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R. Kawaguchi

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Open access Aug 2026

A CK2α–G3BP1 signaling axis regulates local translation in developing neurons and is disrupted in OCNDS

Neurodevelopmental disorders are frequently caused by mutations in pleiotropic kinases, yet downstream effectors driving neuronal pathology remain undefined. Here, we identify the G3BP1-dependent stress granule pathway as the dominant effector of casein kinase 2 (CK2α) in developing neurons, implying that its dysregulation underlies the neurodevelopmental deficits of Okur-Chung neurodevelopmental syndrome (OCNDS). OCNDS-associated CK2α mutations reduce phosphorylation of G3BP1 at serine 149, promoting aberrant phase separation and persistent granules that sequester neuronal mRNAs and suppress local protein synthesis across axonal and dendritic compartments. These phenotypes produce allele-specific deficits in neuronal morphogenesis, synaptic abundance, and network excitability, which are conserved in a knock-in mouse model and in patient-derived iPSC neurons. G3bp1 knockdown rescues translational and morphological phenotypes across all OCNDS alleles, demonstrating that restoring granule homeostasis reverses neuronal pathology. Together, these findings establish OCNDS as a disorder of compartment-specific translational dysregulation driven by impaired CK2α–G3BP1 control of RNA granule homeostasis. Summary OCNDS mutations disrupt CK2α–G3BP1 signaling, causing persistent granules and defective neuronal translation and development.

Manasi Agrawal, Meghal Desai, Shruti Ghumra et al. · 0 citations
Open access Jul 2026

Acute rapamycin treatment reveals distinct mechanisms of dysfunction in a maternal inflammation mouse model

Maternal inflammatory response (MIR) during early mouse gestation induces a cascade of physiological and behavioral changes associated with autism spectrum disorder (ASD). We have shown that mild MIR causes chronic systemic and brain inflammation, mTOR pathway activation, mild brain overgrowth with regionally specific volumetric changes, sensory processing dysregulation, and repetitive behavior abnormalities. Prior rapamycin studies in autism models focused on chronic treatments that alter or prevent physical brain changes. Here, we focus on acute rapamycin effects to uncover novel mTOR pathway-mediated mechanisms of dysfunction. Within 2 hours, rapamycin rescues neuronal hyperexcitability, seizure susceptibility, functional network connectivity, brain community structure, repetitive behaviors, and sensory over-responsivity in adult MIR offspring. These CNS-mediated effects coincide with altered expression of genes associated with ASD, ion channels, and epilepsy. Our findings demonstrate that mTOR dysregulation drives dysfunctional brain development in MIR offspring but the adult brain remains amenable to rapid functional normalization, rescuing core and comorbid ASD-associated brain and behavior phenotypes. Restoring excitatory/inhibitory imbalance and sensory functional network modularity may be important targets for therapeutically addressing multiple ASD phenotypes. Here authors show acute rapamycin transiently rescues neuron hyperexcitability, network connectivity, repetitive behaviors, and sensory over-responsivity in an acquired model of autism, showing mTOR-driven phenotypes can be treatment responsive in the mature brain.

Janel Le Belle, M. Condro, C. Cepeda et al. · 0 citations