Defective Mitochondrial Adenosine Triphosphate Production in Skeletal Muscle From Patients With Dominant Optic Atrophy Due to OPA1 Mutations

被引:32
作者
Lodi, Raffaele [1 ]
Tonon, Caterina [1 ]
Valentino, Maria Lucia [2 ]
Manners, David [1 ]
Testa, Claudia [1 ]
Malucelli, Emil [1 ]
La Morgia, Chiara [2 ]
Barboni, Piero [2 ]
Carbonelli, Michele [2 ,3 ]
Schimpf, Simone [5 ]
Wissinger, Bernd [5 ]
Zeviani, Massimo [4 ]
Baruzzi, Agostino [2 ]
Liguori, Rocco [2 ]
Barbiroli, Bruno [1 ]
Carelli, Valerio [2 ]
机构
[1] Univ Bologna, MR Spect Unit, Dept Internal Med Aging & Nephrol, I-40138 Bologna, Italy
[2] Univ Bologna, Dept Neurol Sci, I-40138 Bologna, Italy
[3] Studio Oculist dAzeglio, Bologna, Italy
[4] Natl Neurol Inst, Pierfranco & Luisa Mariani Ctr Study Childrens Mi, Unit Mol Neurogenet, Milan, Italy
[5] Univ Augenklin, Mol Genet Lab, Tubingen, Germany
关键词
MAGNETIC-RESONANCE-SPECTROSCOPY; EXTERNAL OPHTHALMOPLEGIA; COMPLEX-I; NEUROPATHY; DISEASE; GENE; DYSFUNCTION; METABOLISM; DELETION; CARRIERS;
D O I
10.1001/archneurol.2010.228
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Objective: To assess whether impaired energy metabolism in skeletal muscle is a hallmark feature of patients with dominant optic atrophy due to several different mutations in the OPA1 gene. Design: We used phosphorus 31 magnetic resonance spectroscopy to assess calf muscle oxidative metabolism in subjects with molecularly defined dominant optic atrophy carrying different mutations in the OPA1 gene. In a subset of patients, we also evaluated serum lactate levels after exercise and muscle biopsy results for histology and mitochondrial DNA analysis. Setting: University neuromuscular and neurogenetics and magnetic resonance imaging units. Patients: Eighteen patients with dominant optic atrophy were enrolled from 8 unrelated families, 7 of which carried an OPA1 mutation predicted to induce haplo-insufficiency and 1 with a missense mutation in exon 27. Fifteen patients had documented optic atrophy. Main Outcome Measures: Presence of skeletal muscle mitochondrial oxidative phosphorylation dysfunction as assessed by phosphorus 31 magnetic resonance spectroscopy, serum lactate levels, and histological and mitochondrial DNA analysis. Results: Phosphorus 31 magnetic resonance spectroscopy showed reduced phosphorylation potential in the calf muscle at rest in patients with an OPA1 mutation (-24% from normal mean; P=.003) as well as a reduced maximum rate of mitochondrial adenosine triphosphate synthesis (-36%; P<.001; ranging from -28% to -49% in association with different mutations). In 4 of 10 patients (40%), the serum lactate level after exercise was elevated. Only 2 of 5 muscle biopsies, from the 2 patients with a missense mutation, showed slight myopathic changes. Low levels of mitochondrial DNA multiple deletions were found in all muscle biopsies. Conclusions: Defective oxidative phosphorylation in skeletal muscle is a subclinical feature of patients with OPA1-related dominant optic atrophy, indicating a systemic expression of the OPA1 defect, similar to that previously reported for Leber hereditary optic neuropathy due to complex I dysfunction. This defect of oxidative phosphorylation does not appear to depend on the low amounts of mitochondrial DNA multiple deletions detected in muscle biopsies.
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收藏
页码:67 / 73
页数:7
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