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Desmin Knock-Out Cardiomyopathy: A Heart on the Verge of Metabolic Crisis

Desmin mutations cause familial and sporadic cardiomyopathies. In addition to perturbing the contractile apparatus, both desmin deficiency and mutated desmin negatively impact mitochondria. Impaired myocardial metabolism secondary to mitochondrial defects could conceivably exacerbate cardiac contrac...

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Autores principales: Elsnicova, Barbara, Hornikova, Daniela, Tibenska, Veronika, Kolar, David, Tlapakova, Tereza, Schmid, Benjamin, Mallek, Markus, Eggers, Britta, Schlötzer-Schrehardt, Ursula, Peeva, Viktoriya, Berwanger, Carolin, Eberhard, Bettina, Durmuş, Hacer, Schultheis, Dorothea, Holtzhausen, Christian, Schork, Karin, Marcus, Katrin, Jordan, Jens, Lücke, Thomas, van der Ven, Peter F. M., Schröder, Rolf, Clemen, Christoph S., Zurmanova, Jitka M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9570457/
https://www.ncbi.nlm.nih.gov/pubmed/36233322
http://dx.doi.org/10.3390/ijms231912020
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author Elsnicova, Barbara
Hornikova, Daniela
Tibenska, Veronika
Kolar, David
Tlapakova, Tereza
Schmid, Benjamin
Mallek, Markus
Eggers, Britta
Schlötzer-Schrehardt, Ursula
Peeva, Viktoriya
Berwanger, Carolin
Eberhard, Bettina
Durmuş, Hacer
Schultheis, Dorothea
Holtzhausen, Christian
Schork, Karin
Marcus, Katrin
Jordan, Jens
Lücke, Thomas
van der Ven, Peter F. M.
Schröder, Rolf
Clemen, Christoph S.
Zurmanova, Jitka M.
author_facet Elsnicova, Barbara
Hornikova, Daniela
Tibenska, Veronika
Kolar, David
Tlapakova, Tereza
Schmid, Benjamin
Mallek, Markus
Eggers, Britta
Schlötzer-Schrehardt, Ursula
Peeva, Viktoriya
Berwanger, Carolin
Eberhard, Bettina
Durmuş, Hacer
Schultheis, Dorothea
Holtzhausen, Christian
Schork, Karin
Marcus, Katrin
Jordan, Jens
Lücke, Thomas
van der Ven, Peter F. M.
Schröder, Rolf
Clemen, Christoph S.
Zurmanova, Jitka M.
author_sort Elsnicova, Barbara
collection PubMed
description Desmin mutations cause familial and sporadic cardiomyopathies. In addition to perturbing the contractile apparatus, both desmin deficiency and mutated desmin negatively impact mitochondria. Impaired myocardial metabolism secondary to mitochondrial defects could conceivably exacerbate cardiac contractile dysfunction. We performed metabolic myocardial phenotyping in left ventricular cardiac muscle tissue in desmin knock-out mice. Our analyses revealed decreased mitochondrial number, ultrastructural mitochondrial defects, and impaired mitochondria-related metabolic pathways including fatty acid transport, activation, and catabolism. Glucose transporter 1 and hexokinase-1 expression and hexokinase activity were increased. While mitochondrial creatine kinase expression was reduced, fetal creatine kinase expression was increased. Proteomic analysis revealed reduced expression of proteins involved in electron transport mainly of complexes I and II, oxidative phosphorylation, citrate cycle, beta-oxidation including auxiliary pathways, amino acid catabolism, and redox reactions and oxidative stress. Thus, desmin deficiency elicits a secondary cardiac mitochondriopathy with severely impaired oxidative phosphorylation and fatty and amino acid metabolism. Increased glucose utilization and fetal creatine kinase upregulation likely portray attempts to maintain myocardial energy supply. It may be prudent to avoid medications worsening mitochondrial function and other metabolic stressors. Therapeutic interventions for mitochondriopathies might also improve the metabolic condition in desmin deficient hearts.
