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Desmin Cytoskeleton Linked to Muscle Mitochondrial Distribution and Respiratory Function

Ultrastructural studies have previously suggested potential association of intermediate filaments (IFs) with mitochondria. Thus, we have investigated mitochondrial distribution and function in muscle lacking the IF protein desmin. Immunostaining of skeletal muscle tissue sections, as well as histoch...

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Autores principales: Milner, Derek J., Mavroidis, Manolis, Weisleder, Noah, Capetanaki, Yassemi
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2000
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2150713/
https://www.ncbi.nlm.nih.gov/pubmed/10995435
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author Milner, Derek J.
Mavroidis, Manolis
Weisleder, Noah
Capetanaki, Yassemi
author_facet Milner, Derek J.
Mavroidis, Manolis
Weisleder, Noah
Capetanaki, Yassemi
author_sort Milner, Derek J.
collection PubMed
description Ultrastructural studies have previously suggested potential association of intermediate filaments (IFs) with mitochondria. Thus, we have investigated mitochondrial distribution and function in muscle lacking the IF protein desmin. Immunostaining of skeletal muscle tissue sections, as well as histochemical staining for the mitochondrial marker enzymes cytochrome C oxidase and succinate dehydrogenase, demonstrate abnormal accumulation of subsarcolemmal clumps of mitochondria in predominantly slow twitch skeletal muscle of desmin-null mice. Ultrastructural observation of desmin-null cardiac muscle demonstrates in addition to clumping, extensive mitochondrial proliferation in a significant fraction of the myocytes, particularly after work overload. These alterations are frequently associated with swelling and degeneration of the mitochondrial matrix. Mitochondrial abnormalities can be detected very early, before other structural defects become obvious. To investigate related changes in mitochondrial function, we have analyzed ADP-stimulated respiration of isolated muscle mitochondria, and ADP-stimulated mitochondrial respiration in situ using saponin skinned muscle fibers. The in vitro maximal rates of respiration in isolated cardiac mitochondria from desmin-null and wild-type mice were similar. However, mitochondrial respiration in situ is significantly altered in desmin-null muscle. Both the maximal rate of ADP-stimulated oxygen consumption and the dissociation constant (K (m)) for ADP are significantly reduced in desmin-null cardiac and soleus muscle compared with controls. Respiratory parameters for desmin-null fast twitch gastrocnemius muscle were unaffected. Additionally, respiratory measurements in the presence of creatine indicate that coupling of creatine kinase and the adenine translocator is lost in desmin-null soleus muscle. This coupling is unaffected in cardiac muscle from desmin-null animals. All of these studies indicate that desmin IFs play a significant role in mitochondrial positioning and respiratory function in cardiac and skeletal muscle.
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spelling pubmed-21507132008-05-01 Desmin Cytoskeleton Linked to Muscle Mitochondrial Distribution and Respiratory Function Milner, Derek J. Mavroidis, Manolis Weisleder, Noah Capetanaki, Yassemi J Cell Biol Original Article Ultrastructural studies have previously suggested potential association of intermediate filaments (IFs) with mitochondria. Thus, we have investigated mitochondrial distribution and function in muscle lacking the IF protein desmin. Immunostaining of skeletal muscle tissue sections, as well as histochemical staining for the mitochondrial marker enzymes cytochrome C oxidase and succinate dehydrogenase, demonstrate abnormal accumulation of subsarcolemmal clumps of mitochondria in predominantly slow twitch skeletal muscle of desmin-null mice. Ultrastructural observation of desmin-null cardiac muscle demonstrates in addition to clumping, extensive mitochondrial proliferation in a significant fraction of the myocytes, particularly after work overload. These alterations are frequently associated with swelling and degeneration of the mitochondrial matrix. Mitochondrial abnormalities can be detected very early, before other structural defects become obvious. To investigate related changes in mitochondrial function, we have analyzed ADP-stimulated respiration of isolated muscle mitochondria, and ADP-stimulated mitochondrial respiration in situ using saponin skinned muscle fibers. The in vitro maximal rates of respiration in isolated cardiac mitochondria from desmin-null and wild-type mice were similar. However, mitochondrial respiration in situ is significantly altered in desmin-null muscle. Both the maximal rate of ADP-stimulated oxygen consumption and the dissociation constant (K (m)) for ADP are significantly reduced in desmin-null cardiac and soleus muscle compared with controls. Respiratory parameters for desmin-null fast twitch gastrocnemius muscle were unaffected. Additionally, respiratory measurements in the presence of creatine indicate that coupling of creatine kinase and the adenine translocator is lost in desmin-null soleus muscle. This coupling is unaffected in cardiac muscle from desmin-null animals. All of these studies indicate that desmin IFs play a significant role in mitochondrial positioning and respiratory function in cardiac and skeletal muscle. The Rockefeller University Press 2000-09-18 /pmc/articles/PMC2150713/ /pubmed/10995435 Text en © 2000 The Rockefeller University Press This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Original Article
Milner, Derek J.
Mavroidis, Manolis
Weisleder, Noah
Capetanaki, Yassemi
Desmin Cytoskeleton Linked to Muscle Mitochondrial Distribution and Respiratory Function
title Desmin Cytoskeleton Linked to Muscle Mitochondrial Distribution and Respiratory Function
title_full Desmin Cytoskeleton Linked to Muscle Mitochondrial Distribution and Respiratory Function
title_fullStr Desmin Cytoskeleton Linked to Muscle Mitochondrial Distribution and Respiratory Function
title_full_unstemmed Desmin Cytoskeleton Linked to Muscle Mitochondrial Distribution and Respiratory Function
title_short Desmin Cytoskeleton Linked to Muscle Mitochondrial Distribution and Respiratory Function
title_sort desmin cytoskeleton linked to muscle mitochondrial distribution and respiratory function
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2150713/
https://www.ncbi.nlm.nih.gov/pubmed/10995435
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