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Yandiev, S.

Publications and source records attributed to Yandiev, S..

2 recordsLinked to original sources

The AMPK-related kinase NUAK1 regulates neuronal morphogenesis through the RNA splicing co-factor SON

In recent years, alternative splicing emerged as a major mechanism controlling gene-regulatory networks during brain development, yet how alternative splicing is tuned to the dynamic alterations underlying neuronal maturation remains poorly understood. Here, we identified that NUAK1, an AMPK-related kinase linked to neurodevelopmental disorders, is a key regulator of alternative splicing in developing cortical neurons. Mechanistically, NUAK1 exerts its function through phosphorylation of the splicing co-factor SON, regulating a group of highly conserved splicing events in genes crucial for neurodevelopment. We demonstrate that SON plays an important role in cortical neuron development, which is consistent with the neurodevelopmental phenotypes observed in Zhu-Tokita-Takenouchi-Kim (ZTTK) syndrome, a genetic disorder caused by SON haploinsufficiency. Together, our findings uncover a novel pathway involving NUAK1 and SON, which orchestrate a splicing program required for proper neuronal development.

neuroscience↗

Purinergic receptor activation rectifies autism-associated endothelial dysfunction

Early cerebrovascular alterations affect brain maturation by impacting trophic support and energy supply. Recent evidence in a 16p11.2 deletion mouse model of autism spectrum disorder (ASD) revealed brain endothelial abnormalities postnatally. Yet, the endothelial alterations eliciting these changes remain unknown. Isolation of brain endothelial cells (ECs) from 14-day old male 16p11.2-deficient and wild-type mice revealed that 16p11.2 deletion-induced endothelial dysfunction is linked to a bioenergetic failure, with reduced intracellular ATP. Intra- or extra-cellular ATP supplementation rescued the function of 16p11.2-deficient ECs in vitro via P2 purinergic receptor activation, specifically P2Y2 receptors. Activating P2Y2 receptors restored cerebrovascular reactivity in 16p11.2-deficient parenchymal arterioles ex vivo and rescued 16p11.2 deletion-associated mouse behaviors. Taken together, this study demonstrates that metabolic reprogramming of brain ECs via purinergic receptor engagement represents a possible therapeutic avenue for ASD.

cell biology↗