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 PMID:39255003  

Mechanical force of uterine occupation enables large vesicle extrusion from proteostressed maternal neurons.

Guoqiang Wang | Ryan J Guasp | Sangeena Salam | Edward Chuang | Andrés Morera | Anna J Smart | David Jimenez | Sahana Shekhar | Emily Friedman | Ilija Melentijevic | Ken C Nguyen | David H Hall | Barth D Grant | Monica Driscoll
eLife | 2024

Large vesicle extrusion from neurons may contribute to spreading pathogenic protein aggregates and promoting inflammatory responses, two mechanisms leading to neurodegenerative disease. Factors that regulate the extrusion of large vesicles, such as exophers produced by proteostressed C. elegans touch neurons, are poorly understood. Here, we document that mechanical force can significantly potentiate exopher extrusion from proteostressed neurons. Exopher production from the C. elegans ALMR neuron peaks at adult day 2 or 3, coinciding with the C. elegans reproductive peak. Genetic disruption of C. elegans germline, sperm, oocytes, or egg/early embryo production can strongly suppress exopher extrusion from the ALMR neurons during the peak period. Conversely, restoring egg production at the late reproductive phase through mating with males or inducing egg retention via genetic interventions that block egg-laying can strongly increase ALMR exopher production. Overall, genetic interventions that promote ALMR exopher production are associated with expanded uterus lengths and genetic interventions that suppress ALMR exopher production are associated with shorter uterus lengths. In addition to the impact of fertilized eggs, ALMR exopher production can be enhanced by filling the uterus with oocytes, dead eggs, or even fluid, supporting that distention consequences, rather than the presence of fertilized eggs, constitute the exopher-inducing stimulus. We conclude that the mechanical force of uterine occupation potentiates exopher extrusion from proximal proteostressed maternal neurons. Our observations draw attention to the potential importance of mechanical signaling in extracellular vesicle production and in aggregate spreading mechanisms, making a case for enhanced attention to mechanobiology in neurodegenerative disease.

Pubmed ID: 39255003

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Associated grants

  • Agency: NIGMS NIH HHS, United States
    Id: 5R01GM135326
  • Agency: NIGMS NIH HHS, United States
    Id: K12GM093854
  • Agency: NIA NIH HHS, United States
    Id: R37AG56510
  • Agency: NIA NIH HHS, United States
    Id: R37 AG056510
  • Agency: NIA NIH HHS, United States
    Id: R01 AG047101
  • Agency: NIA NIH HHS, United States
    Id: R01AG047101
  • Agency: NIH HHS, United States
    Id: R24 OD010943
  • Agency: NIGMS NIH HHS, United States
    Id: K12 GM093854
  • Agency: NIH Office of the Director,
    Id: R24OD010943
  • Agency: NIGMS NIH HHS, United States
    Id: R01 GM135326
  • Agency: NIH HHS, United States
    Id: P40 OD010440

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MetaMorph Microscopy Automation and Image Analysis Software (tool)

RRID:SCR_002368

Software tool for automated microscope acquisition, device control, and image analysis. Used for integrating dissimilar fluorescent microscope hardware and peripherals into a single custom workstation, while providing all the tools needed to perform analysis of acquired images. Offers user friendly application modules for analysis such as cell signaling, cell counting, and protein expression.

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Caenorhabditis Genetics Center (biomaterial supply resource)

RRID:SCR_007341

Center that acquires, maintains, and distributes genetic stocks and information about stocks of the small free-living nematode Caenorhabditis elegans for use by investigators initiating or continuing research on this genetic model organism. A searchable strain database, general information about C. elegans, and links to key Web sites of use to scientists, including WormBase, WormAtlas, and WormBook are available.

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