In Vivo Imaging of the Microglial Landscape After Whole Brain Radiation Therapy

Brendan S Whitelaw1, Sean Tanny2, Carl J Johnston3

  • 1Department of Neuroscience.

Abstract

Insights

Whole brain radiation therapy (WBRT) causes cognitive decline. This study tracked microglia in mice after WBRT, finding significant cell loss and relocation within days, suggesting a role in radiation-induced cognitive impairment.

Area of Science:

  • Neuroscience
  • Immunology
  • Radiation Oncology

Background:

  • Whole brain radiation therapy (WBRT) is crucial for brain metastases but can impair cognition.
  • Microglia, the brain's immune cells, may drive this cognitive decline through inflammation.
  • Understanding microglial responses to WBRT is key to mitigating side effects.

Purpose of the Study:

  • To investigate the temporal dynamics of microglial reactions to WBRT in individual mice.
  • To develop and utilize a novel in vivo experimental model for longitudinal imaging of microglia after WBRT.

Main Methods:

  • Surgically implanted chronic cranial windows in transgenic mice with fluorescently tagged microglia (Cx3cr1-EGFP/+) and neurons (Thy1-YFP).
  • Administered WBRT (10 Gy) guided by computed tomography.
  • Employed longitudinal in vivo 2-photon microscopy to image microglial landscape and motility at 7 and 16 days post-irradiation.

Main Results:

  • Confirmed accurate radiation dosing (within 2%) without attenuation from the cranial window.
  • Observed significant changes in the microglial landscape by 7 days post-WBRT.
  • Documented a 20% apparent loss of microglial cells and a 36% rearrangement of microglial locations.

Conclusions:

  • Demonstrated the feasibility of longitudinal in vivo imaging to study microglia-neuron interactions after WBRT.
  • Validated an experimental model for investigating dynamic cellular changes following WBRT.
  • This model can uncover cellular mechanisms underlying WBRT-induced cognitive decline.

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