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Cabillon, N. A. R.

Publications and source records attributed to Cabillon, N. A. R..

2 recordsLinked to original sources

Cocaine- and amphetamine-regulated transcript in perciforms I. Phylogenetic, structural and spatial conservation

Cocaine- and amphetamine-regulated transcript (Cart) is a pleiotropic neuropeptide involved in the regulation of stress and anxiety, depression, reproduction and circadian functions, yet it is mainly known for its metabolic regulation of body weight and appetite. While mammals possess a single cart gene, the genomes of birds may contain up to two carts and fish may possess up to ten cart genes. Furthermore, in some fish species the number of cart paralogues exceeds the number expected according to whole-genome duplication events in actinopterygians, suggesting a species-specific diversification of the cart system. In the current study, we identified multiple cart genes in two fish species with global importance -Nile tilapia and gilthead seabream. Bioinformatics analysis revealed seven cart genes in the tilapia genome and six cart genes in the seabream genome, all of which show high homology with carts of other vertebrates. Additionally, the predicted mature cart peptide sequences contain all the cysteines known to stabilize the tertiary peptide structure in other vertebrates. Nevertheless, protein structure modeling suggested that some carts lost part or all of the cysteine-based disulfide bridges. Quantitative-PCR analyses of all cart genes cloned in this research demonstrated that while all carts are mainly expressed in the brain, some cart genes show wider tissue distribution with significant expression in peripheral tissues including the kidney and gonads. Taken together, these findings emphasize the complexity of the piscine cart system.

physiology↗

Cocaine- and amphetamine-regulated transcript in perciforms II. Responsiveness to energetic shortage

Cocaine and amphetamine-regulated transcript (Cart) is a neuropeptide with prominent roles in appetite regulation and maintenance of energy homeostasis. Although Cart has been widely studied in vertebrates, its multigenic nature in fish elicits questions regarding the various functions affected by specific cart peptides. This is further emphasized when considering the high variation of aquatic ecosystems fish occupy. Nile tilapia (Oreochromis niloticus) and gilthead seabream (Sparus aurata) are important aquaculture species with different natural habitats, food preferences and feeding behaviors. Herein, we utilize these two species to evaluate whether food-related cart functions are species-specific. To this end, we studied how short-term (SD) or long-term (LD) food deprivation affects the central expression of the multiple cart genes of both species. Quantitative PCR analysis of cart expression demonstrated that SD resulted in decreased midbrain expression of three tilapia carts and three seabream carts while LD decreased the midbrain expression of two tilapia carts and two seabream carts. In addition, SD increased the expression of tilapia oncart1c in the anterior brain and oncart1c and oncart1b in the posterior brain while reducing the expression of seabream sacart1c. Our analyses showed that there are cart genes in each species (cart1a and cart1b for tilapia, and cart1b for seabream) that responded to both SD and LD by reduced expression in the midbrain. In addition, both conditions reduced the expression of seabream sacart1c in the posterior brain. Taken together, our current findings suggest that the major appetite regulation in each species is mediated by species-specific carts.

physiology↗