Key result
Micro-dystrophin gene therapy prevented heart failure progression in a Duchenne muscular dystrophy mouse model, maintaining a normal ejection fraction of 57.1% compared to 34.2% in untreated mice (p=0.0001).
Why the study?
Micro-dystrophin gene replacement for Duchenne muscular dystrophy has entered clinical trials, but its efficacy in preventing heart failure is unknown due to the lack of animal models that reproducibly progress into heart failure.
Does micro-dystrophin gene therapy prevent heart failure progression and cardiac pathology in a Duchenne muscular dystrophy cardiomyopathy mouse model?
Does micro-dystrophin gene therapy prevent heart failure progression and cardiac pathology in a Duchenne muscular dystrophy cardiomyopathy mouse model?
Absolute Event Rate: 57.1% vs 34.2%
p-value: p=0.0001
Micro-dystrophin gene therapy prevents the progression of heart failure and cardiac pathology in a novel, severe mouse model of Duchenne muscular dystrophy cardiomyopathy.
May inform gene therapy for DMD cardiomyopathy; hypothesis-generating and leaves open human translation.
Gene replacement for Duchenne muscular dystrophy (DMD) with micro-dystrophins has entered clinical trials, but efficacy in preventing heart failure is unknown. Although most patients with DMD die from heart failure, cardiomyopathy is undetectable until the teens, so efficacy from trials in young boys will be unknown for a decade. Available DMD animal models were sufficient to demonstrate micro-dystrophin efficacy on earlier onset skeletal muscle pathology underlying loss of ambulation and respiratory insufficiency in patients. However, no mouse models progressed into heart failure, and dog models showed highly variable progression insufficient to evaluate efficacy of micro-dystrophin or other therapies on DMD heart failure. To overcome this barrier, we have generated the first DMD mouse model to our knowledge that reproducibly progresses into heart failure. This model shows cardiac inflammation and fibrosis occur prior to reduced function. Fibrosis does not continue to accumulate, but inflammation persists after function declines. We used this model to test micro-dystrophin gene therapy efficacy on heart failure prevention for the first time. Micro-dystrophin prevented declines in cardiac function and prohibited onset of inflammation and fibrosis. This model will allow identification of committed pathogenic steps to heart failure and testing of genetic and nongenetic therapies to optimize cardiac care for patients with DMD.
No takes yet. Share an insight, caveat, or question.
Howard et al. (2021) studied Duchenne muscular dystrophy cardiomyopathy (n=30). AAV6-CK8e-Hinge3-micro-dystrophin (AAV-μDys) vs. Untreated Fiona/dko mice was evaluated on Ejection fraction at 12 months of age (p=0.0001). Micro-dystrophin gene therapy prevented heart failure progression in a Duchenne muscular dystrophy mouse model, maintaining a normal ejection fraction of 57.1% compared to 34.2% in untreated mice (p=0.0001).
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: