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Increased Mitochondrial Protein Levels and Bioenergetics in the Musculus Rectus Femoris of Wfs1-Deficient Mice

Wfs1 deficiency leads to a progressive loss of plasma insulin concentration, which should reduce the consumption of glucose in insulin-dependent tissues, causing a variety of changes in intracellular energy metabolism. Our objective here was to assess the changes in the amount and function of mitoch...

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Autores principales: Eimre, Margus, Paju, Kalju, Peet, Nadežda, Kadaja, Lumme, Tarrend, Marian, Kasvandik, Sergo, Seppet, Joosep, Ivask, Marilin, Orlova, Ehte, Kõks, Sulev
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6280240/
https://www.ncbi.nlm.nih.gov/pubmed/30584460
http://dx.doi.org/10.1155/2018/3175313
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author Eimre, Margus
Paju, Kalju
Peet, Nadežda
Kadaja, Lumme
Tarrend, Marian
Kasvandik, Sergo
Seppet, Joosep
Ivask, Marilin
Orlova, Ehte
Kõks, Sulev
author_facet Eimre, Margus
Paju, Kalju
Peet, Nadežda
Kadaja, Lumme
Tarrend, Marian
Kasvandik, Sergo
Seppet, Joosep
Ivask, Marilin
Orlova, Ehte
Kõks, Sulev
author_sort Eimre, Margus
collection PubMed
description Wfs1 deficiency leads to a progressive loss of plasma insulin concentration, which should reduce the consumption of glucose in insulin-dependent tissues, causing a variety of changes in intracellular energy metabolism. Our objective here was to assess the changes in the amount and function of mitochondrial proteins in different muscles of Wfs1-deficient mice. Mitochondrial functions were assayed by high-resolution oxygraphy of permeabilized muscle fibers; the protein amount was evaluated by liquid chromatography tandem mass spectrometry (LC/MS/MS) analysis and mRNA levels of the uncoupler proteins UCP2 and UCP3 by real-time PCR; and citrate synthase (CS) activity was determined spectrophotometrically in muscle homogenates. Compared to controls, there were no changes in proton leak and citrate synthase activity in the heart and m. soleus tissues of Wfs1-deficient mice, but significantly higher levels of both of these factors were observed in the m. rectus femoris; mitochondrial proteins and mRNA of UCP2 were also higher in the m. rectus femoris. ADP-stimulated state 3 respiration was lower in the m. soleus, remained unchanged in the heart, and was higher in the m. rectus femoris. The mitochondrial protein amount and activity are higher in Wfs1-deficient mice, as are mitochondrial proton leak and oxygen consumption in m. rectus femoris. These changes in muscle metabolism may be important for identifying the mechanisms responsible for Wolfram syndrome and diabetes.
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spelling pubmed-62802402018-12-24 Increased Mitochondrial Protein Levels and Bioenergetics in the Musculus Rectus Femoris of Wfs1-Deficient Mice Eimre, Margus Paju, Kalju Peet, Nadežda Kadaja, Lumme Tarrend, Marian Kasvandik, Sergo Seppet, Joosep Ivask, Marilin Orlova, Ehte Kõks, Sulev Oxid Med Cell Longev Research Article Wfs1 deficiency leads to a progressive loss of plasma insulin concentration, which should reduce the consumption of glucose in insulin-dependent tissues, causing a variety of changes in intracellular energy metabolism. Our objective here was to assess the changes in the amount and function of mitochondrial proteins in different muscles of Wfs1-deficient mice. Mitochondrial functions were assayed by high-resolution oxygraphy of permeabilized muscle fibers; the protein amount was evaluated by liquid chromatography tandem mass spectrometry (LC/MS/MS) analysis and mRNA levels of the uncoupler proteins UCP2 and UCP3 by real-time PCR; and citrate synthase (CS) activity was determined spectrophotometrically in muscle homogenates. Compared to controls, there were no changes in proton leak and citrate synthase activity in the heart and m. soleus tissues of Wfs1-deficient mice, but significantly higher levels of both of these factors were observed in the m. rectus femoris; mitochondrial proteins and mRNA of UCP2 were also higher in the m. rectus femoris. ADP-stimulated state 3 respiration was lower in the m. soleus, remained unchanged in the heart, and was higher in the m. rectus femoris. The mitochondrial protein amount and activity are higher in Wfs1-deficient mice, as are mitochondrial proton leak and oxygen consumption in m. rectus femoris. These changes in muscle metabolism may be important for identifying the mechanisms responsible for Wolfram syndrome and diabetes. Hindawi 2018-11-21 /pmc/articles/PMC6280240/ /pubmed/30584460 http://dx.doi.org/10.1155/2018/3175313 Text en Copyright © 2018 Margus Eimre et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Eimre, Margus
Paju, Kalju
Peet, Nadežda
Kadaja, Lumme
Tarrend, Marian
Kasvandik, Sergo
Seppet, Joosep
Ivask, Marilin
Orlova, Ehte
Kõks, Sulev
Increased Mitochondrial Protein Levels and Bioenergetics in the Musculus Rectus Femoris of Wfs1-Deficient Mice
title Increased Mitochondrial Protein Levels and Bioenergetics in the Musculus Rectus Femoris of Wfs1-Deficient Mice
title_full Increased Mitochondrial Protein Levels and Bioenergetics in the Musculus Rectus Femoris of Wfs1-Deficient Mice
title_fullStr Increased Mitochondrial Protein Levels and Bioenergetics in the Musculus Rectus Femoris of Wfs1-Deficient Mice
title_full_unstemmed Increased Mitochondrial Protein Levels and Bioenergetics in the Musculus Rectus Femoris of Wfs1-Deficient Mice
title_short Increased Mitochondrial Protein Levels and Bioenergetics in the Musculus Rectus Femoris of Wfs1-Deficient Mice
title_sort increased mitochondrial protein levels and bioenergetics in the musculus rectus femoris of wfs1-deficient mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6280240/
https://www.ncbi.nlm.nih.gov/pubmed/30584460
http://dx.doi.org/10.1155/2018/3175313
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