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1.
Prog Neurobiol ; 189: 101789, 2020 06.
Article in English | MEDLINE | ID: mdl-32198061

ABSTRACT

While research has accelerated the development of new treatments for pediatric neurodegenerative disorders, the ability to demonstrate the long-term efficacy of these therapies has been hindered by the lack of convincing, noninvasive methods for tracking disease progression both in animal models and in human clinical trials. Here, we unveil a new translational platform for tracking disease progression in an animal model of a pediatric neurodegenerative disorder, CLN6-Batten disease. Instead of looking at a handful of parameters or a single "needle in a haystack", we embrace the idea that disease progression, in mice and patients alike, is a diverse phenomenon best characterized by a combination of relevant biomarkers. Thus, we employed a multi-modal quantitative approach where 144 parameters were longitudinally monitored to allow for individual variability. We use a range of noninvasive neuroimaging modalities and kinematic gait analysis, all methods that parallel those commonly used in the clinic, followed by a powerful statistical platform to identify key progressive anatomical and metabolic changes that correlate strongly with the progression of pathological and behavioral deficits. This innovative, highly sensitive platform can be used as a powerful tool for preclinical studies on neurodegenerative diseases, and provides proof-of-principle for use as a potentially translatable tool for clinicians in the future.


Subject(s)
Biomarkers , Brain/diagnostic imaging , Disease Progression , Gait Disorders, Neurologic/diagnosis , Neuronal Ceroid-Lipofuscinoses/diagnosis , Animals , Biomechanical Phenomena , Brain/metabolism , Brain/pathology , Diffusion Tensor Imaging , Disease Models, Animal , Female , Gait Disorders, Neurologic/etiology , Gait Disorders, Neurologic/pathology , Gait Disorders, Neurologic/physiopathology , Longitudinal Studies , Male , Membrane Proteins , Mice , Mice, Transgenic , Neuronal Ceroid-Lipofuscinoses/complications , Neuronal Ceroid-Lipofuscinoses/pathology , Neuronal Ceroid-Lipofuscinoses/physiopathology , Positron-Emission Tomography , Principal Component Analysis
2.
Front Immunol ; 11: 559810, 2020.
Article in English | MEDLINE | ID: mdl-33584640

ABSTRACT

Rationale: The recently discovered meningeal lymphatic vessels (mLVs) have been proposed to be the missing link between the immune and the central nervous system. The role of mLVs in modulating the neuro-immune response following a traumatic brain injury (TBI), however, has not been analyzed. Parenchymal T lymphocyte infiltration has been previously reported as part of secondary events after TBI, suggestive of an adaptive neuro-immune response. The phenotype of these cells has remained mostly uncharacterized. In this study, we identified subpopulations of T cells infiltrating the perilesional areas 30 days post-injury (an early-chronic time point). Furthermore, we analyzed how the lack of mLVs affects the magnitude and the type of T cell response in the brain after TBI. Methods: TBI was induced in K14-VEGFR3-Ig transgenic (TG) mice or in their littermate controls (WT; wild type), applying a controlled cortical impact (CCI). One month after TBI, T cells were isolated from cortical areas ipsilateral or contralateral to the trauma and from the spleen, then characterized by flow cytometry. Lesion size in each animal was evaluated by MRI. Results: In both WT and TG-CCI mice, we found a prominent T cell infiltration in the brain confined to the perilesional cortex and hippocampus. The majority of infiltrating T cells were cytotoxic CD8+ expressing a CD44hiCD69+ phenotype, suggesting that these are effector resident memory T cells. K14-VEGFR3-Ig mice showed a significant reduction of infiltrating CD4+ T lymphocytes, suggesting that mLVs could be involved in establishing a proper neuro-immune response. Extension of the lesion (measured as lesion volume from MRI) did not differ between the genotypes. Finally, TBI did not relate to alterations in peripheral circulating T cells, as assessed one month after injury. Conclusions: Our results are consistent with the hypothesis that mLVs are involved in the neuro-immune response after TBI. We also defined the resident memory CD8+ T cells as one of the main population activated within the brain after a traumatic injury.


Subject(s)
Adaptive Immunity , Brain Injuries, Traumatic/etiology , Brain Injuries, Traumatic/metabolism , Central Nervous System/immunology , Central Nervous System/metabolism , Lymphatic System/metabolism , Lymphatic System/physiopathology , Neuroimmunomodulation , Animals , Biomarkers , Brain Injuries, Traumatic/diagnosis , CD8-Positive T-Lymphocytes/immunology , CD8-Positive T-Lymphocytes/metabolism , Central Nervous System/pathology , Cytokines/metabolism , Disease Models, Animal , Immunologic Memory , Immunophenotyping , Magnetic Resonance Imaging/methods , Mice , Mice, Transgenic , T-Lymphocyte Subsets/immunology , T-Lymphocyte Subsets/metabolism , Vascular Endothelial Growth Factor Receptor-3/deficiency
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