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Mitochondrial mosaics in the liver of 3 infants with mtDNA defects

BACKGROUND: In muscle cytochrome oxidase (COX) negative fibers (mitochondrial mosaics) have often been visualized. METHODS: COX activity staining of liver for light and electron microscopy, muscle stains, blue native gel electrophoresis and activity assays of respiratory chain proteins, their immuno...

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Autores principales: Roels, Frank, Verloo, Patrick, Eyskens, François, François, Baudouin, Seneca, Sara, De Paepe, Boel, Martin, Jean-Jacques, Meersschaut, Valerie, Praet, Marleen, Scalais, Emmanuel, Espeel, Marc, Smet, Joél, Van Goethem, Gert, Van Coster, Rudy
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2706255/
https://www.ncbi.nlm.nih.gov/pubmed/19500334
http://dx.doi.org/10.1186/1472-6890-9-4
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author Roels, Frank
Verloo, Patrick
Eyskens, François
François, Baudouin
Seneca, Sara
De Paepe, Boel
Martin, Jean-Jacques
Meersschaut, Valerie
Praet, Marleen
Scalais, Emmanuel
Espeel, Marc
Smet, Joél
Van Goethem, Gert
Van Coster, Rudy
author_facet Roels, Frank
Verloo, Patrick
Eyskens, François
François, Baudouin
Seneca, Sara
De Paepe, Boel
Martin, Jean-Jacques
Meersschaut, Valerie
Praet, Marleen
Scalais, Emmanuel
Espeel, Marc
Smet, Joél
Van Goethem, Gert
Van Coster, Rudy
author_sort Roels, Frank
collection PubMed
description BACKGROUND: In muscle cytochrome oxidase (COX) negative fibers (mitochondrial mosaics) have often been visualized. METHODS: COX activity staining of liver for light and electron microscopy, muscle stains, blue native gel electrophoresis and activity assays of respiratory chain proteins, their immunolocalisation, mitochondrial and nuclear DNA analysis. RESULTS: Three unrelated infants showed a mitochondrial mosaic in the liver after staining for COX activity, i.e. hepatocytes with strongly reactive mitochondria were found adjacent to cells with many negative, or barely reactive, mitochondria. Deficiency was most severe in the patient diagnosed with Pearson syndrome. Ragged-red fibers were absent in muscle biopsies of all patients. Enzyme biochemistry was not diagnostic in muscle, fibroblasts and lymphocytes. Blue native gel electrophoresis of liver tissue, but not of muscle, demonstrated a decreased activity of complex IV; in both muscle and liver subcomplexes of complex V were seen. Immunocytochemistry of complex IV confirmed the mosaic pattern in two livers, but not in fibroblasts. MRI of the brain revealed severe white matter cavitation in the Pearson case, but only slight cortical atrophy in the Alpers-Huttenlocher patient, and a normal image in the 3rd. MtDNA in leucocytes showed a common deletion in 50% of the mtDNA molecules of the Pearson patient. In the patient diagnosed with Alpers-Huttenlocher syndrome, mtDNA was depleted for 60% in muscle. In the 3rd patient muscular and hepatic mtDNA was depleted for more than 70%. Mutations in the nuclear encoded gene of POLG were subsequently found in both the 2nd and 3rd patients. CONCLUSION: Histoenzymatic COX staining of a liver biopsy is fast and yields crucial data about the pathogenesis; it indicates whether mtDNA should be assayed. Each time a mitochondrial disorder is suspected and muscle data are non-diagnostic, a liver biopsy should be recommended. Mosaics are probably more frequent than observed until now. A novel pathogenic mutation in POLG is reported. Tentative explanations for the mitochondrial mosaics are, in one patient, unequal partition of mutated mitochondria during mitoses, and in two others, an interaction between products of several genes required for mtDNA maintenance.
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spelling pubmed-27062552009-07-07 Mitochondrial mosaics in the liver of 3 infants with mtDNA defects Roels, Frank Verloo, Patrick Eyskens, François François, Baudouin Seneca, Sara De Paepe, Boel Martin, Jean-Jacques Meersschaut, Valerie Praet, Marleen Scalais, Emmanuel Espeel, Marc Smet, Joél Van Goethem, Gert Van Coster, Rudy BMC Clin Pathol Research Article BACKGROUND: In muscle cytochrome oxidase (COX) negative fibers (mitochondrial mosaics) have often been visualized. METHODS: COX activity staining of liver for light and electron microscopy, muscle stains, blue native gel electrophoresis and activity assays of respiratory chain proteins, their immunolocalisation, mitochondrial and nuclear DNA analysis. RESULTS: Three unrelated infants showed a mitochondrial mosaic in the liver after staining for COX activity, i.e. hepatocytes with strongly reactive mitochondria were found adjacent to cells with many negative, or barely reactive, mitochondria. Deficiency was most severe in the patient diagnosed with Pearson syndrome. Ragged-red fibers were absent in muscle biopsies of all patients. Enzyme biochemistry was not diagnostic in muscle, fibroblasts and lymphocytes. Blue native gel electrophoresis of liver tissue, but not of muscle, demonstrated a decreased activity of complex IV; in both muscle and liver subcomplexes of complex V were seen. Immunocytochemistry of complex IV confirmed the mosaic pattern in two livers, but not in fibroblasts. MRI of the brain revealed severe white matter cavitation in the Pearson case, but only slight cortical atrophy in the Alpers-Huttenlocher patient, and a normal image in the 3rd. MtDNA in leucocytes showed a common deletion in 50% of the mtDNA molecules of the Pearson patient. In the patient diagnosed with Alpers-Huttenlocher syndrome, mtDNA was depleted for 60% in muscle. In the 3rd patient muscular and hepatic mtDNA was depleted for more than 70%. Mutations in the nuclear encoded gene of POLG were subsequently found in both the 2nd and 3rd patients. CONCLUSION: Histoenzymatic COX staining of a liver biopsy is fast and yields crucial data about the pathogenesis; it indicates whether mtDNA should be assayed. Each time a mitochondrial disorder is suspected and muscle data are non-diagnostic, a liver biopsy should be recommended. Mosaics are probably more frequent than observed until now. A novel pathogenic mutation in POLG is reported. Tentative explanations for the mitochondrial mosaics are, in one patient, unequal partition of mutated mitochondria during mitoses, and in two others, an interaction between products of several genes required for mtDNA maintenance. BioMed Central 2009-06-05 /pmc/articles/PMC2706255/ /pubmed/19500334 http://dx.doi.org/10.1186/1472-6890-9-4 Text en Copyright © 2009 Roels et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Roels, Frank
Verloo, Patrick
Eyskens, François
François, Baudouin
Seneca, Sara
De Paepe, Boel
Martin, Jean-Jacques
Meersschaut, Valerie
Praet, Marleen
Scalais, Emmanuel
Espeel, Marc
Smet, Joél
Van Goethem, Gert
Van Coster, Rudy
Mitochondrial mosaics in the liver of 3 infants with mtDNA defects
title Mitochondrial mosaics in the liver of 3 infants with mtDNA defects
title_full Mitochondrial mosaics in the liver of 3 infants with mtDNA defects
title_fullStr Mitochondrial mosaics in the liver of 3 infants with mtDNA defects
title_full_unstemmed Mitochondrial mosaics in the liver of 3 infants with mtDNA defects
title_short Mitochondrial mosaics in the liver of 3 infants with mtDNA defects
title_sort mitochondrial mosaics in the liver of 3 infants with mtdna defects
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2706255/
https://www.ncbi.nlm.nih.gov/pubmed/19500334
http://dx.doi.org/10.1186/1472-6890-9-4
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