Construction of 3D-rendering imaging of an ischemic rat brain model using the planar FMMD technique

Chang-Beom Kim1, Sang-Jin Park2, Jae-Chan Jeong1

  • 1SW Contents Research Lab., Electronics and Telecommunications Research Institute (ETRI), 218 Gajeong-Ro, Yuseong-Gu, Daejeon, 34129, Republic of Korea.

Scientific Reports
|December 15, 2019
PubMed

Insights

This study introduces a novel 3D brain imaging technique using superparamagnetic iron oxide nanoparticles (SPIONs) to visualize ischemic stroke in real-time. The method effectively detects activated microglia, offering a new tool for stroke research and bioimaging.

Area of Science:

  • Neuroscience
  • Biomedical Engineering
  • Medical Imaging

Background:

  • Cerebral artery occlusion causes hypoxic-ischemic brain injury, leading to neuroinflammation and microglial activation.
  • Activated microglia release neurotoxic factors like reactive oxygen species (ROS) in the central nervous system (CNS).
  • Current imaging methods for stroke assessment have limitations in real-time visualization of specific cellular responses.

Purpose of the Study:

  • To present a novel 3D-rendering brain imaging technique for visualizing ischemic brain regions.
  • To utilize superparamagnetic iron oxide nanoparticles (SPIONs) and planar frequency mixing magnetic detection (p-FMMD) for detecting activated microglia.
  • To assess the feasibility of this technique in an experimental rodent model of cerebral ischemia.

Main Methods:

  • Established a rat model of cerebral ischemia via middle cerebral artery occlusion with reperfusion (MCAO/R).
  • Employed 2,3,5-Triphenyltetrazolium chloride (TTC) staining and double immunofluorescent labeling (OX6 for microglia, ethidium for ROS).
  • Utilized a p-FMMD system to scan brain sections treated with OX6-conjugated SPIONs, generating 2D magnetic images.

Main Results:

  • The p-FMMD technique visualized activated microglia in the ischemic brain regions.
  • The infarct ratio detected by p-FMMD (44.6%) was smaller than that observed by TTC (60.9%) or MRI (65.7%).
  • A 3D-rendering model was developed from 2D p-FMMD images, showing a decreased coincidence ratio of ischemic regions compared to MRI.

Conclusions:

  • The p-FMMD technology, leveraging SPION nonlinearity, successfully visualized ischemic brain regions by detecting activated microglia in an MCAO/R animal model.
  • This molecular imaging approach offers a new perspective for analyzing ischemic stroke pathophysiology.
  • The proposed magnetic particle imaging (MPI) technique holds potential as a versatile bioimaging tool for various pathophysiological studies.

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