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Biology subjects

Heimer, G.

Publications and source records attributed to Heimer, G..

2 recordsLinked to original sources

Cross-species analysis of GNB1 I80T encephalopathy: conserved developmental, epileptic and neuronal transcriptome signatures

GNB1 encephalopathy (GNB1E) is a rare neurodevelopmental disorder caused by mutations in GNB1 gene encoding the G protein subunit G{beta}1. Mechanisms linking these variants to neurological dysfunction remain unclear. We investigated the prevalent p.Ile80Thr (I80T) variant using combined clinical, cellular, and in vivo approaches. Longitudinal evaluation of a GNB1E patient revealed developmental delay, progressive peripheral spasticity, and epilepsy with Spike-Wave Activation in Sleep. Heterozygous knock-in Gnb1I80T/+ mice exhibited disease-relevant phenotypes, including impaired early development, mild adult motor and cognitive deficits and epileptiform cortical spike-and-wave discharges. Transcriptomic analysis identified 323 genes concordantly dysregulated in mouse cortex and cortical human neuronal cultures from patient-derived induced pluripotent cells. This gene set was enriched for ion-channel function, epilepsy-associated genes, and Gs/adenylyl cyclase signaling pathway. Our integrated analysis establishes the first cross-species model for GNB1E, suggests common neurological mechanisms and molecular pathways linked to GNB1E, and provides a framework for mechanistic and therapeutic studies. TeaserConserved human/mouse neurological and transcriptomic signatures in GNB1 encephalopathy.

physiology↗

Loss of Mitochondrial Enoyl CoA Reductase causes elevated ceramide levels and impairs iron metabolism

In most eukaryotic cells fatty acid synthesis occurs in the cytoplasm as well as in mitochondria. However, the relative contribution of mitochondrial fatty acid synthesis (mtFAS) to the cellular lipidome of metazoans is ill-defined. Hence, we studied the function of the fly Mitochondria enoyl CoA reductase (Mecr), the enzyme required for the last step of mtFAS. Loss of mecr causes lethality while neuronal loss leads to progressive neurological defects. We observe an elevated level of ceramides, a defect in Fe-S cluster biogenesis and increased iron levels in mecr mutants. Reducing the levels of either iron or ceramide suppresses the neurodegenerative phenotypes indicating that increased ceramides and iron metabolism are interrelated and play an important role in the pathogenesis. Mutations in human MECR cause pediatric-onset neurodegeneration and patient-derived fibroblasts display similar elevated ceramide levels and impaired iron homeostasis. In summary, this study shows an as-yet-unidentified role of mecr/MECR in ceramide and iron metabolism providing a mechanistic link between mtFAS and neurodegeneration.

neuroscience↗