Mesenchymal-derived extracellular vesicles enhance microglia-mediated synapse remodeling after cortical injury in

Yuxin Zhou1, Hrishti Bhatt1, Chromewell A Mojica1

  • 1Department of Anatomy & Neurobiology, Boston University, Chobanian & Avedisian School of Medicine, Boston, MA, 02118, USA.

PubMed

Insights

Mesenchymal-derived extracellular vesicles (EVs) promote motor recovery after brain injury in monkeys. EVs help clear debris and preserve synapses, supporting functional recovery by modulating microglial activity.

Area of Science:

  • Neuroscience
  • Immunology
  • Regenerative Medicine

Background:

  • Microglial neuro-immune interactions are crucial for recovery from cortical injuries like stroke.
  • Previous studies showed mesenchymal-derived extracellular vesicles (MSC-EVs) enhance motor recovery in aged rhesus monkeys post-M1 injury.
  • MSC-EVs promote homeostatic microglia, reduce neuronal hyperexcitability, and enhance synaptic plasticity.

Purpose of the Study:

  • To investigate the structural and molecular interactions between microglia and neuronal synapses following cortical injury.
  • To determine how mesenchymal-derived extracellular vesicles (MSC-EVs) influence these interactions and affect recovery.
  • To elucidate the role of C1q in microglia-mediated synapse phagocytosis and its modulation by MSC-EVs.

Main Methods:

  • Induction of focal cortical lesions in aged rhesus monkeys.
  • Intravenous administration of vehicle or MSC-EVs at 24 hours and 14 days post-injury.
  • Multi-labeling immunohistochemistry, high-resolution microscopy, and gene expression analysis to quantify synaptic and microglial markers (Iba1, P2RY12, C1q).

Main Results:

  • Lesion-induced loss of excitatory synapses was ameliorated by MSC-EV treatment.
  • MSC-EVs differentially affected microglia and C1q expression in perilesional M1 and premotor cortex (PMC).
  • In M1, MSC-EVs increased C1q+ hypertrophic microglia, associated with debris clearance and anti-inflammatory functions.
  • In PMC, MSC-EVs decreased C1q+ synaptic tagging and microglia-spine contacts.

Conclusions:

  • MSC-EV treatment enhances synaptic plasticity by clearing acute damage in M1, preventing chronic inflammation and synaptic loss in PMC.
  • These mechanisms preserve cortical motor networks and balanced synaptic function, supporting functional recovery after injury.
  • MSC-EVs represent a promising therapeutic strategy for cortical injury by modulating neuro-immune interactions and synaptic integrity.

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