Cargando…
Modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional MRI study
Modified constraint-induced movement therapy (mCIMT) has shown beneficial effects on motor function improvement after brain injury, but the exact mechanism remains unclear. In this study, amplitude of low frequency fluctuation (ALFF) metrics measured by resting-state functional magnetic resonance im...
Autores principales: | , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Wolters Kluwer - Medknow
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9396520/ https://www.ncbi.nlm.nih.gov/pubmed/35900438 http://dx.doi.org/10.4103/1673-5374.344832 |
_version_ | 1784771944499904512 |
---|---|
author | Sun, Cheng-Cheng Zhang, Yu-Wen Xing, Xiang-Xin Yang, Qi Cao, Ling-Yun Cheng, Yu-Feng Zhao, Jing-Wang Zhou, Shao-Ting Cheng, Dan-Dan Zhang, Ye Hua, Xu-Yun Wang, He Xu, Dong-Sheng |
author_facet | Sun, Cheng-Cheng Zhang, Yu-Wen Xing, Xiang-Xin Yang, Qi Cao, Ling-Yun Cheng, Yu-Feng Zhao, Jing-Wang Zhou, Shao-Ting Cheng, Dan-Dan Zhang, Ye Hua, Xu-Yun Wang, He Xu, Dong-Sheng |
author_sort | Sun, Cheng-Cheng |
collection | PubMed |
description | Modified constraint-induced movement therapy (mCIMT) has shown beneficial effects on motor function improvement after brain injury, but the exact mechanism remains unclear. In this study, amplitude of low frequency fluctuation (ALFF) metrics measured by resting-state functional magnetic resonance imaging was obtained to investigate the efficacy and mechanism of mCIMT in a control cortical impact (CCI) rat model simulating traumatic brain injury. At 3 days after control cortical impact model establishment, we found that the mean ALFF (mALFF) signals were decreased in the left motor cortex, somatosensory cortex, insula cortex and the right motor cortex, and were increased in the right corpus callosum. After 3 weeks of an 8-hour daily mCIMT treatment, the mALFF values were significantly increased in the bilateral hemispheres compared with those at 3 days postoperatively. The mALFF signal values of left corpus callosum, left somatosensory cortex, right medial prefrontal cortex, right motor cortex, left postero dorsal hippocampus, left motor cortex, right corpus callosum, and right somatosensory cortex were increased in the mCIMT group compared with the control cortical impact group. Finally, we identified brain regions with significantly decreased mALFF values at 3 days postoperatively. Pearson correlation coefficients with the right forelimb sliding score indicated that the improvement in motor function of the affected upper limb was associated with an increase in mALFF values in these brain regions. Our findings suggest that functional cortical plasticity changes after brain injury, and that mCIMT is an effective method to improve affected upper limb motor function by promoting bilateral hemispheric cortical remodeling. mALFF values correlate with behavioral changes and can potentially be used as biomarkers to assess dynamic cortical plasticity after traumatic brain injury. |
format | Online Article Text |
id | pubmed-9396520 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Wolters Kluwer - Medknow |
record_format | MEDLINE/PubMed |
spelling | pubmed-93965202022-08-24 Modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional MRI study Sun, Cheng-Cheng Zhang, Yu-Wen Xing, Xiang-Xin Yang, Qi Cao, Ling-Yun Cheng, Yu-Feng Zhao, Jing-Wang Zhou, Shao-Ting Cheng, Dan-Dan Zhang, Ye Hua, Xu-Yun Wang, He Xu, Dong-Sheng Neural Regen Res Research Article Modified constraint-induced movement therapy (mCIMT) has shown beneficial effects on motor function improvement after brain injury, but the exact mechanism remains unclear. In this study, amplitude of low frequency fluctuation (ALFF) metrics measured by resting-state functional magnetic resonance imaging was obtained to investigate the efficacy and mechanism of mCIMT in a control cortical impact (CCI) rat model simulating traumatic brain injury. At 3 days after control cortical impact model establishment, we found that the mean ALFF (mALFF) signals were decreased in the left motor cortex, somatosensory cortex, insula cortex and the right motor cortex, and were increased in the right corpus callosum. After 3 weeks of an 8-hour daily mCIMT treatment, the mALFF values were significantly increased in the bilateral hemispheres compared with those at 3 days postoperatively. The mALFF signal values of left corpus callosum, left somatosensory cortex, right medial prefrontal cortex, right motor cortex, left postero dorsal hippocampus, left motor cortex, right corpus callosum, and right somatosensory cortex were increased in the mCIMT group compared with the control cortical impact group. Finally, we identified brain regions with significantly decreased mALFF values at 3 days postoperatively. Pearson correlation coefficients with the right forelimb sliding score indicated that the improvement in motor function of the affected upper limb was associated with an increase in mALFF values in these brain regions. Our findings suggest that functional cortical plasticity changes after brain injury, and that mCIMT is an effective method to improve affected upper limb motor function by promoting bilateral hemispheric cortical remodeling. mALFF values correlate with behavioral changes and can potentially be used as biomarkers to assess dynamic cortical plasticity after traumatic brain injury. Wolters Kluwer - Medknow 2022-06-02 /pmc/articles/PMC9396520/ /pubmed/35900438 http://dx.doi.org/10.4103/1673-5374.344832 Text en Copyright: © Neural Regeneration Research https://creativecommons.org/licenses/by-nc-sa/4.0/This is an open access journal, and articles are distributed under the terms of the Creative Commons AttributionNonCommercial-ShareAlike 4.0 License, which allows others to remix, tweak, and build upon the work non-commercially, as long as appropriate credit is given and the new creations are licensed under the identical terms. |
spellingShingle | Research Article Sun, Cheng-Cheng Zhang, Yu-Wen Xing, Xiang-Xin Yang, Qi Cao, Ling-Yun Cheng, Yu-Feng Zhao, Jing-Wang Zhou, Shao-Ting Cheng, Dan-Dan Zhang, Ye Hua, Xu-Yun Wang, He Xu, Dong-Sheng Modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional MRI study |
title | Modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional MRI study |
title_full | Modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional MRI study |
title_fullStr | Modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional MRI study |
title_full_unstemmed | Modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional MRI study |
title_short | Modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional MRI study |
title_sort | modified constraint-induced movement therapy enhances cortical plasticity in a rat model of traumatic brain injury: a resting-state functional mri study |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9396520/ https://www.ncbi.nlm.nih.gov/pubmed/35900438 http://dx.doi.org/10.4103/1673-5374.344832 |
work_keys_str_mv | AT sunchengcheng modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT zhangyuwen modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT xingxiangxin modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT yangqi modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT caolingyun modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT chengyufeng modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT zhaojingwang modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT zhoushaoting modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT chengdandan modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT zhangye modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT huaxuyun modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT wanghe modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy AT xudongsheng modifiedconstraintinducedmovementtherapyenhancescorticalplasticityinaratmodeloftraumaticbraininjuryarestingstatefunctionalmristudy |