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Diffusion tensor-MRI detects exercise-induced neuroplasticity in the hippocampal microstructure in mice

BACKGROUND: Despite considerable research on exercise-induced neuroplasticity in the brain, a major ongoing challenge in translating findings from animal studies to humans is that clinical and preclinical settings employ very different techniques. OBJECTIVE: Here we aim to bridge this divide by usin...

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Autores principales: Islam, Mohammad R., Luo, Renhao, Valaris, Sophia, Haley, Erin B., Takase, Hajime, Chen, Yinching Iris, Dickerson, Bradford C., Schon, Karin, Arai, Ken, Nguyen, Christopher T., Wrann, Christiane D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: IOS Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7685674/
https://www.ncbi.nlm.nih.gov/pubmed/33282678
http://dx.doi.org/10.3233/BPL-190090
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author Islam, Mohammad R.
Luo, Renhao
Valaris, Sophia
Haley, Erin B.
Takase, Hajime
Chen, Yinching Iris
Dickerson, Bradford C.
Schon, Karin
Arai, Ken
Nguyen, Christopher T.
Wrann, Christiane D.
author_facet Islam, Mohammad R.
Luo, Renhao
Valaris, Sophia
Haley, Erin B.
Takase, Hajime
Chen, Yinching Iris
Dickerson, Bradford C.
Schon, Karin
Arai, Ken
Nguyen, Christopher T.
Wrann, Christiane D.
author_sort Islam, Mohammad R.
collection PubMed
description BACKGROUND: Despite considerable research on exercise-induced neuroplasticity in the brain, a major ongoing challenge in translating findings from animal studies to humans is that clinical and preclinical settings employ very different techniques. OBJECTIVE: Here we aim to bridge this divide by using diffusion tensor imaging MRI (DTI), an advanced imaging technique commonly applied in human studies, in a longitudinal exercise study with mice. METHODS: Wild-type mice were exercised using voluntary free-wheel running, and MRI scans were at baseline and after four weeks and nine weeks of running. RESULTS: Both hippocampal volume and fractional anisotropy, a surrogate for microstructural directionality, significantly increased with exercise. In addition, exercise levels correlated with effect size. Histological analysis showed more PDGFRα+ oligodendrocyte precursor cells in the corpus callosum of running mice. CONCLUSIONS: These results provide compelling in vivo support for the concept that similar adaptive changes occur in the brains of mice and humans in response to exercise.
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spelling pubmed-76856742020-12-03 Diffusion tensor-MRI detects exercise-induced neuroplasticity in the hippocampal microstructure in mice Islam, Mohammad R. Luo, Renhao Valaris, Sophia Haley, Erin B. Takase, Hajime Chen, Yinching Iris Dickerson, Bradford C. Schon, Karin Arai, Ken Nguyen, Christopher T. Wrann, Christiane D. Brain Plast Research Report BACKGROUND: Despite considerable research on exercise-induced neuroplasticity in the brain, a major ongoing challenge in translating findings from animal studies to humans is that clinical and preclinical settings employ very different techniques. OBJECTIVE: Here we aim to bridge this divide by using diffusion tensor imaging MRI (DTI), an advanced imaging technique commonly applied in human studies, in a longitudinal exercise study with mice. METHODS: Wild-type mice were exercised using voluntary free-wheel running, and MRI scans were at baseline and after four weeks and nine weeks of running. RESULTS: Both hippocampal volume and fractional anisotropy, a surrogate for microstructural directionality, significantly increased with exercise. In addition, exercise levels correlated with effect size. Histological analysis showed more PDGFRα+ oligodendrocyte precursor cells in the corpus callosum of running mice. CONCLUSIONS: These results provide compelling in vivo support for the concept that similar adaptive changes occur in the brains of mice and humans in response to exercise. IOS Press 2020-10-01 /pmc/articles/PMC7685674/ /pubmed/33282678 http://dx.doi.org/10.3233/BPL-190090 Text en © 2020 – IOS Press and the authors. All rights reserved https://creativecommons.org/licenses/by-nc/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution Non-Commercial (CC BY-NC 4.0) License (https://creativecommons.org/licenses/by-nc/4.0/) , which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Report
Islam, Mohammad R.
Luo, Renhao
Valaris, Sophia
Haley, Erin B.
Takase, Hajime
Chen, Yinching Iris
Dickerson, Bradford C.
Schon, Karin
Arai, Ken
Nguyen, Christopher T.
Wrann, Christiane D.
Diffusion tensor-MRI detects exercise-induced neuroplasticity in the hippocampal microstructure in mice
title Diffusion tensor-MRI detects exercise-induced neuroplasticity in the hippocampal microstructure in mice
title_full Diffusion tensor-MRI detects exercise-induced neuroplasticity in the hippocampal microstructure in mice
title_fullStr Diffusion tensor-MRI detects exercise-induced neuroplasticity in the hippocampal microstructure in mice
title_full_unstemmed Diffusion tensor-MRI detects exercise-induced neuroplasticity in the hippocampal microstructure in mice
title_short Diffusion tensor-MRI detects exercise-induced neuroplasticity in the hippocampal microstructure in mice
title_sort diffusion tensor-mri detects exercise-induced neuroplasticity in the hippocampal microstructure in mice
topic Research Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7685674/
https://www.ncbi.nlm.nih.gov/pubmed/33282678
http://dx.doi.org/10.3233/BPL-190090
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