Cargando…

Fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model

AIMS: Fibrinolysis plays a key transition step from haematoma formation to angiogenesis and fracture healing. Low-magnitude high-frequency vibration (LMHFV) is a non-invasive biophysical modality proven to enhance fibrinolytic factors. This study investigates the effect of LMHFV on fibrinolysis in a...

Descripción completa

Detalles Bibliográficos
Autores principales: Wong, Ronald Man Yeung, Choy, Victoria Man Huen, Li, Jie, Li, Tsz Kiu, Chim, Yu Ning, Li, Meng Chen Michelle, Cheng, Jack Chun Yiu, Leung, Kwok-Sui, Chow, Simon Kwoon-Ho, Cheung, Wing Hoi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The British Editorial Society of Bone & Joint Surgery 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7845465/
https://www.ncbi.nlm.nih.gov/pubmed/33448865
http://dx.doi.org/10.1302/2046-3758.101.BJR-2020-0185.R1
_version_ 1783644556004163584
author Wong, Ronald Man Yeung
Choy, Victoria Man Huen
Li, Jie
Li, Tsz Kiu
Chim, Yu Ning
Li, Meng Chen Michelle
Cheng, Jack Chun Yiu
Leung, Kwok-Sui
Chow, Simon Kwoon-Ho
Cheung, Wing Hoi
author_facet Wong, Ronald Man Yeung
Choy, Victoria Man Huen
Li, Jie
Li, Tsz Kiu
Chim, Yu Ning
Li, Meng Chen Michelle
Cheng, Jack Chun Yiu
Leung, Kwok-Sui
Chow, Simon Kwoon-Ho
Cheung, Wing Hoi
author_sort Wong, Ronald Man Yeung
collection PubMed
description AIMS: Fibrinolysis plays a key transition step from haematoma formation to angiogenesis and fracture healing. Low-magnitude high-frequency vibration (LMHFV) is a non-invasive biophysical modality proven to enhance fibrinolytic factors. This study investigates the effect of LMHFV on fibrinolysis in a clinically relevant animal model to accelerate osteoporotic fracture healing. METHODS: A total of 144 rats were randomized to four groups: sham control; sham and LMHFV; ovariectomized (OVX); and ovariectomized and LMHFV (OVX-VT). Fibrinolytic potential was evaluated by quantifying fibrin, tissue plasminogen activator (tPA), and plasminogen activator inhibitor-1 (PAI-1) along with healing outcomes at three days, one week, two weeks, and six weeks post-fracture. RESULTS: All rats achieved healing, and x-ray relative radiopacity for OVX-VT was significantly higher compared to OVX at week 2. Martius Scarlet Blue (MSB) staining revealed a significant decrease of fibrin content in the callus in OVX-VT compared with OVX on day 3 (p = 0.020). Mean tPA from muscle was significantly higher for OVX-VT compared to OVX (p = 0.020) on day 3. Mechanical testing revealed the mean energy to failure was significantly higher for OVX-VT at 37.6 N mm (SD 8.4) and 71.9 N mm (SD 30.7) compared with OVX at 5.76 N mm (SD 7.1) (p = 0.010) and 17.7 N mm (SD 11.5) (p = 0.030) at week 2 and week 6, respectively. CONCLUSION: Metaphyseal fracture healing is enhanced by LMHFV, and one of the important molecular pathways it acts on is fibrinolysis. LMHFV is a promising intervention for osteoporotic metaphyseal fracture healing. The improved mechanical properties, acceleration of fracture healing, and safety justify its role into translation to future clinical studies. Cite this article: Bone Joint Res 2021;10(1):41–50.
format Online
Article
Text
id pubmed-7845465
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The British Editorial Society of Bone & Joint Surgery
record_format MEDLINE/PubMed
