Arc Capsids Facilitate the Transfer of Muscleblind

Insights

The activity-regulated cytoskeletal-associated protein (Arc) interacts with Mbnl1 RNA in an activity-dependent manner, potentially facilitating its transfer via extracellular vesicles (EVs) for neurodevelopment.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Cell Biology

Background:

  • The activity-regulated cytoskeletal-associated protein (Arc) is crucial for synaptic plasticity and function.
  • Arc's mammalian ortholog, Arc, plays a conserved role in neural synapses.
  • Previous work showed Drosophila dArc1 interacts with non-self transcripts like muscleblind (Mbl).

Purpose of the Study:

  • To investigate the conservation of Arc-RNA interactions in mammals.
  • To determine if Arc interacts with the mammalian Mbl ortholog, Mbnl1.
  • To explore the role of neuronal activity and extracellular vesicles (EVs) in Arc-Mbnl1 interactions and RNA transfer.

Main Methods:

  • Immunoprecipitation of Arc protein in mouse neuro2a (N2A) cells.
  • Analysis of Arc-RNA interactions upon N2A cell differentiation and potassium stimulation.
  • Confocal microscopy to assess Arc and Mbnl1 colocalization in mouse dentate gyrus.
  • Detection of Arc and Mbnl1 RNA in extracellular vesicles (EVs).
  • Observation of MblA transfer at the Drosophila neuromuscular junction (NMJ).

Main Results:

  • Arc protein co-immunoprecipitates with both Arc and Mbnl1 transcripts in N2A cells.
  • Neuronal activity (potassium stimulation) restores Arc's interaction with its own and Mbnl1 transcripts after differentiation.
  • Mbnl1 shows increased colocalization with Arc in the dentate gyrus of stressed mice.
  • Both Arc and Mbnl1 RNAs are found in EVs; Mbnl1 is not directly encapsulated by Arc.
  • Postsynaptic MblA accumulation at the Drosophila NMJ depends on presynaptic dArc1.

Conclusions:

  • Arc protein interacts with Mbnl1 RNA in an activity-dependent manner.
  • This interaction may mediate transsynaptic transfer of Mbnl1 RNA via EVs.
  • The findings suggest a conserved mechanism for RNA transfer influencing neurodevelopment.

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