ArticleBiological psychiatry2023
Excessive Protein Accumulation and Impaired Autophagy in the Hippocampus of Angelman Syndrome Modeled in Mice.
Article in Biological psychiatry, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 16 citations in OpenAlex.
- Impaired Activity-Regulated Proteostasis: A Shared Mechanism in Neurodevelopmental Disorders.Biological psychiatry · 2026Review
- Dysfunction of the Autophagy System and MDM2-p53 Axis Leads to the Accumulation of Amyloidogenic Proteins in Angelman Syndrome Models.International journal of molecular sciences · 2025Article
- A prodrug targeting CIM6P/IGF2R enhances memory in healthy mice and reverses deficits in an Angelman syndrome mouse model.Translational psychiatry · 2025Article
- Acute administration of lovastatin had no pronounced effect on motor abilities, motor coordination, gait nor simple cognition in a mouse model of Angelman syndrome.Journal of neurodevelopmental disorders · 2025Article
- Impaired macroautophagy confers substantial risk for intellectual disability in children with autism spectrum disorders.Molecular psychiatry · 2025Article
- Turning garbage into gold: Autophagy in synaptic function.Current opinion in neurobiology · 2025Review
- Alterations of synaptic plasticity in Angelman syndrome model mice are rescued by 5-HT7R stimulation.Progress in neurobiology · 2024Article
- Interlinked destinies: How ubiquitin-proteasome and autophagy systems underpin neurocognitive outcomes.Experimental neurology · 2024Review
- Crosstalk between ubiquitination and translation in neurodevelopmental disorders.Frontiers in molecular neuroscience · 2024Review
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3 authors at 1 institution in 1 country.
Funding
Abstract
backgroundAngelman syndrome (AS), a neurodevelopmental disorder caused by abnormalities of the 15q11.2-q13.1 chromosome region, is characterized by impairment of cognitive and motor functions, sleep problems, and seizures. How the genetic defects of AS produce these neurological symptoms is unclear. Mice modeling AS (AS mice) accumulate activity-regulated cytoskeleton-associated protein (ARC/ARG3.1), a neuronal immediate early gene (IEG) critical for synaptic plasticity. This accumulation suggests an altered protein metabolism.
methodsFocusing on the dorsal hippocampus (dHC), a brain region critical for memory formation and cognitive functions, we assessed levels and tissue distribution of IEGs, de novo protein synthesis, and markers of protein synthesis, endosomes, autophagy, and synaptic functions in AS mice at baseline and following learning. We also tested autophagic flux and memory retention following autophagy-promoting treatment.
resultsAS dHC exhibited accumulation of IEGs ARC, FOS, and EGR1; autophagy proteins MLP3B, SQSTM1, and LAMP1; and reduction of the endosomal protein RAB5A. AS dHC also had increased levels of de novo protein synthesis, impaired autophagic flux with accumulation of autophagosome, and altered synaptic protein levels. Contextual fear conditioning significantly increased levels of IEGs and autophagy proteins, de novo protein synthesis, and autophagic flux in the dHC of normal mice, but not in AS mice. Enhancing autophagy in the dHC alleviated AS-related memory and autophagic flux impairments.
conclusionsA major biological deficit of AS brain is a defective protein metabolism, particularly that dynamically regulated by learning, resulting in stalled autophagy and accumulation of neuronal proteins. Activating autophagy ameliorates AS cognitive impairments and dHC protein accumulation.
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