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Munoz-Oreja, M.

Publications and source records attributed to Munoz-Oreja, M..

2 recordsLinked to original sources

Deep learning-driven neuromorphogenesis screenings identify repurposable drugs for mitochondrial disease

Mitochondrial disease encompasses untreatable conditions affecting tissues with high energy demands. A severe manifestation of mitochondrial disease is Leigh syndrome (Leigh), which causes defects in basal ganglia and midbrain regions, psychomotor regression, lactic acidosis, and early death. We previously generated isogenic pairs of Leigh cerebral organoids and uncovered defects in neuromorphogenesis. Here, we leveraged on this disease feature to devise drug discovery pipelines. We developed a deep learning algorithm tailored for cell type-specific drug repurposing to identify drugs capable of promoting neuronal commitment. In parallel, we performed a survival drug screen in yeast and validated the repurposable hits on branching capacity in Leigh neurons. The two approaches independently highlighted azole compounds, Talarozole and Sertaconazole, both of which lowered lactate release and improved neurogenesis and neurite organization in Leigh midbrain organoids. Hence, targeting neuromorphogenesis has led to identify potential new drugs for mitochondrial disease and could prove an effective strategy for further drug discovery.

neuroscience↗

Energy scarcity and impaired mitochondrial translation induce perinuclear stress granule clustering

Many proteins linked to amyotrophic lateral sclerosis and fronto-temporal dementia (ALS-FTD) change their cellular location and coalesce in cytoplasmic inclusion bodies in the disease state; yet the factors that govern protein relocation and organization remain unclear. Here, we show that inhibition of glycolysis and mitochondrial protein synthesis causes many proteins involved in ALS-FTD to change location, and form a novel structure comprising a ring of stress granules encircling the aggresome, a focal microtubule-based structure beside the nucleus. A perinuclear ring of stress granules also forms in activated microglia of mice exposed to the glycolytic inhibitor, 2-Deoxy-D-glucose. We propose that the new arrangement increases the risk of the stress granules merging and converting from the liquid phase to the insoluble inclusion characteristic of ALS-FTD. Thus, our findings suggest that that compromised nutrient and energy metabolism can precipitate a molecular cascade that ultimately leads to the pathological hallmark of ALS-FTD the perinuclear inclusion body. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=127 SRC="FIGDIR/small/578399v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@b32d48org.highwire.dtl.DTLVardef@161f848org.highwire.dtl.DTLVardef@f35c66org.highwire.dtl.DTLVardef@1375508_HPS_FORMAT_FIGEXP M_FIG C_FIG Inhibition of glycolysis and mitochondrial protein synthesis induces translocation of a swathe of ALS-FTD related proteins in primary human fibroblasts. The relocated proteins form concentric cytoplasmic rings (CCR) comprising stress granules, the Golgi and the aggresome, beside the nucleus. A perinuclear ring of stress granules forms in the mouse brain following intermittent nutrient restriction, with the glucose analog 2DG. The CCR is potentially a key intermediate step in the formation of pathological inclusions and so perturbed nutrient and energy metabolism encompassing impaired mitochondrial translation could precipitate the ALS-FTD disease cascade.

cell biology↗