Localized disruption of the presynaptic endoplasmic reticulum in Atlastin mutants

The endoplasmic reticulum (ER) extends throughout neurons and regulates many functions, including neurite outgrowth, neurotransmission, and synaptic plasticity. Mutations in ER-shaping proteins cause the neurodegenerative disorder Hereditary Spastic Paraplegia (HSP), yet the ultrastructure and dynamics of neuronal ER remain largely unexplored, especially at presynaptic terminals. Using super-resolution and live imaging in Drosophila larval motor neurons, we investigated ER structure in wild-type animals and mutants of the HSP-linked gene, Atlastin, which encodes an ER-shaping protein. Previous studies reported diffuse localization of an ER luminal marker at Atlastin mutant presynaptic terminals, which was attributed to ER fragmentation. Using an ER membrane marker, we found that Atlastin mutant ER forms robust networks with only mild defects in structure and dynamics, indicating that the primary defect is functional rather than architectural. We demonstrate that Atlastin mutants progressively displace a luminal ER protein reporter to the cytosol during larval development, specifically at synapses, while this reporter remains correctly localized in cell bodies, axons, and muscles. This synapse-specific displacement phenotype, previously unreported in non-neuronal cells, emphasizes the importance of studying neurons to understand HSP pathogenesis.

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Publication Details

Journal
Journal of Cell Science
Published
2026-09-14
DOI
https://doi.org/10.1242/jcs.265223
Primary Topic
Hereditary Neurological Disorders
Type
article
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article

Localized disruption of the presynaptic endoplasmic reticulum in Atlastin mutants

Mónica C. Quiñones-Frías, Avital A. Rodal, Dina M. Ocken
Journal of Cell Science
Hereditary Neurological Disorders
article

Localized disruption of the presynaptic endoplasmic reticulum in Atlastin mutants

Mónica C. Quiñones-Frías, Avital A. Rodal, Dina M. Ocken
article en

Abstract

The endoplasmic reticulum (ER) extends throughout neurons and regulates many functions, including neurite outgrowth, neurotransmission, and synaptic plasticity. Mutations in ER-shaping proteins cause the neurodegenerative disorder Hereditary Spastic Paraplegia (HSP), yet the ultrastructure and dynamics of neuronal ER remain largely unexplored, especially at presynaptic terminals. Using super-resolution and live imaging in Drosophila larval motor neurons, we investigated ER structure in wild-type animals and mutants of the HSP-linked gene, Atlastin, which encodes an ER-shaping protein. Previous studies reported diffuse localization of an ER luminal marker at Atlastin mutant presynaptic terminals, which was attributed to ER fragmentation. Using an ER membrane marker, we found that Atlastin mutant ER forms robust networks with only mild defects in structure and dynamics, indicating that the primary defect is functional rather than architectural. We demonstrate that Atlastin mutants progressively displace a luminal ER protein reporter to the cytosol during larval development, specifically at synapses, while this reporter remains correctly localized in cell bodies, axons, and muscles. This synapse-specific displacement phenotype, previously unreported in non-neuronal cells, emphasizes the importance of studying neurons to understand HSP pathogenesis.

Journal of Cell Science
Bates College (US), Brandeis University (US)
Openalex Percentile: Top 16%
Hereditary Neurological Disorders
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