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Published on: December 29, 2017
Emerging proteomic biomarkers of X-linked muscular dystrophy
Paul Dowling1,2, Sandra Murphy3, Margit Zweyer4
1Department of Biology, Maynooth University, National University of Ireland , Kildare , Ireland.
Abstract:
Introduction: Progressive skeletal muscle wasting is the manifesting symptom of Duchenne muscular dystrophy, an X-linked inherited disorder triggered by primary abnormalities in the DMD gene. The almost complete loss of dystrophin isoform Dp427 causes a multi-system pathology that features in addition to skeletal muscle weakness also late-onset cardio-respiratory deficiencies, impaired metabolism and abnormalities in the central nervous system. Areas covered: This review focuses on the mass spectrometry-based proteomic characterization of X-linked muscular dystrophy with special emphasis on the identification of novel biomarker candidates in skeletal muscle tissues, as well as non-muscle tissues and various biofluids. Individual sections focus on molecular and cellular aspects of the pathogenic changes in dystrophinopathy, proteomic workflows used in biomarker research, the proteomics of the dystrophin-glycoprotein complex and the potential usefulness of newly identified protein markers involved in fibre degeneration, fibrosis and inflammation. Expert opinion: The systematic application of large-scale proteomic surveys has identified a distinct cohort of both tissue- and biofluid-associated protein species with considerable potential for improving diagnostic, prognostic and therapy-monitoring procedures. Novel proteomic markers include components involved in fibre contraction, cellular signalling, ion homeostasis, cellular stress response, energy metabolism and the immune response, as well as maintenance of the cytoskeletal and extracellular matrix.
Insights
Proteomic analysis of Duchenne muscular dystrophy (DMD) reveals novel protein biomarkers in tissues and biofluids. These markers aid in diagnosing, monitoring, and treating this genetic muscle-wasting disease.
Area of Science:
- Biochemistry
- Genetics
- Molecular Biology
Background:
- Duchenne muscular dystrophy (DMD) is an X-linked inherited disorder characterized by progressive skeletal muscle wasting due to mutations in the DMD gene.
- Loss of dystrophin isoform Dp427 leads to multi-system pathology, including muscle weakness, cardio-respiratory issues, metabolic dysfunction, and central nervous system abnormalities.
Purpose of the Study:
- This review focuses on mass spectrometry-based proteomic characterization in DMD.
- Emphasis is placed on identifying novel biomarker candidates in skeletal muscle, non-muscle tissues, and biofluids.
Main Methods:
- Proteomic workflows for biomarker research in dystrophinopathy.
- Analysis of the dystrophin-glycoprotein complex.
- Identification of proteins involved in fibre degeneration, fibrosis, and inflammation.
Main Results:
- Systematic proteomic surveys have identified protein species in tissues and biofluids.
- These proteins show potential for improving diagnostic, prognostic, and therapy-monitoring procedures in DMD.
Conclusions:
- Novel proteomic markers are involved in various cellular processes, including fibre contraction, signalling, ion homeostasis, stress response, metabolism, and immune response.
- These markers are crucial for maintaining cytoskeletal and extracellular matrix integrity.
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