Protein Synthesis Dysregulation in Neurodegeneration: Mechanisms, Consequences, and Therapeutic Modulation

Protein synthesis in neurons is essential for shaping and maintaining the proteome, which underpins synaptic function, learning, memory, and neuronal resilience. Dysregulated mRNA translation control, particularly at the level of initiation, results in reduced global protein synthesis and is a common pathological feature of many neurodegenerative disorders. In mouse models of these diseases, sustained global translational repression drives synaptic dysfunction and loss, ultimately leading to neurodegeneration. Crucially, interventions alleviating this repression restore the proteome, rescue synaptic dysfunction, and promote neuronal survival, leading to their therapeutic potential being assessed in clinical trials. Recently, alternative nodes of regulation have emerged, not only of global mRNA translation-including elongation control-but also of mechanisms fine-tuning subcellular translation in different cellular compartments, notably at synapses and mitochondria. These translation regulatory mechanisms bring a more nuanced understanding of the role of local protein synthesis in neuronal health and disease and the opportunity for novel therapies.

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Publication Details

Journal
The Annual Review of Pharmacology and Toxicology
Published
2026-09-08
DOI
https://doi.org/10.1146/annurev-pharmtox-080125-105017
Primary Topic
Genetic Neurodegenerative Diseases
Type
article
Field-Weighted Citation Impact
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article

Protein Synthesis Dysregulation in Neurodegeneration: Mechanisms, Consequences, and Therapeutic Modulation

Adrian J. Butcher, Karinder K. Brar, Giovanna R. Mallucci
The Annual Review of Pharmacology and Toxicology
Genetic Neurodegenerative Diseases
article

Protein Synthesis Dysregulation in Neurodegeneration: Mechanisms, Consequences, and Therapeutic Modulation

Adrian J. Butcher, Karinder K. Brar, Giovanna R. Mallucci
article en

Abstract

Protein synthesis in neurons is essential for shaping and maintaining the proteome, which underpins synaptic function, learning, memory, and neuronal resilience. Dysregulated mRNA translation control, particularly at the level of initiation, results in reduced global protein synthesis and is a common pathological feature of many neurodegenerative disorders. In mouse models of these diseases, sustained global translational repression drives synaptic dysfunction and loss, ultimately leading to neurodegeneration. Crucially, interventions alleviating this repression restore the proteome, rescue synaptic dysfunction, and promote neuronal survival, leading to their therapeutic potential being assessed in clinical trials. Recently, alternative nodes of regulation have emerged, not only of global mRNA translation-including elongation control-but also of mechanisms fine-tuning subcellular translation in different cellular compartments, notably at synapses and mitochondria. These translation regulatory mechanisms bring a more nuanced understanding of the role of local protein synthesis in neuronal health and disease and the opportunity for novel therapies.

The Annual Review of Pharmacology and Toxicology
University of Cambridge (GB), Asphalt Institute (US)
Openalex Percentile: Top 16%
Genetic Neurodegenerative Diseases
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