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Published on: June 14, 2016
Focal but reversible diastolic sheet dysfunction reflects regional calcium mishandling in dystrophic mdx mouse hearts
Ya-Jian Cheng1, Di Lang, Shelton D Caruthers
1Cardiovascular Division, Washington University School of Medicine, Saint Louis, Missouri 63110, USA.
Insights
Duchenne muscular dystrophy causes cardiac dysfunction due to calcium mishandling, initially affecting basal heart segments. Reducing calcium levels improved diastolic sheet function in dystrophin-deficient hearts.
Area of Science:
- Cardiology
- Biochemistry
- Genetics
Background:
- Cardiac dysfunction is a major cause of mortality in Duchenne muscular dystrophy (DMD).
- Elevated cytosolic calcium is implicated, but regional effects on heart function are unclear.
Purpose of the Study:
- To investigate regional differences in calcium mishandling and myocardial sheet function in dystrophin-deficient (mdx) cardiomyopathy.
- To understand the link between calcium handling defects and cardiac dysfunction in DMD.
Main Methods:
- Diffusion tensor MRI was used to quantify myocardial sheet architecture and function in isolated mdx and wild-type (WT) hearts.
- Optical mapping assessed calcium transients and reuptake.
- Fibrosis was analyzed regionally.
Main Results:
- mdx hearts showed normal systolic architecture but reduced diastolic sheet angles in the basal region.
- Reducing perfusate calcium normalized diastolic sheet dysfunction.
- A regional defect in calcium reuptake was identified in the basal region of mdx hearts, correlating with increased fibrosis.
Conclusions:
- Diastolic sheet dysfunction and calcium mishandling initially occur in the basal segments of mdx hearts, preceding fibrosis.
- These regional defects are reversible by lowering calcium levels, highlighting the role of regional mechanical factors in DMD progression.
Abstract:
Cardiac dysfunction is a primary cause of patient mortality in Duchenne muscular dystrophy, potentially related to elevated cytosolic calcium. However, the regional versus global functional consequences of cellular calcium mishandling have not been defined in the whole heart. Here we sought for the first time to elucidate potential regional dependencies between calcium mishandling and myocardial fiber/sheet function as a manifestation of dystrophin-deficient (mdx) cardiomyopathy. Isolated-perfused hearts from 16-mo-old mdx (N = 10) and wild-type (WT; N = 10) were arrested sequentially in diastole and systole for diffusion tensor MRI quantification of myocardial sheet architecture and function. When compared with WT hearts, mdx hearts exhibited normal systolic sheet architecture but a lower diastolic sheet angle magnitude (|β|) in the basal region. The regional diastolic sheet dysfunction was normalized by reducing perfusate calcium concentrations. Optical mapping of calcium transients in isolated hearts (3 mdx and 4 WT) revealed a stretch-inducible regional defect of intracellular calcium reuptake, reflected by a 25% increase of decay times (T(50)) and decay constants, at the base of mdx hearts. The basal region of mdx hearts also exhibited greater fibrosis than did the apex, which matched the regional sheet dysfunction. We conclude that myocardial diastolic sheet dysfunction is observed initially in basal segments along with calcium mishandling, ultimately culminating in increased fibrosis. The preservation of relatively normal calcium reuptake and diastolic/systolic sheet mechanics throughout the rest of the heart, together with the rapid reversibility of functional defects by reducing cytosolic calcium, points to the significance of regional mechanical factors in the progression of the disease.
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