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Plasticity-induced actin polymerization in the dendritic shaft regulates intracellular AMPA receptor trafficking. | LitMetric

AI Article Synopsis

  • AMPA-type receptors (AMPARs) enhance synaptic transmission during plasticity, but the mechanism of their selective trafficking to synapses is unclear.
  • Research in cultured rat hippocampal neurons reveals that GluA1-containing vesicles are concentrated near areas of stimulated synaptic changes through confinement.
  • This confinement is driven by actin polymerization, which limits the transport of these vesicles along dendrites while also promoting their movement to exocytic sites, thereby increasing their availability during synaptic activity.

Article Abstract

AMPA-type receptors (AMPARs) are rapidly inserted into synapses undergoing plasticity to increase synaptic transmission, but it is not fully understood if and how AMPAR-containing vesicles are selectively trafficked to these synapses. Here, we developed a strategy to label AMPAR GluA1 subunits expressed from their endogenous loci in cultured rat hippocampal neurons and characterized the motion of GluA1-containing vesicles using single-particle tracking and mathematical modeling. We find that GluA1-containing vesicles are confined and concentrated near sites of stimulation-induced structural plasticity. We show that confinement is mediated by actin polymerization, which hinders the active transport of GluA1-containing vesicles along the length of the dendritic shaft by modulating the rheological properties of the cytoplasm. Actin polymerization also facilitates myosin-mediated transport of GluA1-containing vesicles to exocytic sites. We conclude that neurons utilize F-actin to increase vesicular GluA1 reservoirs and promote exocytosis proximal to the sites of synaptic activity.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11326776PMC
http://dx.doi.org/10.7554/eLife.80622DOI Listing

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