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Mineo, A.

Publications and source records attributed to Mineo, A..

2 recordsLinked to original sources

Mesodermal-specific MECP2 expression in Drosophila induces visceral and skeletal muscle defects rescued by butyrate supplementation

BackgroundPatients affected by Rett syndrome (RTT) and MECP2 duplication syndrome (MDS) experience disabling muscle weakness and gastrointestinal dysmotility of unclear origin. Whether these defects arise cell-autonomously, rather than secondarily to neural dysfunction, and which developmental windows are most vulnerable to MeCP2 disfunction remains unresolved. MeCP2 is a dosage-sensitive transcriptional regulator, whose functions are tightly linked to chromatin states. Because short-chain fatty acids (SCFAs) are known to inhibit histone deacetylases (HDACs), a tractable in vivo model is needed to test the effect of HDAC modulation on muscle defects. MethodsWe misexpressed human MECP2 in the Drosophila melanogaster mesoderm that gives rise to skeletal and visceral muscles. We analyzed quantitatively their morphology and function. To assess the effects of SCFA supplementation, we also supplemented diets with sodium butyrate (NaB), Lalbaay(R), a NaB-containing supplement, acetate (AcOH), and valproate (VPA). FindingsMECP2 misexpression caused pre-eclosion lethality, thinning of larval skeletal fibers with nuclear mispositioning and altered mitochondria. Functionally, it reduced locomotion, decreased food transit and gut peristalsis. Phenotypes were strongest when expression began during development. NaB and VPA supplementation rescue most of these phenotypes, consistent with their histone-deacetylase (HDAC) activity. Defects were not observed upon comparable misexpression of an RTT-associated MeCP2 loss-of-function variant, indicating that they might be relevant to pathogenesis of MECP2-related disorders. InterpretationOur genetic in vivo analysis models peripheral effects of MeCP2 dysregulation and their amelioration, supporting the possibility of HDAC-targeted strategies for MECP2-related muscle and gastrointestinal dysfunction.

genetics↗

Sex-dependent neural plasticity in response to damage

Plasticity of intact adult neural tissue in the vicinity of neural damage serves to restore functionality of circuits. Much remains to be learned about the mechanisms regulating this process and the reported sex differences in recovery outcomes. Here, we present the fly gut and its innervation as a simplified model to address these questions. We show that gut damage caused by ingestion of toxic agents resulted in plasticity of the adult enteric neuronal network, manifested as a Reactive Oxygen Species (ROS)-dependent increase in neural tissue, which was reversible after a recovery period. Interestingly, males did not display neural plasticity, and masculinization of neurons in females suppressed the damage-dependent neural growth. Together, these findings position the fly gut as a system to investigate the cellular, molecular, and sex-specific underpinnings of neural plasticity, with implications for therapeutic advancements in neural circuit recovery. SUMMARY STATEMENTThis study establishes the fly gut as a simple system to explore how adult neural tissues differ between sexes in their capacity for plasticity.

neuroscience↗