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Updated: Sep 11, 2025

Isolation of Mouse Primary Microglia by Magnetic-Activated Cell Sorting in Animal Models of Demyelination
Published on: April 5, 2022
Distinguishing microgliosis and tau deposition in the mouse brain using paramagnetic and diamagnetic susceptibility
Jayvik Joshi1,2, Minmin Yao3, Aaron Kakazu3
1Russell H. Morgan Department of Radiology and Radiological Science, Johns Hopkins University School of Medicine, Baltimore, MD, United States.
Abstract:
Tauopathies, including Alzheimer's disease (AD), are neurodegenerative disorders characterized by hyperphosphorylated tau protein aggregates in the brain. In addition to protein aggregates, microglia-mediated inflammation and iron dyshomeostasis are other pathological features observed in AD and other tauopathies. It is known that these alterations at the subcellular level occur much before the onset of macroscopic tissue atrophy or cognitive deficits. The ability to detect these microstructural changes with MRI, therefore, has substantive importance for improved characterization of disease pathogenesis. In this study, we demonstrate that quantitative susceptibility mapping (QSM) with paramagnetic and diamagnetic susceptibility source separation has the potential to distinguish neuropathological alterations in a transgenic mouse model of tauopathy. 3D multi-echo gradient echo data were acquired from fixed brains of PS19 (Tau) transgenic mice and age-matched wild-type (WT) mice (n = 5 each) at 11.7 T. The multi-echo data were fit to a 3-pool complex signal model to derive maps of paramagnetic component susceptibility (PCS) and diamagnetic component susceptibility (DCS). Group-averaged signal fraction and composite susceptibility maps showed significant region-specific differences between the WT and Tau mouse brains. Significant bilateral increases in PCS and |DCS| were observed in specific hippocampal and cortical sub-regions of the Tau mice relative to WT controls. Comparison with immunohistological staining for microglia (Iba1) and phosphorylated-tau (AT8) further indicated that the PCS and DCS differences corresponded to regional microgliosis and tau deposition in the PS19 mouse brains, respectively. The results demonstrate that quantitative susceptibility source separation may provide sensitive imaging markers to detect distinct pathological alterations in tauopathies.
Insights
Quantitative susceptibility mapping (QSM) can detect early brain changes in tauopathies, like Alzheimer's disease. This MRI technique shows differences in paramagnetic and diamagnetic components, correlating with tau pathology and inflammation.
Area of Science:
- Neuroimaging
- Biophysics
- Neurodegeneration
Background:
- Tauopathies, including Alzheimer's disease, involve tau protein aggregates, neuroinflammation, and iron dysregulation.
- These early subcellular changes precede macroscopic brain atrophy and cognitive decline.
- Detecting these microstructural alterations with MRI is crucial for understanding disease pathogenesis.
Purpose of the Study:
- To evaluate quantitative susceptibility mapping (QSM) with susceptibility source separation for detecting neuropathological changes in a mouse model of tauopathy.
- To differentiate between tau transgenic mice and wild-type controls using QSM.
- To correlate QSM findings with microglial activation and tau deposition.
Main Methods:
- Acquisition of 3D multi-echo gradient echo data from fixed PS19 (Tau) and wild-type (WT) mouse brains at 11.7 T.
- Fitting multi-echo data to a 3-pool complex signal model to generate paramagnetic component susceptibility (PCS) and diamagnetic component susceptibility (DCS) maps.
- Comparison of QSM maps with immunohistological staining for microglia (Iba1) and phosphorylated-tau (AT8).
Main Results:
- Significant region-specific differences in signal fraction and composite susceptibility maps between Tau and WT mouse brains.
- Increased PCS and |DCS| observed in hippocampal and cortical regions of Tau mice compared to WT controls.
- Correlation of PCS and DCS alterations with regional microgliosis and tau deposition, respectively.
Conclusions:
- Quantitative susceptibility source separation shows potential as a sensitive MRI marker for detecting distinct pathological alterations in tauopathies.
- This technique may aid in early diagnosis and characterization of neurodegenerative diseases.
- QSM can non-invasively visualize early pathological changes related to tau aggregation and neuroinflammation.

