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Asfogo, N.

Publications and source records attributed to Asfogo, N..

2 recordsLinked to original sources

The UPRER governs the cell-specific response of human dopaminergic neurons to mitochondrial stress

Mitochondrial dysfunction is thought to be central to the pathophysiology of Parkinsons disease. The preferential vulnerability of dopaminergic (DA) neurons of the substantia nigra pars compacta to mitochondrial stress may underlie their massive degeneration and the occurrence of motor symptoms. Using LUHMES-derived DA neurons, we demonstrated that inhibition of the mitochondrial electron transport chain resulted in a severe alteration of mitochondrial turnover, pushing the balance towards mitochondrial loss, a reduction of the maturation status of the DA population and an increased proportion of apoptotic cells. PERK-mediated Unfolded Protein Response of the Endoplasmic Reticulum (UPRER) emerged as the key coordinator of the stress response, governing the inactivation of the mitochondrial UPR (UPRmt), the initiation of mitophagy and the cell-specific expression of long non-coding RNAs (lncRNAs). Importantly, we discovered novel lncRNAs specifically expressed in human DA neurons upon stress. Among them, we showed that lnc-SLC6A15-5 contributes to the resumption of translation after mitochondrial stress. SummaryThe Unfolded Protein Response of the Endoplasmic Reticulum is induced upon stress in human dopaminergic neurons and modulates mitochondrial homeostasis and transcriptional programs including expression of long non-coding RNAs (lncRNAs). We discovered a lncRNA involved in translation resumption after stress.

neuroscience↗

Developmental transcriptional control of mitochondrial homeostasis is required for activity-dependent synaptic connectivity

During neuronal circuit formation, local control of axonal organelles ensures proper synaptic connectivity. Whether this process is genetically encoded is unclear and if so, its developmental regulatory mechanisms remain to be identified. We hypothesized that developmental transcription factors regulate critical parameters of organelle homeostasis that contribute to circuit wiring. We combined cell type-specific transcriptomics with a genetic screen to discover such factors. We identified Telomeric Zinc finger-Associated Protein (TZAP) as a temporal developmental regulator of neuronal mitochondrial homeostasis genes, including Pink1. In Drosophila, loss of dTzap function during visual circuit development leads to loss of activity-dependent synaptic connectivity, that can be rescued by Pink1 expression. At the cellular level, loss of dTzap/TZAP leads to defects in mitochondrial morphology, attenuated calcium uptake and reduced synaptic vesicle release in fly and mammalian neurons. Our findings highlight developmental transcriptional regulation of mitochondrial homeostasis as a key factor in activity-dependent synaptic connectivity.

neuroscience↗