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Research on skeletal muscle impact injury using a new rat model from a bioimpact machine

Introduction: Skeletal muscle impact injury occurs frequently during sports, falls, and road traffic accidents. From the reported studies on skeletal muscle injury, it is difficult to determine the injury parameters. Therefore, we developed a new model of gastrocnemius impact injury in rats with a b...

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Autores principales: Liu, Jun, Liao, Zhikang, Wang, Jingkun, Xiang, Hongyi, Zhu, Xiyan, Che, Xingping, Tang, Yuqian, Xie, Jingru, Mao, Chengyi, Zhao, Hui, Xiong, Yan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9701740/
https://www.ncbi.nlm.nih.gov/pubmed/36452210
http://dx.doi.org/10.3389/fbioe.2022.1055668
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author Liu, Jun
Liao, Zhikang
Wang, Jingkun
Xiang, Hongyi
Zhu, Xiyan
Che, Xingping
Tang, Yuqian
Xie, Jingru
Mao, Chengyi
Zhao, Hui
Xiong, Yan
author_facet Liu, Jun
Liao, Zhikang
Wang, Jingkun
Xiang, Hongyi
Zhu, Xiyan
Che, Xingping
Tang, Yuqian
Xie, Jingru
Mao, Chengyi
Zhao, Hui
Xiong, Yan
author_sort Liu, Jun
collection PubMed
description Introduction: Skeletal muscle impact injury occurs frequently during sports, falls, and road traffic accidents. From the reported studies on skeletal muscle injury, it is difficult to determine the injury parameters. Therefore, we developed a new model of gastrocnemius impact injury in rats with a bioimpact machine, with which the experimental operation could be conducted in feasibility from the recorded parameters. Through this novel model, we study the skeletal muscle impact injury mechanisms by combining temporal and spatial variation. Methods: The gastrocnemius of anesthetized rats was injured by a small pneumatic-driven bioimpact machine; the moving speed and impact force were determined, and the whole impact process was captured by a high-speed camera. We observed the general condition of rats and measured the changes in injured calf circumference, evaluating calf injuries using MRI, gait analysis system, and pathology at different times after the injury. Results: The gastrocnemius was injured at an impact speed of 6.63 m/s ± 0.25 m/s and a peak force of 1,556.80 N ± 110.79 N. The gait analysis system showed that the footprint area of the RH limb decreased significantly on the first day and then increased. The calf circumference of the injured limb increased rapidly on the first day post-injury and then decreased in the next few days. MRI showed edema of subcutaneous and gastrocnemius on the first day, and the area of edema decreased over the following days. HE staining showed edema of cells, extensive hyperemia of blood vessels, and infiltration of inflammatory cells on the first day. Cell edema was alleviated day by day, but inflammatory cell infiltration was the most on the third day. TEM showed that the sarcoplasmic reticulum was dilated on the first day, the mitochondrial vacuolation was obvious on the second day, and the glycogen deposition was prominent on the fifth day. Conclusion: In our experiment, we developed a new and effective experimental animal model that was feasible to operate; the injured area of the gastrocnemius began to show “map-like” changes in the light microscope on the third day. Meanwhile, the gastrocnemius showed a trend of “edema-mitochondrial vacuolation-inflammatory cell aggregation” after impact injury.
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spelling pubmed-97017402022-11-29 Research on skeletal muscle impact injury using a new rat model from a bioimpact machine Liu, Jun Liao, Zhikang Wang, Jingkun Xiang, Hongyi Zhu, Xiyan Che, Xingping Tang, Yuqian Xie, Jingru Mao, Chengyi Zhao, Hui Xiong, Yan Front Bioeng Biotechnol Bioengineering and Biotechnology Introduction: Skeletal muscle impact injury occurs frequently during sports, falls, and road traffic accidents. From the reported studies on skeletal muscle injury, it is difficult to determine the injury parameters. Therefore, we developed a new model of gastrocnemius impact injury in rats with a bioimpact machine, with which the experimental operation could be conducted in feasibility from the recorded parameters. Through this novel model, we study the skeletal muscle impact injury mechanisms by combining temporal and spatial variation. Methods: The gastrocnemius of anesthetized rats was injured by a small pneumatic-driven bioimpact machine; the moving speed and impact force were determined, and the whole impact process was captured by a high-speed camera. We observed the general condition of rats and measured the changes in injured calf circumference, evaluating calf injuries using MRI, gait analysis system, and pathology at different times after the injury. Results: The gastrocnemius was injured at an impact speed of 6.63 m/s ± 0.25 m/s and a peak force of 1,556.80 N ± 110.79 N. The gait analysis system showed that the footprint area of the RH limb decreased significantly on the first day and then increased. The calf circumference of the injured limb increased rapidly on the first day post-injury and then decreased in the next few days. MRI showed edema of subcutaneous and gastrocnemius on the first day, and the area of edema decreased over the following days. HE staining showed edema of cells, extensive hyperemia of blood vessels, and infiltration of inflammatory cells on the first day. Cell edema was alleviated day by day, but inflammatory cell infiltration was the most on the third day. TEM showed that the sarcoplasmic reticulum was dilated on the first day, the mitochondrial vacuolation was obvious on the second day, and the glycogen deposition was prominent on the fifth day. Conclusion: In our experiment, we developed a new and effective experimental animal model that was feasible to operate; the injured area of the gastrocnemius began to show “map-like” changes in the light microscope on the third day. Meanwhile, the gastrocnemius showed a trend of “edema-mitochondrial vacuolation-inflammatory cell aggregation” after impact injury. Frontiers Media S.A. 2022-11-14 /pmc/articles/PMC9701740/ /pubmed/36452210 http://dx.doi.org/10.3389/fbioe.2022.1055668 Text en Copyright © 2022 Liu, Liao, Wang, Xiang, Zhu, Che, Tang, Xie, Mao, Zhao and Xiong. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Bioengineering and Biotechnology
Liu, Jun
Liao, Zhikang
Wang, Jingkun
Xiang, Hongyi
Zhu, Xiyan
Che, Xingping
Tang, Yuqian
Xie, Jingru
Mao, Chengyi
Zhao, Hui
Xiong, Yan
Research on skeletal muscle impact injury using a new rat model from a bioimpact machine
title Research on skeletal muscle impact injury using a new rat model from a bioimpact machine
title_full Research on skeletal muscle impact injury using a new rat model from a bioimpact machine
title_fullStr Research on skeletal muscle impact injury using a new rat model from a bioimpact machine
title_full_unstemmed Research on skeletal muscle impact injury using a new rat model from a bioimpact machine
title_short Research on skeletal muscle impact injury using a new rat model from a bioimpact machine
title_sort research on skeletal muscle impact injury using a new rat model from a bioimpact machine
topic Bioengineering and Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9701740/
https://www.ncbi.nlm.nih.gov/pubmed/36452210
http://dx.doi.org/10.3389/fbioe.2022.1055668
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