Spinal cord perfusion impairments in the M83 mouse model of Parkinson's disease
Combes, B. F.; Kalva, S. K.; Benveniste, P.-L.; Tournant, A.; Law, M. H.; Newton, J.; Krueger, M.; Weber, R. Z.; Dias, I.; Noain, D.; Dean Ben, X. L.; Konietzko, U.; Baumann, C. R.; Gillberg, P.-G.; Hock, C.; Nitsch, R. M.; Cohen-Adad, J.; Razansky, D.; Ni, R.
Show abstract
Metabolism and bioenergetics in the central nervous system play important roles in the pathophysiology of Parkinsons disease (PD). Here, we employed a multimodal imaging approach to assess oxygenation changes in the spinal cord of a transgenic M83 murine model of PD in comparison to non-transgenic littermates at 9-12 months-of-age. A lower oxygen saturation (SO2)SVOT was detected in vivo with spiral volumetric optoacoustic tomography (SVOT) in the spinal cord of M83 mice compared to non-transgenic littermate mice. Ex-vivo high-field T1-weighted magnetic resonance imaging (MRI) and immunostaining for alpha-synuclein (phospho-S129) and vascular organisation (CD31 and GLUT1) were used to investigate the nature of the abnormalities detected via in vivo imaging. Ex-vivo analysis showed that the vascular network in the spinal cord was not impaired in the spinal cord of M83 mice. Ex-vivo MRI assisted with deep learning-based automatic segmentation showed no volumetric atrophy in the spinal cord of M83 mice compared to non-transgenic littermates, whereas nuclear alpha-synuclein phosphorylated at Ser129 site could be linked to early pathology and metabolic dysfunction. The proposed and validated non-invasive high-resolution imaging tool to study oxygen saturation in the spinal cord of PD mice holds promise for assessing early changes preceding motor deficits in PD mice.
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