stress such as pregnancy and pre-diabetes. HMG20A also dictates central nervous system (CNS) development via inhibition of the LSD1/CoREST complex but its expression pattern and function in adult brain remains unknown. Herein we sought to determine whether HMG20A is expressed in the adult CNS, specifically in hypothalamic astrocytes that are key in glucose homeostasis and whether similar to islets, HMG20A potentiates astrocyte function in response to environmental cues. MethodsHMG20A expression profile was assessed by quantitative PCR (RT-PCR) and/or immunofluorescence in: 1) the hypothalamus of mice exposed or not to a high-fat diet, 2) human blood leukocytes and adipose tissue obtained from healthy or diabetic individuals 3) primary mouse hypothalamic astrocytes exposed to either high glucose or palmitate. To investigate the function and regulatory mechanism of HMG20A, RNA-seq and cell metabolic parameters were performed on astrocytes treated or not with a siHMG20A. The regulatory function of HMG20A on astrogliosis was also assessed pharmacologically using ORY1001. Astrocyte-mediated neuronal survival was evaluated using conditioned media from siHMG20A-treated astrocytes. ResultsWe show that Hmg20a is predominantly expressed in hypothalamic astrocytes, the main nutrient-sensing cell type of the brain. Hmg20A expression was upregulated in diet-induced obesity and glucose intolerant mice, correlating with increased transcript levels of Gfap and Il1b indicative of inflammation and astrogliosis. Expression levels were also increased in adipose tissue of obese non-diabetic individuals as compared to obese diabetic patients. HMG20A silencing in astrocytes resulted in repression of inflammatory, cholesterol biogenesis and epithelial-to-mesenchymal transition pathways with a concomitant increase in apoptosis and reduced mitochondrial bioenergetics. Motoneuron viability was also hindered in HMG20A-depleted astrocyte-derived conditioned media. Astrogliosis was induced using ORY1001, a pharmacological inhibitor of the LSD1/CoREST complex, mimicking the effect of HMG20A. ConclusionHMG20A coordinates the astrocyte polarization state. Under physiological pressure such as obesity and insulin resistance that induces low grade inflammation, HMG20A expression is increased to induce astrogliosis in an attempt to preserve the neuronal network and glucose homeostasis. Nonetheless, a chronic metabesity state or functional mutations will result in lower levels of HMG20A, failure to promote astrogliosis and increase susceptibility of neurons to stress-mediated apoptosis. Such effects could be therapeutically reversed by ORY1001-induced astrogliosis.

cell biology

Abnormal Cannabidiol protects pancreatic beta cells in mouse models of experimental Type 1 diabetes

Background and PurposeThe atypical cannabinoid Abn-CBD was reported to improve the inflammatory status in preclinical models of several pathologies including autoimmune diseases. However, its potential for autoimmune diabetes, i.e. type 1 diabetes (T1D), is unknown. Experimental ApproachWe used two mouse models of T1D, streptozotocin (STZ)-injected and non-obese diabetic (NOD) mice. Eight-to-ten-week-old male C57Bl6/J mice were pre-treated with Abn-CBD (1mg/kg of body weight) or vehicle for 1 week, following STZ treatment, and euthanized 1 week later. Six-week-old female NOD mice were treated with Abn-CBD (0.1-1mg/kg) or vehicle for 12 weeks and then euthanized. Blood, pancreas, pancreatic lymph nodes and circulating T cells were collected and processed for analysis. Glycemia was also monitored. Key ResultsAbn-CBD decreased circulating proinflammatory cytokines, ameliorated islet inflammation and the autoimmune attack, showing a 2-fold decrease in CD8+ T cells infiltration and reduced Th1/Th2 ratio in pancreatic lymph nodes of STZ-injected mice. Mechanistically, Abn-CBD reduced intra-islet phospho-NF-{kappa}B and TXNIP. Concomitant reduction of islet cell apoptosis and intra-islet fibrosis were observed in Abn-CBD pre-treated mice compared to vehicle. In NOD mice, Abn-CBD reduced the expression of Ifng, Il21, Tnfa and Il10 while increased Il4 in circulating CD4+ T cells compared to vehicle, reducing the severity of insulitis and improving glucose tolerance. Conclusion and ImplicationsAltogether, we found that Abn-CBD reduces intra-islet inflammation and delays the progression of insulitis in mouse models of T1D, preserving healthy functional islets. Hence, Abn-CBD and related compounds emerge as new candidates to develop pharmacological strategies to treat early stages of T1D. WHAT IS ALREADY KNOWN- Phytocannabinoids such as cannabidiol (CBD) have anti-inflammatory and glucose-lowering properties - The CBD derivative Abn-CBD ameliorates inflammation in various diseases and modulates beta cell function WHAT THIS STUDY ADDS- Abn-CBD reduces systemic and pancreatic inflammation in mice models of type 1 diabetes - Abn-CBD prevents beta cell damage and loss during type 1 diabetes onset CLINICAL SIGNIFICANCE- Synthetic cannabinoids emerge as potential treatment for type 1 diabetes

pharmacology and toxicology