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Bairo, S. M.

Publications and source records attributed to Bairo, S. M..

2 recordsLinked to original sources

Dysregulation of the SARA-Smurf2 Regulatory Axis in Temporal Lobe Epilepsy

Temporal lobe epilepsy (TLE) is associated with dysregulation of transforming growth factor {beta} (TGF{beta}) signaling, a key contributor to epileptogenesis. SARA (Smad Anchor for Receptor Activation), a central regulator of this pathway, is controlled by the E3 ubiquitin ligase Smurf2 through ubiquitination. However, the role of the SARA-Smurf2 axis in regulating TGF{beta} signaling during TLE has not previously been described, and whether this pathway can be therapeutically targeted remains unknown. Using a pilocarpine-induced status epilepticus (SE) model and astrocytes derived from patients with refractory TLE, we identified dysregulation of the SARA-Smurf2 pathway in both experimental systems. In SE rats, SARA and Glial Fibrillary Acidic Protein (GFAP) levels were significantly increased, whereas Smurf2 induction was insufficient to prevent SARA accumulation. In TLE-derived astrocytes, increased SARA and GFAP immunoreactivity was accompanied by reduced Smurf2 immunoreactivity and altered Smurf2 subcellular distribution. Losartan treatment restored SARA and Smurf2 immunoreactivity toward a control-like pattern in both models and reduced seizure frequency and duration in SE animals. These findings point towards a dysregulation of the SARA-Smurf2 axis as a molecular signature of TLE, support SARA as a potential therapeutic target, providing experimental evidence for the repositioning of Losartan as a potential treatment alternative for drug-resistant epilepsy, warranting further translational and clinical investigation. KEY POINTSO_LIDysregulation of the SARA-Smurf2 axis is a molecular signature of experimental and human temporal lobe epilepsy. C_LIO_LIImpaired Smurf2-dependent regulation of SARA may sustain TGF{beta} signaling, astrocyte reactivity, and epileptogenesis. C_LIO_LILosartan restores the SARA-Smurf2 axis and reduces seizures, supporting a novel therapeutic strategy for TLE. C_LI

neuroscience↗

Calcineurin B-mediated Ca2+ sensing translates stress signal intensity into the assembly of phase-separated condensates at PERK complexes.

Endoplasmic reticulum (ER) stress activates protein kinase RNA-like ER kinase (PERK), which initially promotes adaptive responses but remains the only active UPR branch during prolonged stress, mediating both early cytoprotective and chronic pro-apoptotic signaling. Recently, we identified translocon-generated Ca2+ microdomains that promote PERK phosphorylation during early UPR, revealing a mechanism by which local Ca2+ signals regulate UPR activation. However, the molecular mechanism linking these Ca2+ microdomains to PERK activation remains elusive. Previously, we showed that calcineurin (CN), a Ca2+ -dependent heterodimer composed of catalytic (CNA) and regulatory (CNB) subunits, exerts a non-canonical pro-survival function by promoting PERK autophosphorylation. Here, using super-resolution microscopy, CRISPR-Cas9 editing, in silico analyses, and optogenetic droplet assays, we identify CNB as a local Ca2+ sensor that couples translocon-generated Ca2+ signals to liquid condensate assembly, thereby promoting adaptive PERK phosphorylation. These findings establish CNB-mediated condensate assembly as a mechanism that translates local Ca2+ signals into spatially organized early adaptive PERK signaling.

cell biology↗