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Molecular Imaging to Target Transplanted Muscle Progenitor Cells
Published on: March 27, 2013
Integrated RNA sequencing and in vivo biosensor imaging define the early pathogenic cascade of Duchenne muscular
Elena Cannone1, Martina La Spina2, Barbara Gnutti1
1Department of Molecular and Translational Medicine, University of Brescia, Brescia, Italy.
Abstract:
Duchenne muscular dystrophy (DMD) is a lethal muscle disease caused by loss of dystrophin, and characterized by progressive muscle wasting, with massive replacement of muscle fibers with adipose tissue. Yet, the early molecular events that initiate pathology remain poorly defined. Here, we combined longitudinal RNA sequencing of sapje dystrophic zebrafish (a single-mutation vertebrate model of human DMD characterized by a severe phenotype), transcriptomic profiling of human DMD myoblasts and myotubes, and functional in vivo imaging using pathway-specific zebrafish biosensors to reconstruct the cascade of events triggered by dystrophin deficiency. We observed that the earliest stages of disease are characterized by marked downregulation of genes controlling cytosolic Ca2+ homeostasis, mitochondrial function and organization, and Pax3/Mef2a/Srf-mediated transcriptional programs essential for satellite cell maintenance and muscle differentiation. These early deficits precede robust but ineffective regenerative and metabolic compensatory responses, accompanied by extracellular matrix remodeling and TGFβ activation. At advanced stages, both sapje zebrafish and human DMD myotubes converge on profound mitochondrial dysfunction, impaired cell-cycle control, and chronic inflammation signaling. Live imaging of sapje zebrafish biosensors validated these transcriptomic signatures, revealing reduced Notch, Bmp, Shh, Hif-1a and Wnt signaling, along with aberrant TGFβ activity and disrupted mitochondrial dynamics in vivo. Together, these findings identify a conserved temporal sequence linking early Ca2+ dysregulation to mitochondrial failure, satellite cell hyperactivation, and fibrotic remodeling, providing mechanistic insights and therapeutic targets for early intervention in DMD patients.
Insights
Duchenne muscular dystrophy (DMD) involves early calcium and mitochondrial problems, leading to muscle wasting. Understanding this sequence offers new therapeutic targets for early intervention in DMD patients.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Duchenne muscular dystrophy (DMD) is a fatal genetic disorder characterized by progressive muscle degeneration and replacement with adipose tissue.
- The precise early molecular events initiating DMD pathology are not fully understood.
- Dystrophin deficiency is the primary cause of DMD.
Purpose of the Study:
- To reconstruct the cascade of molecular events triggered by dystrophin deficiency in DMD.
- To identify early molecular deficits and conserved temporal sequences in DMD pathogenesis.
- To provide mechanistic insights and potential therapeutic targets for early intervention in DMD.
Main Methods:
- Longitudinal RNA sequencing of dystrophic zebrafish.
- Transcriptomic profiling of human DMD myoblasts and myotubes.
- Functional in vivo imaging using pathway-specific zebrafish biosensors.
Main Results:
- Early DMD stages show downregulated genes in Ca2+ homeostasis, mitochondrial function, and satellite cell maintenance.
- Deficits precede ineffective regenerative and metabolic compensatory responses, with ECM remodeling and TGFβ activation.
- Advanced stages reveal profound mitochondrial dysfunction, impaired cell-cycle control, and chronic inflammation signaling in both zebrafish and human models.
- In vivo imaging confirmed reduced Notch, Bmp, Shh, Hif-1a, and Wnt signaling, aberrant TGFβ activity, and disrupted mitochondrial dynamics.
Conclusions:
- A conserved temporal sequence links early Ca2+ dysregulation to mitochondrial failure, satellite cell hyperactivation, and fibrotic remodeling in DMD.
- These findings offer mechanistic insights into DMD progression.
- The identified molecular events represent potential therapeutic targets for early intervention in Duchenne muscular dystrophy.

