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Expression profiling in the muscular dystrophies: identification of novel aspects of molecular pathophysiology
1Research Center for Genetic Medicine, Children's National Medical Center, George Washington University, Washington, DC 20010, USA.
Abstract:
We used expression profiling to define the pathophysiological cascades involved in the progression of two muscular dystrophies with known primary biochemical defects, dystrophin deficiency (Duchenne muscular dystrophy) and alpha-sarcoglycan deficiency (a dystrophin-associated protein). We employed a novel protocol for expression profiling in human tissues using mixed samples of multiple patients and iterative comparisons of duplicate datasets. We found evidence for both incomplete differentiation of patient muscle, and for dedifferentiation of myofibers to alternative lineages with advancing age. One developmentally regulated gene characterized in detail, alpha-cardiac actin, showed abnormal persistent expression after birth in 60% of Duchenne dystrophy myofibers. The majority of myofibers ( approximately 80%) remained strongly positive for this protein throughout the course of the disease. Other developmentally regulated genes that showed widespread overexpression in these muscular dystrophies included embryonic myosin heavy chain, versican, acetylcholine receptor alpha-1, secreted protein, acidic and rich in cysteine/osteonectin, and thrombospondin 4. We hypothesize that the abnormal Ca(2)+ influx in dystrophin- and alpha-sarcoglycan-deficient myofibers leads to altered developmental programming of developing and regenerating myofibers. The finding of upregulation of HLA-DR and factor XIIIa led to the novel identification of activated dendritic cell infiltration in dystrophic muscle; these cells mediate immune responses and likely induce microenvironmental changes in muscle. We also document a general metabolic crisis in dystrophic muscle, with large scale downregulation of nuclear-encoded mitochondrial gene expression. Finally, our expression profiling results show that primary genetic defects can be identified by a reduction in the corresponding RNA.
Insights
Gene expression profiling reveals abnormal muscle cell development and immune cell infiltration in muscular dystrophies. This study identifies potential biomarkers for Duchenne muscular dystrophy and alpha-sarcoglycan deficiency, offering insights into disease progression.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Muscular dystrophies like Duchenne muscular dystrophy (DMD) and alpha-sarcoglycan deficiency are characterized by primary biochemical defects.
- Understanding the complex pathophysiological cascades in these diseases is crucial for developing effective therapies.
Purpose of the Study:
- To define the pathophysiological cascades in Duchenne muscular dystrophy and alpha-sarcoglycan deficiency using expression profiling.
- To identify novel biomarkers and therapeutic targets by analyzing gene expression patterns in affected muscle tissues.
Main Methods:
- Utilized a novel protocol for expression profiling in human muscle tissues from multiple patients.
- Employed iterative comparisons of duplicate datasets to ensure robust findings.
- Analyzed the expression of developmentally regulated genes, immune cell markers, and mitochondrial genes.
Main Results:
- Observed incomplete differentiation and dedifferentiation of myofibers in dystrophic muscle.
- Identified abnormal persistent expression of alpha-cardiac actin in DMD myofibers.
- Detected widespread overexpression of developmental genes (e.g., embryonic myosin heavy chain, versican) and upregulation of immune markers (HLA-DR, factor XIIIa), indicating activated dendritic cell infiltration.
- Documented a metabolic crisis with downregulation of nuclear-encoded mitochondrial gene expression.
- Demonstrated that primary genetic defects can be identified by reduced corresponding RNA levels.
Conclusions:
- Abnormal calcium influx in dystrophin- and alpha-sarcoglycan-deficient myofibers may alter developmental programming.
- Activated dendritic cells contribute to immune responses and microenvironmental changes in dystrophic muscle.
- Expression profiling is a powerful tool for identifying disease mechanisms, biomarkers, and genetic defects in muscular dystrophies.