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1.
Nat Commun ; 11(1): 2081, 2020 04 29.
Article in English | MEDLINE | ID: mdl-32350278

ABSTRACT

The blood-cerebrospinal fluid barrier (BCSFB) is a highly dynamic transport interface that serves brain homeostasis. To date, however, understanding of its role in brain development and pathology has been hindered by the absence of a non-invasive technique for functional assessment. Here we describe a method for non-invasive measurement of BSCFB function by using tracer-free MRI to quantify rates of water delivery from arterial blood to ventricular cerebrospinal fluid. Using this method, we record a 36% decrease in BCSFB function in aged mice, compared to a 13% decrease in parenchymal blood flow, itself a leading candidate biomarker of early neurodegenerative processes. We then apply the method to explore the relationship between BCSFB function and ventricular morphology. Finally, we provide proof of application to the human brain. Our findings position the BCSFB as a promising new diagnostic and therapeutic target, the function of which can now be safely quantified using non-invasive MRI.


Subject(s)
Blood/diagnostic imaging , Cerebrospinal Fluid/diagnostic imaging , Magnetic Resonance Imaging , Adult , Aging/physiology , Animals , Arteries/diagnostic imaging , Brain/diagnostic imaging , Choroid Plexus/physiology , Female , Humans , Male , Mice, Inbred C57BL , Organ Size , Reproducibility of Results
2.
Neuroimage ; 159: 334-345, 2017 10 01.
Article in English | MEDLINE | ID: mdl-28797738

ABSTRACT

Alzheimer's disease is connected to a number of other neurodegenerative conditions, known collectively as 'tauopathies', by the presence of aggregated tau protein in the brain. Neuroinflammation and oxidative stress in AD are associated with tau pathology and both the breakdown of axonal sheaths in white matter tracts and excess iron accumulation grey matter brain regions. Despite the identification of myelin and iron concentration as major sources of contrast in quantitative susceptibility maps of the brain, the sensitivity of this technique to tau pathology has yet to be explored. In this study, we perform Quantitative Susceptibility Mapping (QSM) and T2* mapping in the rTg4510, a mouse model of tauopathy, both in vivo and ex vivo. Significant correlations were observed between histological measures of myelin content and both mean regional magnetic susceptibility and T2* values. These results suggest that magnetic susceptibility is sensitive to tissue myelin concentrations across different regions of the brain. Differences in magnetic susceptibility were detected in the corpus callosum, striatum, hippocampus and thalamus of the rTg4510 mice relative to wild type controls. The concentration of neurofibrillary tangles was found to be low to intermediate in these brain regions indicating that QSM may be a useful biomarker for early stage detection of tau pathology in neurodegenerative diseases.


Subject(s)
Alzheimer Disease/pathology , Brain Mapping/methods , Brain/pathology , Tauopathies/pathology , Animals , Female , Image Processing, Computer-Assisted , Mice , Mice, Transgenic , Neurofibrillary Tangles/pathology
3.
Neuroimage ; 125: 739-744, 2016 Jan 15.
Article in English | MEDLINE | ID: mdl-26505297

ABSTRACT

Increased hyperphosphorylated tau and the formation of intracellular neurofibrillary tangles are associated with the loss of neurons and cognitive decline in Alzheimer's disease, and related neurodegenerative conditions. We applied two diffusion models, diffusion tensor imaging (DTI) and neurite orientation dispersion and density imaging (NODDI), to in vivo diffusion magnetic resonance images (dMRI) of a mouse model of human tauopathy (rTg4510) at 8.5months of age. In grey matter regions with the highest degree of tau burden, microstructural indices provided by both NODDI and DTI discriminated the rTg4510 (TG) animals from wild type (WT) controls; however only the neurite density index (NDI) (the volume fraction that comprises axons or dendrites) from the NODDI model correlated with the histological measurements of the levels of hyperphosphorylated tau protein. Reductions in diffusion directionality were observed when implementing both models in the white matter region of the corpus callosum, with lower fractional anisotropy (DTI) and higher orientation dispersion (NODDI) observed in the TG animals. In comparison to DTI, histological measures of tau pathology were more closely correlated with NODDI parameters in this region. This in vivo dMRI study demonstrates that NODDI identifies potential tissue sources contributing to DTI indices and NODDI may provide greater specificity to pathology in Alzheimer's disease.


Subject(s)
Alzheimer Disease/pathology , Brain Mapping/methods , Brain/pathology , Neurites/pathology , Neurofibrillary Tangles/pathology , Animals , Anisotropy , Diffusion Tensor Imaging/methods , Disease Models, Animal , Humans , Image Processing, Computer-Assisted , Immunohistochemistry , Mice , Mice, Transgenic , tau Proteins/metabolism
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