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Oliveira, N. A. S.

Publications and source records attributed to Oliveira, N. A. S..

2 recordsLinked to original sources

Pathological mutation in SMN impairs modulation of GAR1 phase separation linking condensate dysfunction to Spinal Muscular Atrophy

Pathological mutations in liquid-liquid phase separation (LLPS) scaffold proteins have been linked to biomolecular condensate dysfunction in neurodegenerative diseases, while the possible impact of client protein mutations remains unclear. In spinal muscular atrophy (SMA), the disease-associated E134K mutation in the Tudor domain (TD) of the survival motor neuron (SMN) protein disrupts its interaction with GAR1, an RGG-rich protein within the H/ACA small nucleolar ribonucleoprotein complex. The consequences of this impaired interaction have not been elucidated. Here, we identified GAR1 as an LLPS scaffold protein that is phase separated in nuclear compartments and forms gel-like condensates via complex coacervation with RNA in vitro. In cells, we reveal that SMN co-localizes with GAR1 in Cajal bodies and modulates its dynamics. Using confocal microscopy and NMR spectroscopy, we further show that SMN TD is a client protein that regulates the architecture and dynamics of GAR1 condensates through competitive RNA interactions, implicating GAR1 phase separation in RNA accumulation and release processes regulated by SMN. Notably, the SMA-associated E134K variant of SMN exhibits a reduced affinity for GAR1, impairing the modulation of GAR1 condensates and displacement RNA. Our findings suggest a mechanistic link between phase separation dysregulation and SMA, driven by disrupted scaffold-client interactions, that highlights the therapeutic potential of targeting SMN-dependent condensate regulation in SMA.

biochemistry↗

PERK inhibition in zebrafish mimics human Wolcott-Rallison syndrome phenotypes

BackgroundPERK (EIF2AK3) is an endoplasmic reticulum stress kinase whose loss of function disturbs human development, leading to skeletal dysplasia and permanent neonatal diabetes, as observed in the Wolcott-Rallison Syndrome (WRS). The lack of effective, less invasive therapies for developmental diseases highlights the need for animal models that replicate complex pathological phenotypes, while allowing scalable drug screening. Zebrafish, with their high fecundity and rapid development, facilitate efficient in vivo drug testing. MethodsWe aimed to assess the potential of zebrafish for studying PERK function and its pharmacological modulation, particularly as a model for developmental diseases like WRS. Bioinformatic analyses assessed the similarity between human and zebrafish PERK. Increasing concentrations of GSK2606414 were used to inhibit PERK. A combination of behavioural and functional assays evaluated the effects of GSK2606414 on zebrafish skeletal, neuromuscular, and cardiac development. Fluorescence microscopy in transgenic zebrafish expressing fluorescent pancreatic markers and a glucose probe assessed the diabetic-like phenotype. ResultsWe found high similarity between human and zebrafish PERK, along with bioactivity of the PERK inhibitor GSK2606414 in zebrafish. PERK inhibition evoked defects in WRS relevant parameters, such as growth and skeletal development, as well as neuromuscular and cardiac deficiencies, whereas parameters not associated with WRS like otolith area and eye/body ratio remained unaffected. Moreover, PERK inhibition decreased pancreatic ! cell mass and disrupted glucose homeostasis, indicating a diabetic phenotype. ConclusionThese findings evidence zebrafishs potential for studying PERK function and its pharmacological modulation in developmental disorders like WRS, aiding research on pathophysiology and experimental treatments.

pharmacology and toxicology↗