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spelling pubmed-95704572022-10-17 Desmin Knock-Out Cardiomyopathy: A Heart on the Verge of Metabolic Crisis Elsnicova, Barbara Hornikova, Daniela Tibenska, Veronika Kolar, David Tlapakova, Tereza Schmid, Benjamin Mallek, Markus Eggers, Britta Schlötzer-Schrehardt, Ursula Peeva, Viktoriya Berwanger, Carolin Eberhard, Bettina Durmuş, Hacer Schultheis, Dorothea Holtzhausen, Christian Schork, Karin Marcus, Katrin Jordan, Jens Lücke, Thomas van der Ven, Peter F. M. Schröder, Rolf Clemen, Christoph S. Zurmanova, Jitka M. Int J Mol Sci Article Desmin mutations cause familial and sporadic cardiomyopathies. In addition to perturbing the contractile apparatus, both desmin deficiency and mutated desmin negatively impact mitochondria. Impaired myocardial metabolism secondary to mitochondrial defects could conceivably exacerbate cardiac contractile dysfunction. We performed metabolic myocardial phenotyping in left ventricular cardiac muscle tissue in desmin knock-out mice. Our analyses revealed decreased mitochondrial number, ultrastructural mitochondrial defects, and impaired mitochondria-related metabolic pathways including fatty acid transport, activation, and catabolism. Glucose transporter 1 and hexokinase-1 expression and hexokinase activity were increased. While mitochondrial creatine kinase expression was reduced, fetal creatine kinase expression was increased. Proteomic analysis revealed reduced expression of proteins involved in electron transport mainly of complexes I and II, oxidative phosphorylation, citrate cycle, beta-oxidation including auxiliary pathways, amino acid catabolism, and redox reactions and oxidative stress. Thus, desmin deficiency elicits a secondary cardiac mitochondriopathy with severely impaired oxidative phosphorylation and fatty and amino acid metabolism. Increased glucose utilization and fetal creatine kinase upregulation likely portray attempts to maintain myocardial energy supply. It may be prudent to avoid medications worsening mitochondrial function and other metabolic stressors. Therapeutic interventions for mitochondriopathies might also improve the metabolic condition in desmin deficient hearts. MDPI 2022-10-10 /pmc/articles/PMC9570457/ /pubmed/36233322 http://dx.doi.org/10.3390/ijms231912020 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
Elsnicova, Barbara
Hornikova, Daniela
Tibenska, Veronika
Kolar, David
Tlapakova, Tereza
Schmid, Benjamin
Mallek, Markus
Eggers, Britta
Schlötzer-Schrehardt, Ursula
Peeva, Viktoriya
Berwanger, Carolin
Eberhard, Bettina
Durmuş, Hacer
Schultheis, Dorothea
Holtzhausen, Christian
Schork, Karin
Marcus, Katrin
Jordan, Jens
Lücke, Thomas
van der Ven, Peter F. M.
Schröder, Rolf
Clemen, Christoph S.
Zurmanova, Jitka M.
Desmin Knock-Out Cardiomyopathy: A Heart on the Verge of Metabolic Crisis
title Desmin Knock-Out Cardiomyopathy: A Heart on the Verge of Metabolic Crisis
title_full Desmin Knock-Out Cardiomyopathy: A Heart on the Verge of Metabolic Crisis
title_fullStr Desmin Knock-Out Cardiomyopathy: A Heart on the Verge of Metabolic Crisis
title_full_unstemmed Desmin Knock-Out Cardiomyopathy: A Heart on the Verge of Metabolic Crisis
title_short Desmin Knock-Out Cardiomyopathy: A Heart on the Verge of Metabolic Crisis
title_sort desmin knock-out cardiomyopathy: a heart on the verge of metabolic crisis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9570457/
https://www.ncbi.nlm.nih.gov/pubmed/36233322
http://dx.doi.org/10.3390/ijms231912020
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