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Dissection of the Transversus Abdominis Muscle for Whole-mount Neuromuscular Junction Analysis
Published on: January 11, 2014
Impaired Muscle Mitochondrial Biogenesis and Myogenesis in Spinal Muscular Atrophy
Michela Ripolone1, Dario Ronchi2, Raffaella Violano1
1Neuromuscular Unit, Dino Ferrari Centre, Istituto di Ricovero e Cura a Carattere Scientifico (IRCCS) Foundation Ca' Granda Ospedale Maggiore Policlinico, University of Milan, Milan, Italy.
Importance:
The important depletion of mitochondrial DNA (mtDNA) and the general depression of mitochondrial respiratory chain complex levels (including complex II) have been confirmed, implying an increasing paucity of mitochondria in the muscle from patients with types I, II, and III spinal muscular atrophy (SMA-I, -II, and -III, respectively).
Objective:
To investigate mitochondrial dysfunction in a large series of muscle biopsy samples from patients with SMA.
Design, Setting, And Participants:
We studied quadriceps muscle samples from 24 patients with genetically documented SMA and paraspinal muscle samples from 3 patients with SMA-II undergoing surgery for scoliosis correction. Postmortem muscle samples were obtained from 1 additional patient. Age-matched controls consisted of muscle biopsy specimens from healthy children aged 1 to 3 years who had undergone analysis for suspected myopathy. Analyses were performed at the Neuromuscular Unit, Istituto di Ricovero e Cura a Carattere Scientifico Foundation Ca' Granda Ospedale Maggiore Policlinico-Milano, from April 2011 through January 2015.
Exposures:
We used histochemical, biochemical, and molecular techniques to examine the muscle samples.
Main Outcomes And Measures:
Respiratory chain activity and mitochondrial content.
Results:
Results of histochemical analysis revealed that cytochrome-c oxidase (COX) deficiency was more evident in muscle samples from patients with SMA-I and SMA-II. Residual activities for complexes I, II, and IV in muscles from patients with SMA-I were 41%, 27%, and 30%, respectively, compared with control samples (P < .005). Muscle mtDNA content and cytrate synthase activity were also reduced in all 3 SMA types (P < .05). We linked these alterations to downregulation of peroxisome proliferator-activated receptor coactivator 1α, the transcriptional activators nuclear respiratory factor 1 and nuclear respiratory factor 2, mitochondrial transcription factor A, and their downstream targets, implying depression of the entire mitochondrial biogenesis. Results of Western blot analysis confirmed the reduced levels of the respiratory chain subunits that included mitochondrially encoded COX1 (47.5%; P = .004), COX2 (32.4%; P < .001), COX4 (26.6%; P < .001), and succinate dehydrogenase complex subunit A (65.8%; P = .03) as well as the structural outer membrane mitochondrial porin (33.1%; P < .001). Conversely, the levels of expression of 3 myogenic regulatory factors-muscle-specific myogenic factor 5, myoblast determination 1, and myogenin-were higher in muscles from patients with SMA compared with muscles from age-matched controls (P < .05).
Conclusions And Relevance:
Our results strongly support the conclusion that an altered regulation of myogenesis and a downregulated mitochondrial biogenesis contribute to pathologic change in the muscle of patients with SMA. Therapeutic strategies should aim at counteracting these changes.
Insights
Spinal muscular atrophy (SMA) involves muscle mitochondrial dysfunction, with reduced mitochondrial DNA and respiratory chain complexes. Therapeutic strategies should target altered myogenesis and mitochondrial biogenesis in SMA patients.
Area of Science:
- Neuromuscular biology
- Mitochondrial medicine
- Genetic disorders
Background:
- Spinal muscular atrophy (SMA) is characterized by progressive muscle weakness.
- Previous studies suggest mitochondrial dysfunction in SMA, including reduced mitochondrial DNA (mtDNA) and respiratory chain complexes.
- The extent and mechanisms of mitochondrial impairment in SMA require further investigation.
Purpose of the Study:
- To investigate mitochondrial dysfunction in muscle biopsy samples from a large cohort of SMA patients.
- To analyze alterations in mitochondrial content, respiratory chain activity, and biogenesis pathways in SMA.
- To explore the relationship between myogenesis and mitochondrial changes in SMA.
Main Methods:
- Histochemical, biochemical, and molecular analyses were performed on muscle samples from 24 SMA patients (types I, II, III) and age-matched controls.
- Assessed respiratory chain complex activities, mtDNA content, citrate synthase activity, and expression of key mitochondrial biogenesis factors (e.g., PGC-1α, NRF-1, TFAM).
- Examined levels of respiratory chain subunits and myogenic regulatory factors (MRFs) using Western blot.
Main Results:
- Significant cytochrome-c oxidase (COX) deficiency observed in SMA types I and II.
- Reduced activities of complexes I, II, and IV, along with decreased mtDNA content and citrate synthase activity, were found across all SMA types.
- Downregulation of mitochondrial biogenesis factors (PGC-1α, NRF-1, TFAM) and key respiratory chain subunits (COX1, COX2, COX4, SDHA) confirmed impaired mitochondrial biogenesis.
- Increased expression of myogenic regulatory factors (Myf5, MyoD, myogenin) suggests altered myogenesis.
Conclusions:
- Muscle pathology in SMA is associated with both impaired mitochondrial biogenesis and altered myogenesis.
- These findings highlight the critical role of mitochondrial dysfunction in SMA.
- Therapeutic approaches for SMA should consider targeting these molecular pathways to counteract muscle degeneration.
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