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May 6, 2026Journal of Developmental Biology0 citationsOpen Access

Adenosine Receptor Functionality and Desensitization Machinery in a Neuronal Cell Model of Angelman Syndrome

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MCMartina ContestabileJAJacqueline Fátima Martins de AlmeidaCCChiara De Cesari

Key Points

  • This research aims to explore adenosine receptor functionality in a neuronal model of Angelman syndrome.
  • Utilized SH-SY5Y cells with silenced UBE3A to analyze adenosine receptor (AR) signaling.
  • Examined receptor protein levels, desensitization kinetics, and GRK2 dynamics in UBE3A-deficient cells.
  • Assessed the effects of AR agonists on survival, neuronal morphology, and autophagy markers.
  • UBE3A loss decreased A1AR, A2BAR, and A3AR levels while increasing A2AR expression.
  • Desensitization of A1AR and A2AR was slower in UBE3A-deficient cells.
  • AR agonists promoted cell survival and improved neurite density in the absence of UBE3A.

Abstract

Angelman syndrome (AS) is a neurodevelopmental disorder caused by the loss of maternal UBE3A expression, leading to disrupted proteostasis and synaptic dysfunction. Adenosine is a ubiquitous neuromodulator whose G protein-coupled receptors (ARs) regulate neuronal differentiation and neurite outgrowth during development. Here, we investigated AR signaling and their influence on survival–autophagy balance and neuronal morphology in an AS cellular model. Using SH-SY5Y cells with silenced UBE3A, we found that UBE3A loss markedly decreased A1AR, A2BAR, and A3AR protein levels while significantly increasing A2AR expression. Ligand affinity was preserved across genotypes, but A1AR and A2AAR desensitization kinetics were significantly slower in UBE3A-deficient cells. These effects were associated with reduced recruitment of G protein-coupled receptor kinase 2 (GRK2) to the plasma membrane and decreased GRK2–AR association in UBE3A-deficient cells, suggesting a possible contribution of altered GRK2 dynamics to prolonged AR signaling. Functionally, A1AR and A2AR agonists preferentially promoted survival of UBE3A-deficient cells and modulated the MDM2–p53 axis and autophagy markers; A1R stimulation also increased neurite density in UBE3A-deficient cells. Together, these results identify AR-level alterations and defective desensitization machinery in AS neuronal cells and link receptor changes to downstream proteostasis and morphological phenotypes relevant to AS pathophysiology.

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Cite This Study

Contestabile et al. (2026) studied this question.

synapsesocial.com/papers/69fa989404f884e66b5324bchttps://doi.org/10.3390/jdb14020020
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