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Title: X-linked NDUFA1 gene mutations associated with mitochondrial encephalomyopathy.
Author(s): Fernandez-Moreira, D.
Ugalde, C. (298207400)
Smeets, R.
Rodenburg, R.J.T. (148271820)
Lopez-Laso, E.
Ruiz-Falco, M.L.
Briones, P.
Martin, M.A.
Smeitink, J.A.M. (097665606)
Arenas, J.
Publication year: 2007
Document type: Article / Letter to editor
Journal: Annals of Neurology
ISSN: 0364-5134
Volume: vol. 61
Issue: iss. 1
Start page: p. 73
End page: p. 83
Abstract: OBJECTIVE: Mitochondrial complex I deficiency is the commonest diagnosed respiratory chain defect, being genetically heterogeneous. The male preponderance of previous patient cohorts suggested an X-linked underlying genetic defect. We investigated mutations in the X-chromosomal complex I structural genes, NDUFA1 and NDUFB11, as a novel cause of mitochondrial encephalomyopathy. METHODS: We sequenced 12 nuclear genes and the mitochondrial DNA-encoded complex I genes in 26 patients with respiratory chain complex I defect. Novel mutations were confirmed by polymerase chain reaction restriction length polymorphism. Assembly/stability studies in fibroblasts were performed using two-dimensional blue native gel electrophoresis. RESULTS: Two novel p.Gly8Arg and p.Arg37Ser hemizygous mutations in NDUFA1 were identified in two unrelated male patients presenting with Leigh's syndrome and with myoclonic epilepsy and developmental delay, respectively. Two-dimensional blue native gel electrophoresis showed decreased levels of intact complex I with no accumulation of lower molecular weight subcomplexes, indicating that assembly, stability, or both are compromised. INTERPRETATION: Mutations in the X-linked NDUFA1 gene result in complex I defect and encephalomyopathy. Assembly/stability analysis might give an explanation for the different clinical phenotypes and become useful for future diagnostic purposes.
Subject: UMCN 5.3: Cellular energy metabolism
Organization: UMCN Extern
Paediatrics
Rheumatology
Appears in Collections:Academic bibliography

Please use this identifier to cite or link to this item: http://hdl.handle.net/2066/51594

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