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Nalepa, M.

Publications and source records attributed to Nalepa, M..

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LOSS OF ARGINASE 2 DISRUPTS STRIATUM-SPECIFIC POLYAMINE HOMEOSTASIS

Arginase converts arginine (Arg) to ornithine (Orn), regulating their availability for the metabolic pathways that utilize these amino acids. The roles of arginase isoenzymes, Arg1 and Arg2, vary by cell type, tissue, and physiological state. In the brain, Arg2 is the predominant isoenzyme, particularly enriched in the striatum, where it localizes to a striatum-specific neuronal population - medium spiny neurons (MSNs). While the precise role of Arg2 in MSNs remains unclear, its loss alters the striatal metabolomic profile, highlighting its metabolic significance. Here, to investigate the basis of these complex metabolic changes, we examined Arg metabolism in Arg2 knockout (Arg2-/-) mice. Targeted analysis of Arg-related metabolites and selected proteins regulating Arg metabolic pathways revealed that Arg2 loss significantly increased Arg levels but did not affect Orn, likely due to compensatory synthesis of Orn from Arg (via arginine:glycine amidinotransferase) and/or proline (via ornithine aminotransferase). Additionally, markers of nitric oxide (NO) production remained unchanged, suggesting that striatal Arg2 is not involved in the regulation of this pathway, a role commonly attributed to arginase. Most notably, Arg2 loss disrupted polyamine homeostasis, shifting the balance toward higher polyamines at the expense of lower ones and altering the expression of polyamine-regulating proteins. These findings highlight Arg2 crucial role in striatal metabolism and its potential relevance to striatum-related disorders. Given that striatal Arg2 impairment has been reported in Huntingtons disease, a neurodegenerative disorder specifically affecting MSNs, understanding its function may provide insights into the pathology.

neuroscience↗

Mitochondrial Calcium Uniporter protects hippocampal CA2 neurons from excitotoxic injury

BackgroundThe hippocampal region CA2, unlike neighboring CA1, is exceptionally resistant to excitotoxicity, although the mechanisms behind this phenotype are unknown. Given the importance of mitochondrial calcium buffering, we investigated whether the Mitochondrial Calcium Uniporter (MCU), recently found to be enriched in CA2, contributes to this resistance. MethodsWe employed immunostaining techniques in rodent brain tissue and organotypic slice cultures to visualize MCU distribution across hippocampal regions under both resting and excitotoxic conditions. Subsequently, we pharmacologically modulated MCU in an organotypic model of hippocampal excitotoxicity to assess its contribution to regional resistance to NMDA. ResultsWe found a strong spatial correlation between resistance to excitotoxic injury and MCU expression. Notably, NMDA exposure resulted in MCU upregulation in CA2, and pharmacological inhibition of MCU sensitized CA2 neurons to excitotoxic damage in a dose-dependent manner, while having minimal effect on the already vulnerable CA1 neurons, which express low MCU levels. ConclusionsMCU is known to exacerbate NMDA-induced cell injury, although our data indicate that CA2 neurons possess unique mitochondrial calcium handling capabilities enabling MCU to support neuroprotection. Our study provides novel insight into mechanisms supporting CA2 resistance to excitotoxic death and emphasizes context-dependent roles of MCU in neuronal injury or survival.

neuroscience↗