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Flores-Mendez, M.

Publications and source records attributed to Flores-Mendez, M..

2 recordsLinked to original sources

IMPDH2 filaments protect from neurodegeneration in AMPD2 deficiency

Metabolic dysregulation is one of the most common causes of pediatric neurodegenerative disorders. However, how the disruption of ubiquitous and essential metabolic pathways predominantly affect neural tissue remains unclear. Here we use mouse models of AMPD2 deficiency to study cellular and molecular mechanisms that lead to selective neuronal vulnerability to purine metabolism imbalance. We show that AMPD deficiency in mice primarily leads to hippocampal dentate gyrus degeneration despite causing a generalized reduction of brain GTP levels. Remarkably, we found that neurodegeneration resistant regions accumulate micron sized filaments of IMPDH2, the rate limiting enzyme in GTP synthesis. In contrast, IMPDH2 filaments are barely detectable in the hippocampal dentate gyrus, which shows a progressive neuroinflammation and neurodegeneration. Furthermore, using a human AMPD2 deficient neural cell culture model, we show that blocking IMPDH2 polymerization with a dominant negative IMPDH2 variant, impairs AMPD2 deficient neural progenitor growth. Together, our findings suggest that IMPDH2 polymerization prevents detrimental GTP deprivation in neurons with available GTP precursor molecules, providing resistance to neurodegeneration. Our findings open the possibility of exploring the involvement of IMPDH2 assembly as a therapeutic intervention for neurodegeneration.

neuroscience↗

Altered lipid homeostasis underlies selective neurodegeneration in SNX14 deficiency

Dysregulated lipid homeostasis is emerging as a potential cause of neurodegenerative disorders. However, evidence of errors in lipid homeostasis as a pathogenic mechanism of neurodegeneration remains limited. Here, we show that the cerebellar neurodegeneration caused by SNX14 deficiency is associated with lipid metabolism defects. Recent in vitro and in silico studies indicate that SNX14 is an inter-organelle lipid transfer protein that regulates lipid droplet biogenesis and fatty acid desaturation, suggesting that human SNX14 deficiency belongs to an expanding class of cerebellar neurodegenerative disorders caused by altered cellular lipid homeostasis. To test this hypothesis, we generated a mouse model that recapitulates the human SNX14 deficiency at genetic and phenotypic level. Through histological and transcriptomic analyses, we demonstrate that cerebellar Purkinje cells are selectively vulnerable to SNX14 deficiency, while forebrain regions preserve their neuronal content. Ultrastructure and lipidomic studies reveal widespread lipid storage and metabolism defects in SNX14 deficient mice. Furthermore, we identify a unique lipid metabolite profile that links the accumulation of acylcarnitines with the selective cerebellar neurodegeneration in SNX14 deficiency. These findings highlight the importance of lipid homeostasis for neuronal function and survival and suggest a mechanism for selective cerebellar vulnerability to altered lipid homeostasis.

neuroscience↗