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Biology subjects

Mele, S.

Publications and source records attributed to Mele, S..

3 recordsLinked to original sources

Valine restriction extends survival in a Drosophila model of short-chain enoyl-CoA hydratase 1 (ECHS1) deficiency

Short-chain enoyl-CoA hydratase 1 deficiency (ECHS1D) is a rare genetic disorder caused by biallelic pathogenic variants in the ECHS1 gene. ECHS1D is characterised by severe neurological and physical impairment that often leads to childhood mortality. Therapies such as protein and single nutrient-restricted diets show poor efficacy, whereas development of new treatments is hindered by the low prevalence of the disorder and a lack of model systems for treatment testing. Here we report on the establishment of a Drosophila model of ECHS1D. Flies carrying mutations in Echs1 (CG6543) were characterised for their physical and metabolic phenotypes, and dietary intervention to improve fly model health was explored. The Echs1 null larvae recapitulated human ECHS1D phenotypes including elevated biomarkers (S-(2-carboxypropyl)cysteamine and 2,3-dihydroxy-2-methylbutyric acid), poor motor behaviour and early mortality, and could be rescued by expression of a human ECHS1 transgene. We observed that both restriction of valine in isolation, or all branched-chain amino acids (BCAAs - leucine, isoleucine, and valine) together, extended larval survival, supporting the idea that reducing BCAA pathway catabolic flux is beneficial in this disorder. Further, metabolic profiling revealed substantial changes to carbohydrate metabolism, suggesting that Echs1 loss causes widespread metabolic dysregulation beyond valine metabolism. The similarities between Drosophila and human ECHS1D suggest that the fly model is a valuable animal system in which to explore mechanisms of pathogenesis and novel treatment options for this disorder.

genetics↗

The role of extra-striate areas in conscious motor behavior: a registered report with Fast-Optical Imaging

Disclosing the brain areas responsible for the emergence of visual awareness and their timing of activation represents one of the major challenges in consciousness research. In particular, isolating the neural processes strictly related to consciousness from concurrent neural dynamics either related to prerequisites or post-perceptual processing has long engaged consciousness research. In this framework, the present study aims at unravelling the spatio-temporal dynamics underlying conscious vision by adopting a distinctive experimental design in which both awareness and motor response are manipulated, allowing the segregation of neural activity strictly related to awareness from response-related mechanisms. To this aim, we will employ a GO/NOGO detection task, in which participants will respond or withhold responding according to the experimental condition. Critically, during the performance of the task, participants brain activity will be recorded by means of Event-Related Optical Signal (EROS) technique, which provides accurate information about brain functions both from the temporal and spatial point of view, simultaneously. The combination of this experimental design with EROS recording will enable us to pinpoint the neural correlates underlying conscious vision and to disentangle them from processes related to the response. In addition, by coupling conventional EROS analysis with Granger Causality analysis, we will be able to clarify the potential interplay between consciousness-related extra-striate areas and response-related motor areas.

neuroscience↗

A defined diet for pre-adult Drosophila melanogaster

Drosophila melanogaster is unique among animal models because it has a fully defined synthetic diet available to study nutrient-gene interactions. However, use of this diet is limited to adult studies due to impaired larval development and survival. Here, we provide an adjusted formula that improves larval growth, development rate, and rescues survival. We demonstrate its use for exploring pre-adult diet compositions of therapeutic potential in a model of an inherited metabolic disorder.

genetics↗