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Rbm20(ΔRRM) Mice, Expressing a Titin Isoform with Lower Stiffness, Are Protected from Mechanical Ventilation-Induced Diaphragm Weakness

Diaphragm weakness frequently develops in mechanically ventilated critically ill patients and is associated with increased morbidity, including ventilator weaning failure, mortality, and health care costs. The mechanisms underlying diaphragm weakness are incompletely understood but may include the e...

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Autores principales: van den Berg, Marloes, Peters, Eva L., van der Pijl, Robbert J., Shen, Shengyi, Heunks, Leo M. A., Granzier, Henk L., Ottenheijm, Coen A. C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9779751/
https://www.ncbi.nlm.nih.gov/pubmed/36555335
http://dx.doi.org/10.3390/ijms232415689
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author van den Berg, Marloes
Peters, Eva L.
van der Pijl, Robbert J.
Shen, Shengyi
Heunks, Leo M. A.
Granzier, Henk L.
Ottenheijm, Coen A. C.
author_facet van den Berg, Marloes
Peters, Eva L.
van der Pijl, Robbert J.
Shen, Shengyi
Heunks, Leo M. A.
Granzier, Henk L.
Ottenheijm, Coen A. C.
author_sort van den Berg, Marloes
collection PubMed
description Diaphragm weakness frequently develops in mechanically ventilated critically ill patients and is associated with increased morbidity, including ventilator weaning failure, mortality, and health care costs. The mechanisms underlying diaphragm weakness are incompletely understood but may include the elastic properties of titin, a giant protein whose layout in the muscle’s sarcomeres makes it an ideal candidate to sense ventilation-induced diaphragm unloading, resulting in downstream signaling through titin-binding proteins. In the current study, we investigated whether modulating titin stiffness affects the development of diaphragm weakness during mechanical ventilation. To this end, we ventilated genetically engineered mice with reduced titin stiffness (Rbm20(ΔRRM)), and robust (Ttn(ΔIAjxn)) or severely (Ttn(Δ112–158)) increased titin stiffness for 8 h, and assessed diaphragm contractility and protein expression of titin-binding proteins. Mechanical ventilation reduced the maximum active tension of the diaphragm in WT, Ttn(ΔIAjxn) and Ttn(Δ112–158) mice. However, in Rbm20(ΔRRM) mice maximum active tension was preserved after ventilation. Analyses of titin binding proteins suggest that muscle ankyrin repeat proteins (MARPs) 1 and 2 may play a role in the adaptation of the diaphragm to mechanical ventilation, and the preservation of diaphragm contractility in Rbm20(ΔRRM) mice. Thus, Rbm20(ΔRRM) mice, expressing titin isoforms with lower stiffness, are protected from mechanical ventilation-induced diaphragm weakness, suggesting that titin elasticity may modulate the diaphragm’s response to unloading during mechanical ventilation.
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spelling pubmed-97797512022-12-23 Rbm20(ΔRRM) Mice, Expressing a Titin Isoform with Lower Stiffness, Are Protected from Mechanical Ventilation-Induced Diaphragm Weakness van den Berg, Marloes Peters, Eva L. van der Pijl, Robbert J. Shen, Shengyi Heunks, Leo M. A. Granzier, Henk L. Ottenheijm, Coen A. C. Int J Mol Sci Article Diaphragm weakness frequently develops in mechanically ventilated critically ill patients and is associated with increased morbidity, including ventilator weaning failure, mortality, and health care costs. The mechanisms underlying diaphragm weakness are incompletely understood but may include the elastic properties of titin, a giant protein whose layout in the muscle’s sarcomeres makes it an ideal candidate to sense ventilation-induced diaphragm unloading, resulting in downstream signaling through titin-binding proteins. In the current study, we investigated whether modulating titin stiffness affects the development of diaphragm weakness during mechanical ventilation. To this end, we ventilated genetically engineered mice with reduced titin stiffness (Rbm20(ΔRRM)), and robust (Ttn(ΔIAjxn)) or severely (Ttn(Δ112–158)) increased titin stiffness for 8 h, and assessed diaphragm contractility and protein expression of titin-binding proteins. Mechanical ventilation reduced the maximum active tension of the diaphragm in WT, Ttn(ΔIAjxn) and Ttn(Δ112–158) mice. However, in Rbm20(ΔRRM) mice maximum active tension was preserved after ventilation. Analyses of titin binding proteins suggest that muscle ankyrin repeat proteins (MARPs) 1 and 2 may play a role in the adaptation of the diaphragm to mechanical ventilation, and the preservation of diaphragm contractility in Rbm20(ΔRRM) mice. Thus, Rbm20(ΔRRM) mice, expressing titin isoforms with lower stiffness, are protected from mechanical ventilation-induced diaphragm weakness, suggesting that titin elasticity may modulate the diaphragm’s response to unloading during mechanical ventilation. MDPI 2022-12-10 /pmc/articles/PMC9779751/ /pubmed/36555335 http://dx.doi.org/10.3390/ijms232415689 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
van den Berg, Marloes
Peters, Eva L.
van der Pijl, Robbert J.
Shen, Shengyi
Heunks, Leo M. A.
Granzier, Henk L.
Ottenheijm, Coen A. C.
Rbm20(ΔRRM) Mice, Expressing a Titin Isoform with Lower Stiffness, Are Protected from Mechanical Ventilation-Induced Diaphragm Weakness
title Rbm20(ΔRRM) Mice, Expressing a Titin Isoform with Lower Stiffness, Are Protected from Mechanical Ventilation-Induced Diaphragm Weakness
title_full Rbm20(ΔRRM) Mice, Expressing a Titin Isoform with Lower Stiffness, Are Protected from Mechanical Ventilation-Induced Diaphragm Weakness
title_fullStr Rbm20(ΔRRM) Mice, Expressing a Titin Isoform with Lower Stiffness, Are Protected from Mechanical Ventilation-Induced Diaphragm Weakness
title_full_unstemmed Rbm20(ΔRRM) Mice, Expressing a Titin Isoform with Lower Stiffness, Are Protected from Mechanical Ventilation-Induced Diaphragm Weakness
title_short Rbm20(ΔRRM) Mice, Expressing a Titin Isoform with Lower Stiffness, Are Protected from Mechanical Ventilation-Induced Diaphragm Weakness
title_sort rbm20(δrrm) mice, expressing a titin isoform with lower stiffness, are protected from mechanical ventilation-induced diaphragm weakness
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9779751/
https://www.ncbi.nlm.nih.gov/pubmed/36555335
http://dx.doi.org/10.3390/ijms232415689
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