spelling pubmed-78454652021-02-01 Fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model Wong, Ronald Man Yeung Choy, Victoria Man Huen Li, Jie Li, Tsz Kiu Chim, Yu Ning Li, Meng Chen Michelle Cheng, Jack Chun Yiu Leung, Kwok-Sui Chow, Simon Kwoon-Ho Cheung, Wing Hoi Bone Joint Res Bone Fracture AIMS: Fibrinolysis plays a key transition step from haematoma formation to angiogenesis and fracture healing. Low-magnitude high-frequency vibration (LMHFV) is a non-invasive biophysical modality proven to enhance fibrinolytic factors. This study investigates the effect of LMHFV on fibrinolysis in a clinically relevant animal model to accelerate osteoporotic fracture healing. METHODS: A total of 144 rats were randomized to four groups: sham control; sham and LMHFV; ovariectomized (OVX); and ovariectomized and LMHFV (OVX-VT). Fibrinolytic potential was evaluated by quantifying fibrin, tissue plasminogen activator (tPA), and plasminogen activator inhibitor-1 (PAI-1) along with healing outcomes at three days, one week, two weeks, and six weeks post-fracture. RESULTS: All rats achieved healing, and x-ray relative radiopacity for OVX-VT was significantly higher compared to OVX at week 2. Martius Scarlet Blue (MSB) staining revealed a significant decrease of fibrin content in the callus in OVX-VT compared with OVX on day 3 (p = 0.020). Mean tPA from muscle was significantly higher for OVX-VT compared to OVX (p = 0.020) on day 3. Mechanical testing revealed the mean energy to failure was significantly higher for OVX-VT at 37.6 N mm (SD 8.4) and 71.9 N mm (SD 30.7) compared with OVX at 5.76 N mm (SD 7.1) (p = 0.010) and 17.7 N mm (SD 11.5) (p = 0.030) at week 2 and week 6, respectively. CONCLUSION: Metaphyseal fracture healing is enhanced by LMHFV, and one of the important molecular pathways it acts on is fibrinolysis. LMHFV is a promising intervention for osteoporotic metaphyseal fracture healing. The improved mechanical properties, acceleration of fracture healing, and safety justify its role into translation to future clinical studies. Cite this article: Bone Joint Res 2021;10(1):41–50. The British Editorial Society of Bone & Joint Surgery 2021-01-15 /pmc/articles/PMC7845465/ /pubmed/33448865 http://dx.doi.org/10.1302/2046-3758.101.BJR-2020-0185.R1 Text en © 2021 Author(s) et al. https://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution Non-Commercial No Derivatives (CC BY-NC-ND 4.0) licence, which permits the copying and redistribution of the work only, and provided the original author and source are credited. See https://creativecommons.org/licenses/by-nc-nd/4.0/.
spellingShingle Bone Fracture
Wong, Ronald Man Yeung
Choy, Victoria Man Huen
Li, Jie
Li, Tsz Kiu
Chim, Yu Ning
Li, Meng Chen Michelle
Cheng, Jack Chun Yiu
Leung, Kwok-Sui
Chow, Simon Kwoon-Ho
Cheung, Wing Hoi
Fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model
title Fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model
title_full Fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model
title_fullStr Fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model
title_full_unstemmed Fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model
title_short Fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model
title_sort fibrinolysis as a target to enhance osteoporotic fracture healing by vibration therapy in a metaphyseal fracture model
topic Bone Fracture
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7845465/
https://www.ncbi.nlm.nih.gov/pubmed/33448865
http://dx.doi.org/10.1302/2046-3758.101.BJR-2020-0185.R1
work_keys_str_mv AT wongronaldmanyeung fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT choyvictoriamanhuen fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT lijie fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT litszkiu fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT chimyuning fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT limengchenmichelle fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT chengjackchunyiu fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT leungkwoksui fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT chowsimonkwoonho fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel
AT cheungwinghoi fibrinolysisasatargettoenhanceosteoporoticfracturehealingbyvibrationtherapyinametaphysealfracturemodel