Analysis of Brain Structure and Neural Organization in Dystrophin-Deficient Model Mice with Magnetic Resonance Imaging at 7 T
Анализ структуры головного мозга и нейронной организации у модельных мышей с дефицитом дистрофина методом магнитно-резонансной томографии при напряжённости поля 7 Тл
2022-03-08
SCID: 54.1/rwqsyzvp
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7T magnetic resonance imagingbrain ventricular enlargementdiffusion tensor imagingdystrophin-deficient miceneurite orientation dispersion and density imaging
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Abstract (AI)
Background: Dystrophin strengthens muscle cells; however, in muscular dystrophy, dystrophin is deficient due to an abnormal sugar chain. This abnormality occurs in skeletal muscle and in brain tissue. Objective: This study aimed to non-invasively analyze the neural organization of the brain in muscular dystrophy. We used a mouse model of muscular dystrophy to study whether changes in brain structure and neurodegeneration following dystrophin deficiency can be assessed by 7T magnetic resonance imaging. Methods: C57BL/10-mdx (X chromosome-linked muscular dystrophy) mice were used as the dystrophic mouse model and healthy mice were used as controls. Ventricular enlargement is one of the most common brain malformations in dystrophin-deficient patients. Therefore, we examined whether ventricular enlargement was observed in C57BL/10-mdx using transverse-relaxation weighted images. Brain parenchyma analysis was performed using diffusion MRI with diffusion tensor images and neurite orientation dispersion and density imaging. Parenchymal degeneration was assessed in terms of directional diffusion, nerve fiber diffusion, and dendritic scattering density. Results: For the volume of brain ventricles analyzed by T2WI, the average size was 1.5 times larger in mdx mice compared to control mice. In the brain parenchyma, a significant difference (p < 0.05) was observed in parameters indicating disturbances in the direction of nerve fibers and dendritic scattering density in the white matter region. Conclusion: Our results show that changes in brain structure due to dystrophin deficiency can be assessed in detail without tissue destruction by combining diffusion tensor images and neurite orientation dispersion and density imaging analyses.
Key Findings
1
7-T MRI noninvasively detected brain structural and neural-organization abnormalities in dystrophin-deficient mdx mice.
2
Combining diffusion tensor imaging with neurite orientation dispersion and density imaging enabled detailed assessment of dystrophin-related brain degeneration without tissue destruction.
3
Diffusion MRI showed significant white-matter abnormalities in nerve-fiber directional organization and dendritic dispersion density (p < 0.05).
4
Mdx mice had brain ventricles averaging 1.5 times larger than those of healthy control mice on T2-weighted imaging.
Research Object
the brains of dystrophin-deficient C57BL/10-mdx model mice
Research Subject
brain structural and neural-organizational alterations associated with dystrophin deficiency, including ventricular enlargement, nerve-fiber directional disruption, and dendritic scattering density
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2022-03-08
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