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Redox Balance Differentially Affects Biomechanics in Permeabilized Single Muscle Fibres—Active and Passive Force Assessments with the Myorobot

An oxidizing redox state imposes unique effects on the contractile properties of muscle. Permeabilized fibres show reduced active force generation in the presence of H(2)O(2). However, our knowledge about the muscle fibre’s elasticity or flexibility is limited due to shortcomings in assessing the pa...

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Autores principales: Michael, Mena, Kovbasyuk, Larisa, Ritter, Paul, Reid, Michael B., Friedrich, Oliver, Haug, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9740451/
https://www.ncbi.nlm.nih.gov/pubmed/36496975
http://dx.doi.org/10.3390/cells11233715
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author Michael, Mena
Kovbasyuk, Larisa
Ritter, Paul
Reid, Michael B.
Friedrich, Oliver
Haug, Michael
author_facet Michael, Mena
Kovbasyuk, Larisa
Ritter, Paul
Reid, Michael B.
Friedrich, Oliver
Haug, Michael
author_sort Michael, Mena
collection PubMed
description An oxidizing redox state imposes unique effects on the contractile properties of muscle. Permeabilized fibres show reduced active force generation in the presence of H(2)O(2). However, our knowledge about the muscle fibre’s elasticity or flexibility is limited due to shortcomings in assessing the passive stress–strain properties, mostly due to technically limited experimental setups. The MyoRobot is an automated biomechatronics platform that is well-capable of not only investigating calcium responsiveness of active contraction but also features precise stretch actuation to examine the passive stress–strain behaviour. Both were carried out in a consecutive recording sequence on the same fibre for 10 single fibres in total. We denote a significantly diminished maximum calcium-saturated force for fibres exposed to ≥500 µM H(2)O(2), with no marked alteration of the pCa50 value. In contrast to active contraction (e.g., maximum isometric force activation), passive restoration stress (force per area) significantly increases for fibres exposed to an oxidizing environment, as they showed a non-linear stress–strain relationship. Our data support the idea that a highly oxidizing environment promotes non-linear fibre stiffening and confirms that our MyoRobot platform is a suitable tool for investigating redox-related changes in muscle biomechanics.
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spelling pubmed-97404512022-12-11 Redox Balance Differentially Affects Biomechanics in Permeabilized Single Muscle Fibres—Active and Passive Force Assessments with the Myorobot Michael, Mena Kovbasyuk, Larisa Ritter, Paul Reid, Michael B. Friedrich, Oliver Haug, Michael Cells Article An oxidizing redox state imposes unique effects on the contractile properties of muscle. Permeabilized fibres show reduced active force generation in the presence of H(2)O(2). However, our knowledge about the muscle fibre’s elasticity or flexibility is limited due to shortcomings in assessing the passive stress–strain properties, mostly due to technically limited experimental setups. The MyoRobot is an automated biomechatronics platform that is well-capable of not only investigating calcium responsiveness of active contraction but also features precise stretch actuation to examine the passive stress–strain behaviour. Both were carried out in a consecutive recording sequence on the same fibre for 10 single fibres in total. We denote a significantly diminished maximum calcium-saturated force for fibres exposed to ≥500 µM H(2)O(2), with no marked alteration of the pCa50 value. In contrast to active contraction (e.g., maximum isometric force activation), passive restoration stress (force per area) significantly increases for fibres exposed to an oxidizing environment, as they showed a non-linear stress–strain relationship. Our data support the idea that a highly oxidizing environment promotes non-linear fibre stiffening and confirms that our MyoRobot platform is a suitable tool for investigating redox-related changes in muscle biomechanics. MDPI 2022-11-22 /pmc/articles/PMC9740451/ /pubmed/36496975 http://dx.doi.org/10.3390/cells11233715 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Michael, Mena
Kovbasyuk, Larisa
Ritter, Paul
Reid, Michael B.
Friedrich, Oliver
Haug, Michael
Redox Balance Differentially Affects Biomechanics in Permeabilized Single Muscle Fibres—Active and Passive Force Assessments with the Myorobot
title Redox Balance Differentially Affects Biomechanics in Permeabilized Single Muscle Fibres—Active and Passive Force Assessments with the Myorobot
title_full Redox Balance Differentially Affects Biomechanics in Permeabilized Single Muscle Fibres—Active and Passive Force Assessments with the Myorobot
title_fullStr Redox Balance Differentially Affects Biomechanics in Permeabilized Single Muscle Fibres—Active and Passive Force Assessments with the Myorobot
title_full_unstemmed Redox Balance Differentially Affects Biomechanics in Permeabilized Single Muscle Fibres—Active and Passive Force Assessments with the Myorobot
title_short Redox Balance Differentially Affects Biomechanics in Permeabilized Single Muscle Fibres—Active and Passive Force Assessments with the Myorobot
title_sort redox balance differentially affects biomechanics in permeabilized single muscle fibres—active and passive force assessments with the myorobot
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9740451/
https://www.ncbi.nlm.nih.gov/pubmed/36496975
http://dx.doi.org/10.3390/cells11233715
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