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Dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading

PURPOSE: Decreased spinal extensor muscle strength in adult spinal deformity (ASD) patients is well-known but poorly understood; thus, this study aimed to investigate the biomechanical and histopathological properties of paraspinal muscles from ASD patients and predict the effect of altered biomecha...

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Autores principales: Malakoutian, Masoud, Noonan, Alex M., Dehghan-Hamani, Iraj, Yamamoto, Shun, Fels, Sidney, Wilson, David, Doroudi, Majid, Schutz, Peter, Lewis, Stephen, Ailon, Tamir, Street, John, Brown, Stephen H. M., Oxland, Thomas R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9288260/
https://www.ncbi.nlm.nih.gov/pubmed/35842491
http://dx.doi.org/10.1007/s00586-022-07292-x
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author Malakoutian, Masoud
Noonan, Alex M.
Dehghan-Hamani, Iraj
Yamamoto, Shun
Fels, Sidney
Wilson, David
Doroudi, Majid
Schutz, Peter
Lewis, Stephen
Ailon, Tamir
Street, John
Brown, Stephen H. M.
Oxland, Thomas R.
author_facet Malakoutian, Masoud
Noonan, Alex M.
Dehghan-Hamani, Iraj
Yamamoto, Shun
Fels, Sidney
Wilson, David
Doroudi, Majid
Schutz, Peter
Lewis, Stephen
Ailon, Tamir
Street, John
Brown, Stephen H. M.
Oxland, Thomas R.
author_sort Malakoutian, Masoud
collection PubMed
description PURPOSE: Decreased spinal extensor muscle strength in adult spinal deformity (ASD) patients is well-known but poorly understood; thus, this study aimed to investigate the biomechanical and histopathological properties of paraspinal muscles from ASD patients and predict the effect of altered biomechanical properties on spine loading. METHODS: 68 muscle biopsies were collected from nine ASD patients at L4–L5 (bilateral multifidus and longissimus sampled). The biopsies were tested for muscle fiber and fiber bundle biomechanical properties and histopathology. The small sample size (due to COVID-19) precluded formal statistical analysis, but the properties were compared to literature data. Changes in spinal loading due to the measured properties were predicted by a lumbar spine musculoskeletal model. RESULTS: Single fiber passive elastic moduli were similar to literature values, but in contrast, the fiber bundle moduli exhibited a wide range beyond literature values, with 22% of 171 fiber bundles exhibiting very high elastic moduli, up to 20 times greater. Active contractile specific force was consistently less than literature, with notably 24% of samples exhibiting no contractile ability. Histological analysis of 28 biopsies revealed frequent fibro-fatty replacement with a range of muscle fiber abnormalities. Biomechanical modelling predicted that high muscle stiffness could increase the compressive loads in the spine by over 500%, particularly in flexed postures. DISCUSSION: The histopathological observations suggest diverse mechanisms of potential functional impairment. The large variations observed in muscle biomechanical properties can have a dramatic influence on spinal forces. These early findings highlight the potential key role of the paraspinal muscle in ASD.
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spelling pubmed-92882602022-07-18 Dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading Malakoutian, Masoud Noonan, Alex M. Dehghan-Hamani, Iraj Yamamoto, Shun Fels, Sidney Wilson, David Doroudi, Majid Schutz, Peter Lewis, Stephen Ailon, Tamir Street, John Brown, Stephen H. M. Oxland, Thomas R. Eur Spine J Original Article PURPOSE: Decreased spinal extensor muscle strength in adult spinal deformity (ASD) patients is well-known but poorly understood; thus, this study aimed to investigate the biomechanical and histopathological properties of paraspinal muscles from ASD patients and predict the effect of altered biomechanical properties on spine loading. METHODS: 68 muscle biopsies were collected from nine ASD patients at L4–L5 (bilateral multifidus and longissimus sampled). The biopsies were tested for muscle fiber and fiber bundle biomechanical properties and histopathology. The small sample size (due to COVID-19) precluded formal statistical analysis, but the properties were compared to literature data. Changes in spinal loading due to the measured properties were predicted by a lumbar spine musculoskeletal model. RESULTS: Single fiber passive elastic moduli were similar to literature values, but in contrast, the fiber bundle moduli exhibited a wide range beyond literature values, with 22% of 171 fiber bundles exhibiting very high elastic moduli, up to 20 times greater. Active contractile specific force was consistently less than literature, with notably 24% of samples exhibiting no contractile ability. Histological analysis of 28 biopsies revealed frequent fibro-fatty replacement with a range of muscle fiber abnormalities. Biomechanical modelling predicted that high muscle stiffness could increase the compressive loads in the spine by over 500%, particularly in flexed postures. DISCUSSION: The histopathological observations suggest diverse mechanisms of potential functional impairment. The large variations observed in muscle biomechanical properties can have a dramatic influence on spinal forces. These early findings highlight the potential key role of the paraspinal muscle in ASD. Springer Berlin Heidelberg 2022-07-16 2022-09 /pmc/articles/PMC9288260/ /pubmed/35842491 http://dx.doi.org/10.1007/s00586-022-07292-x Text en © The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature 2022 This article is made available via the PMC Open Access Subset for unrestricted research re-use and secondary analysis in any form or by any means with acknowledgement of the original source. These permissions are granted for the duration of the World Health Organization (WHO) declaration of COVID-19 as a global pandemic.
spellingShingle Original Article
Malakoutian, Masoud
Noonan, Alex M.
Dehghan-Hamani, Iraj
Yamamoto, Shun
Fels, Sidney
Wilson, David
Doroudi, Majid
Schutz, Peter
Lewis, Stephen
Ailon, Tamir
Street, John
Brown, Stephen H. M.
Oxland, Thomas R.
Dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading
title Dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading
title_full Dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading
title_fullStr Dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading
title_full_unstemmed Dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading
title_short Dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading
title_sort dysfunctional paraspinal muscles in adult spinal deformity patients lead to increased spinal loading
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9288260/
https://www.ncbi.nlm.nih.gov/pubmed/35842491
http://dx.doi.org/10.1007/s00586-022-07292-x
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