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Non-invasive Imaging and Analysis of Cerebral Ischemia in Living Rats Using Positron Emission Tomography with 18F-FDG
Published on: December 28, 2014
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.
Abstract:
Occlusion of the major cerebral artery usually results in brain hypoxic-ischemic injury, which evokes neuroinflammation and microglial activation. Activated microglia are considered a source of multiple neurotoxic factors, such as reactive oxygen species (ROS), in the central nervous system (CNS). We herein present a 3D-rendering brain imaging technique in an experimental rodent model of cerebral ischemia based on 2D magnetic images of superparamagnetic iron oxide nanoparticles (SPIONs) using the planar frequency mixing magnetic detection (p-FMMD) technique. A rat model of cerebral ischemia was established by unilateral middle cerebral artery occlusion with reperfusion (MCAO/R) injury. 2,3,5-Triphenyltetrazolium chloride (TTC) staining was performed to demonstrate the irreversibly damaged ischemic brain tissues, and double immunofluorescent labeling of OX6 (activated microglial marker) and ethidium (ROS marker) was conducted to confirm ROS generation in the activated microglia in the infarcted brain region. The ischemic brain sections treated with OX6-conjugated SPIONs were scanned using our p-FMMD system, yielding 2D images on the basis of the nonlinear magnetic characteristics inherent in SPIONs. The p-FMMD signal images representing microglia activation show an infarct ratio of 44.6 ± 7.1% compared to the contralateral counterpart, which is smaller than observed by TTC (60.9 ± 4.9%) or magnetic resonance imaging (MRI, 65.7 ± 2.7%). Furthermore, we developed a 3D-rendering brain imaging process based on the 2D p-FMMD signal images. The 3D reconstructed model showed a decreased ratio of coincidence of the ischemic regions compared with MRI models. In this study, we successfully conducted a feasibility test on whether our p-FMMD technology, a technique for signaling and imaging based on the nonlinearity of SPIONs, can be used to visualize the ischemic brain region in real time by detecting activated microglia in an MCAO/R animal model. Therefore, our method might allow for a different approach to analyze the pathophysiology of ischemic stroke through molecular imaging. Furthermore, we propose that this magnetic particle imaging (MPI) technique that detects the nonlinear magnetization properties of SPIONs could be applied not only to a stroke model but also to various types of pathophysiological studies as a new bioimaging tool.
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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