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Published on: July 9, 2016
The expanding clinical spectrum of mitochondrial diseases
1Division of Pediatric Neurology, Columbia-Presbyterian Medical Center, New York, NY 10032.
Abstract:
The mitochondrion is the only extranuclear organelle containing DNA (mtDNA). As such, genetically determined mitochondrial diseases may result from a molecular defect involving the mitochondrial or the nuclear genome. The first is characterized by maternal inheritance and the second by Mendelian inheritance. Ragged-red fibers (RRF) are commonly seen with primary lesions of mtDNA, but this association is not invariant. Conversely, RRF are seldom associated with primary lesions of nuclear DNA. Large-scale rearrangements (deletions and insertions) and point mutations of mtDNA are commonly associated with RRF and lactic acidosis, e.g. Kearns-Sayre syndrome (KSS) (major large-scale rearrangements), Pearson syndrome (large-scale rearrangements), myoclonus epilepsy with RRF (MERRF) (point mutation affecting tRNA(lys) gene), mitochondrial myopathy, lactic acidosis, and stroke-like episodes (MELAS) (two point mutations affecting tRNA(leu)(UUR) gene) and a maternally-inherited myopathy with cardiac involvement (MIMyCa) (point mutation affecting tRNA(leu)(UUR) gene). However, RRF and lactic acidosis are absent in Leber hereditary optic neuropathy (LHON) (one point mutation affecting ND4 gene, two point mutations affecting ND1 gene, and one point mutation affecting the apocytochrome b subunit of complex III), and the condition associated with maternally inherited sensory neuropathy (N), ataxia (A), retinitis pigmentosa (RP), developmental delay, dementia, seizures, and limb weakness (NARP) (point mutation affecting ATPase subunit 6 gene). The point mutations in MELAS, MIMyCa, and MERRF, and the large-scale mtDNA rearrangements in KSS and Pearson syndrome have a broader biochemical impact since these molecular defects involve the translational sequence of mitochondrial protein synthesis. The nuclear defects involving mitochondrial function generally are not associated with RRF. The biochemical classification of mitochondrial diseases principally catalogues these nuclear defects. This classification divides mitochondrial diseases into five categories. Primary and secondary deficiencies of carnitine are examples of a substrate transport defect. A lipid storage myopathy is often present. Disturbances of pyruvate or fatty acid metabolism are examples of substrate utilization defects. Only four defects of the Krebs cycle are known: fumarase deficiency, dihydrolipoyl dehydrogenase deficiency, alpha-ketoglutarate dehydrogenase deficiency, and combined defects of muscle succinate dehydrogenase and aconitase. Luft disease is the singular example of a defect in oxidation-phosphorylation coupling. Defects of respiratory chain function are manifold. Two clinical syndromes predominate, one involving limb weakness, and the other primarily affecting brain function. Leigh syndrome may result from different enzyme defects, most notably pyruvate dehydrogenase complex deficiency, cytochrome c oxidase deficiency, complex I deficiency, and complex V deficiency associated with the recently described NARP point mutation. A new group of mitochondrial diseases has emerged.(ABSTRACT TRUNCATED AT 400 WORDS)
Insights
Mitochondrial diseases stem from defects in mitochondrial or nuclear DNA, impacting inheritance patterns and clinical presentation. Understanding these genetic origins is key to diagnosing and managing these complex conditions.
Area of Science:
- Genetics
- Cell Biology
- Neurology
Background:
- Mitochondria contain their own DNA (mtDNA), distinct from nuclear DNA.
- Mitochondrial diseases can arise from mutations in either mtDNA (maternal inheritance) or nuclear DNA (Mendelian inheritance).
- Ragged-red fibers (RRF) are a common, but not exclusive, histological finding in primary mtDNA lesions.
Purpose of the Study:
- To differentiate mitochondrial diseases based on genetic origin (mtDNA vs. nuclear DNA).
- To correlate specific genetic defects with clinical manifestations and biochemical impacts.
- To outline the classification of mitochondrial diseases based on biochemical defects.
Main Methods:
- Analysis of genetic mutations (point mutations, large-scale rearrangements) in mtDNA.
- Correlation of genetic findings with clinical symptoms (e.g., RRF, lactic acidosis, specific syndromes).
- Biochemical classification of nuclear gene defects affecting mitochondrial function.
Main Results:
- mtDNA defects, like those in MELAS and KSS, often involve protein synthesis and are associated with RRF and lactic acidosis.
- Some mtDNA mutations, such as in LHON and NARP, do not present with RRF or lactic acidosis.
- Nuclear DNA defects typically do not cause RRF and are classified biochemically into categories like substrate transport, utilization, Krebs cycle, and respiratory chain defects.
Conclusions:
- Mitochondrial diseases exhibit diverse genetic origins and clinical phenotypes.
- Specific mtDNA mutations have distinct biochemical consequences, influencing protein synthesis.
- Biochemical classification aids in categorizing nuclear gene defects impacting mitochondrial function, with Leigh syndrome being a notable example with varied enzyme deficiencies.
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