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Sanna, P.

Publications and source records attributed to Sanna, P..

3 recordsLinked to original sources

Sphingosine-1-phosphate (S1P) signaling as a novel therapeutic target for alcohol abuse.

Sphingosine-1-phosphate (S1P) is a lipid mediator signaling through broadly expressed G protein-coupled receptors. We found that S1P is regulated by alcohol and that S1P receptor agonists reduce alcohol drinking in rodent models. Specifically, we observed that two S1P receptor agonists FDA-approved for multiple sclerosis, fingolimod and ozanimod, and the more brain penetrant S1P1 receptor agonist CYM5442, reduced binge alcohol drinking in the drinking in the dark (DID) paradigm in mice. CYM5442 also reduced drinking in dependent mice in the chronic intermittent ethanol vapor paradigm of dependence-induced increased drinking paired with 2 bottle-choice (CIE-2BC) as well as in non-dependent mice. CYM5442 reduced operant oral alcohol self-administration in both non-dependent and dependent rats made dependent by vapor exposure, and reduced motivation for alcohol in dependent rats tested in a progressive ratio schedule of reinforcement. CYM5442 significantly prevented cue-induced reinstatement in alcohol-dependent rats, a model of relapse to alcohol seeking. CYM5442 also reduced intake of non-drug reinforcers, including sucrose, food, water and, to a lesser extent, saccharine. Notably, CYM5442 was less aversive than naltrexone, an FDA-approved medication for the treatment of alcohol use disorder that shares a similar broad reducing action on alcohol intake and consummatory behavior. CYM5442 had no effect on loss of righting reflex, alcohol metabolism, motor coordination or spontaneous locomotor activity in rodents. Lastly, gene expression analysis by RNA-Seq revealed that S1P regulates a complex set of genes in the transition to alcohol dependence. Overall, our results establish S1P signaling as a novel therapeutic target for alcohol use disorder.

neuroscience↗

Gene network inference and master regulator analysis identifies the estrogen-related receptor gamma (ERRγ) as a therapeutic target for alcohol use disorder (AUD).

Differential gene expression is often inadequate to predict the activity of transcription factors and their contribution to the phenotypes associated with specific gene expression states. Here we used a systems biology approach based on gene network inference and master regulator analysis (MRA) to identify candidate drivers of the gene network dysregulations in the prefrontal cortex (PFC) of human subjects with a history of alcohol dependence. The estrogen-related receptor gamma (ERR{gamma}) gene ESRRG, an orphan nuclear receptor protein that acts as a transcription activator, emerged as a high-ranking Master Regulator (MR) based on the expression of its targets and was selected for functional validation due to its translational and druggability potential. The ERR{gamma} agonist, GSK4716, reduced alcohol drinking in the mouse binge drinking paradigm of drinking in the dark (DID) and in both non-dependent mice as well as in mice made dependent by chronic intermittent vapor exposure (CIE). GSK4716 also prevented alcohol-conditioned place preference without affecting saccharin intake or mouse locomotion. Similarly, in rats, GSK4716 reduced operant oral alcohol self-administration in non-dependent and dependent (by CIE) rats under fixed and progressive ratio schedules of reinforcement. Overall, these results support the efficacy of transcriptome-wide gene regulatory network approaches for the identification of key druggable regulators of long-term transcriptional adaptations that sustain the molecular and behavioral pathology of alcohol dependence and identify ERR{gamma} as a regulator of excessive alcohol drinking and seeking, and a therapeutic target for AUD.

neuroscience↗

PRDM9 drives the location and rapid evolution of recombination hotspots in salmonids

In many eukaryotes, meiotic recombination occurs preferentially at discrete sites, called recombination hotspots. In various lineages, recombination hotspots are located in regions with promoter-like features and are evolutionarily stable. Conversely, in some mammals, hotspots are driven by PRDM9 that targets recombination away from promoters. Paradoxically, PRDM9 induces the self-destruction of its targets and this triggers an ultra-fast evolution of mammalian hotspots. PRDM9 is ancestral to all animals, suggesting a critical importance for the meiotic program, but has been lost in many lineages with surprisingly little effect on meiosis success. However, it is unclear whether the function of PRDM9 described in mammals is shared by other species. To investigate this, we analyzed the recombination landscape of several salmonids, the genome of which harbors one full-length PRDM9 and several truncated paralogs. We identified recombination initiation sites in Oncorhynchus mykiss by mapping meiotic DNA double-strand breaks (DSBs). We found that DNA DSBs clustered at hotspots positioned away from promoters, enriched for the H3K4me3 and H3K4me36 marks and the location of which depended on the genotype of full-length Prdm9. We observed a high level of polymorphism in the zinc finger domain of full-length Prdm9, but not of the truncated paralogs. Moreover, population-scaled recombination maps in O. mykiss, Oncorhynchus kisutch and Salmo salar revealed a rapid turnover of recombination hotspots caused by PRDM9 target motif erosion. Our results imply that PRDM9 function is conserved across vertebrates and that the peculiar evolutionary runaway caused by PRDM9 has been active for several hundred million years.

evolutionary biology↗