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Mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats

Head injury is a known risk factor for Parkinson’s disease. Disruption in the perivascular clearance of metabolic waste and unwanted proteins is thought to be a contributing factor to disease progression. We hypothesized that repetitive mild head impacts, without evidence of structural brain damage,...

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Autores principales: Cai, Xuezhu, Harding, Ian C, Sadaka, Aymen H, Colarusso, Bradley, Kulkarni, Praveen, Ebong, Eno, Qiao, Ju, O'Hare, Nick R, Ferris, Craig F
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8600963/
https://www.ncbi.nlm.nih.gov/pubmed/34806002
http://dx.doi.org/10.1093/braincomms/fcab265
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author Cai, Xuezhu
Harding, Ian C
Sadaka, Aymen H
Colarusso, Bradley
Kulkarni, Praveen
Ebong, Eno
Qiao, Ju
O'Hare, Nick R
Ferris, Craig F
author_facet Cai, Xuezhu
Harding, Ian C
Sadaka, Aymen H
Colarusso, Bradley
Kulkarni, Praveen
Ebong, Eno
Qiao, Ju
O'Hare, Nick R
Ferris, Craig F
author_sort Cai, Xuezhu
collection PubMed
description Head injury is a known risk factor for Parkinson’s disease. Disruption in the perivascular clearance of metabolic waste and unwanted proteins is thought to be a contributing factor to disease progression. We hypothesized that repetitive mild head impacts, without evidence of structural brain damage, would increase microgliosis and AQP4 expression and depolarization and alter perivascular flow in the midbrain dopaminergic system. Adult male rats were subjected to sham, or two mild head impacts separated by 48 h. Three weeks later, fully awake rats were imaged using dynamic, contrast-enhanced MRI to follow the distribution of intraventricular gadobenate dimeglumine contrast agent. Images were registered to and analysed using a 3D MRI rat atlas providing site-specific data on 171 different brain areas. Following imaging, rats were tested for cognitive function using the Barnes maze assay. Histological analyses of tyrosine hydroxylase, microglia activation and AQP4 expression and polarization were performed on a parallel cohort of head impacted rats at 20 days post insult to coordinate with the time of imaging. There was no change in the global flux of contrast agent between sham and head impacted rats. The midbrain dopaminergic system showed a significant decrease in the influx of contrast agent as compared to sham controls together with a significant increase in microgliosis, AQP4 expression and depolarization. There were no deficits in cognitive function. The histology showed a significant level of neuroinflammation in the midbrain dopaminergic system 3 weeks post mild repetitive head impact but no loss in tyrosine hydroxylase. MRI revealed no structural brain damage emphasizing the potential serious consequences of mild head impacts on sustained brain neuroinflammation in this area critical to the pathophysiology of Parkinson’s.
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spelling pubmed-86009632021-11-18 Mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats Cai, Xuezhu Harding, Ian C Sadaka, Aymen H Colarusso, Bradley Kulkarni, Praveen Ebong, Eno Qiao, Ju O'Hare, Nick R Ferris, Craig F Brain Commun Original Article Head injury is a known risk factor for Parkinson’s disease. Disruption in the perivascular clearance of metabolic waste and unwanted proteins is thought to be a contributing factor to disease progression. We hypothesized that repetitive mild head impacts, without evidence of structural brain damage, would increase microgliosis and AQP4 expression and depolarization and alter perivascular flow in the midbrain dopaminergic system. Adult male rats were subjected to sham, or two mild head impacts separated by 48 h. Three weeks later, fully awake rats were imaged using dynamic, contrast-enhanced MRI to follow the distribution of intraventricular gadobenate dimeglumine contrast agent. Images were registered to and analysed using a 3D MRI rat atlas providing site-specific data on 171 different brain areas. Following imaging, rats were tested for cognitive function using the Barnes maze assay. Histological analyses of tyrosine hydroxylase, microglia activation and AQP4 expression and polarization were performed on a parallel cohort of head impacted rats at 20 days post insult to coordinate with the time of imaging. There was no change in the global flux of contrast agent between sham and head impacted rats. The midbrain dopaminergic system showed a significant decrease in the influx of contrast agent as compared to sham controls together with a significant increase in microgliosis, AQP4 expression and depolarization. There were no deficits in cognitive function. The histology showed a significant level of neuroinflammation in the midbrain dopaminergic system 3 weeks post mild repetitive head impact but no loss in tyrosine hydroxylase. MRI revealed no structural brain damage emphasizing the potential serious consequences of mild head impacts on sustained brain neuroinflammation in this area critical to the pathophysiology of Parkinson’s. Oxford University Press 2021-11-03 /pmc/articles/PMC8600963/ /pubmed/34806002 http://dx.doi.org/10.1093/braincomms/fcab265 Text en © The Author(s) (2021). Published by Oxford University Press on behalf of the Guarantors of Brain. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Cai, Xuezhu
Harding, Ian C
Sadaka, Aymen H
Colarusso, Bradley
Kulkarni, Praveen
Ebong, Eno
Qiao, Ju
O'Hare, Nick R
Ferris, Craig F
Mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats
title Mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats
title_full Mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats
title_fullStr Mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats
title_full_unstemmed Mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats
title_short Mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats
title_sort mild repetitive head impacts alter perivascular flow in the midbrain dopaminergic system in awake rats
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8600963/
https://www.ncbi.nlm.nih.gov/pubmed/34806002
http://dx.doi.org/10.1093/braincomms/fcab265
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