Dysregulation of Calcium Handling in Duchenne Muscular Dystrophy-Associated Dilated Cardiomyopathy: Mechanisms and Experimental Therapeutic Strategies
Abstract
:1. Introduction
1.1. Dilated Cardiomyopathy: Prevalence, Causes, and Clinical Manifestations
1.2. Dilated Cardiomyopathy in Muscular Dystrophy: Prevalence, Clinical Manifestations
1.3. Objective of This Review
2. Molecular Mechanisms of Dilated Cardiomyopathy
2.1. Genetic and Acquired Causes of DCM
2.1.1. Sarcomere
2.1.2. Cytoskeleton
2.1.3. Acquired Causes of DCM
2.2. The Role of Calcium Cycling in DCM Pathogenesis
2.2.1. Calcium Cycling in Healthy Cardiac Myocytes
2.2.2. Calcium Cycling Defects in DCM
3. Molecular Mechanisms of DMD Cardiomyopathy
3.1. Dystrophin as a Membrane Stabilizer
3.2. Dystrophin as a Scaffold Protein
3.3. Calcium Overload Leading to Myocyte Death, Fibrosis, and Dilation
4. Model Systems to Study DCM and DMD Cardiomyopathy
4.1. Rodents
4.2. Large Mammals
4.3. Human iPSCs
5. Currently Utilized Therapies for DMD Cardiomyopathy
5.1. Gene Therapy
5.2. Drugs and Small Molecules
6. Experimental Therapeutic Strategies to Improve Calcium Handling and Decrease Calcium Overload in DCM and DMD Cardiomyopathy
6.1. Membrane Stabilization
6.2. Stretch-Activated Channel Inhibition
6.3. RyR2 Stabilization
6.4. Modulation of Serca2a/PLN
6.4.1. Serca2a as a Target for DCM Therapy
6.4.2. PLN as a Target for DCM Therapy
6.4.3. Serca2a and PLN in Muscular Dystrophy-Associated Cardiomyopathy
6.4.4. Caution with Serca2a/PLN Therapy for Cardiomyopathy
6.5. Calcium Buffering
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Model System | Strategy | Cardiac Phenotype |
---|---|---|
Rodent | ||
Muscle LIM protein (MLP) null mice [92] | Deletion of MLP (actin-associated cytoskeletal protein) | Anatomical and physiological hallmarks of human DCM |
Desmin-deficient mice [91,93] | Desmin knockout mice | Severe loss of overall myocardial architecture by degeneration and calcification |
Surgical interruptions of coronary arteries [94,95] | Produce myocardial infarction through permanent coronary ligation or re-perfused infarction | DCM phenotype progressively develops post-infarction |
Doxorubicin or isoproterenol [96,97,98,99] | Toxic drug-mediated cardiomyopathy | Dose-dependent dilated phenotype and overt heart failure over time owing to severe myocardial injury and cell death |
mdx mice [100,101] | Nonsense point mutation in exon 23 preventing dystrophin expression | Moderate DCM and functional cardiac impairment, progressive with age |
Utrophin knockout mdx mice [102,103] | Crossing mdx mice to the utrophin-null background | Severe cardiomyopathy. Displays physiological indicators of end-stage heart failure |
Large animals | ||
Dogs, pigs and sheep [104,105,106,107,108] | Myocardial infarction, coronary micro-embolization, pacing-induced tachycardia, and toxic injury | DCM phenotype progressively develops post-infarction |
Golden retriever muscular dystrophy (GRMD) animal model of DMD [68,109,110] | Spontaneous splice site mutation in the DMD gene. Single nucleotide change that leads to exon skipping and an out-of-frame DMD transcript. | Prominent cardiac lesions present as early as 6 months of age, with ECG abnormalities present at 1 year and profound myocardial contractile abnormalities by 20 months |
Human iPSCs | ||
iPSCs-CMs [111] | iPSCs-CMs derived from a member of a family with DCM carrying a heterozygous mutation in cardiac troponin T | iPSC-derived cardiomyocytes from DCM patients recapitulated to some extent the morphological and functional phenotypes of familial DCM with inherited mutation in troponin T |
iPSCs-CMs [112] | Patient-specific DCM iPSC generated from a single member of a family with an autosomal dominant nonsense mutation (p.R225X) in exon 4 of the lamin A/C (LMNA) gene | iPSC-CMs showed morphologic changes, including a higher prevalence of nuclear bleb formation, micronucleation, as well as nuclear senescence and cellular apoptosis |
iPSC-CMs [113] | iPSC-CMs derived from a patient with dilated cardiomyopathy with a novel heterozygous mutation of p.A285V codon conversion on exon 4 of the desmin gene | iPSC-CMs provided histologic and functional confirmation that the candidate gene variant detected by whole exome sequencing was responsible for the disease |
iPSCs-CMs [114] | iPSC-CMs from DMD patients and healthy control | In vitro model that manifests the major phenotypes of DCM in DMD patients |
Target | Therapy | Model | Major Findings |
---|---|---|---|
Sarcolemma [41,68,158,159] | Copolymer –based membrane stabilizers | mdx mice dysferlin KO mice GRMD canine | ↓ Myocyte Ca2+ influx/hypercontracture ↓ Stress-induced functional deficits (acute and chronic) ↓ Fibrosis, serum cTnI, LV remodeling ↓ Ex vivo ischemia/reperfusion injury |
Stretch-Activated Channels [160] | GsMTX-4 | mdx mice | ↓ Myocyte resting Ca2+ concentration |
Ryanodine Receptor [161] | N-acetyl cysteine Rycal S107 | mdx mice | ↓ Myocyte resting Ca2+ concentration ↓ Myocyte RyR2 Ca2+ leak ↓ Arrhythmias |
Serca2a [162] | AAV-9 Serca2a | mdx mice | Normalized ECG measurements |
Phospholamban [19,163,164,165] | AAV S16E-PLN Adenovirus anti-PLN antibody Adenovirus inhibitor-2 PLN-KO | BIO14.6 hamster mdx mice | PLN inhibition in BIO14.6 hamsters • ↑ Ca2+ reuptake in SR vesicles • ↑ Myocyte contractility and Ca2+ handling • ↑ LV systolic and diastolic function • ↓ Fibrosis • ↑ Survival PLN ablation in mdx mice • ↑ Myocyte contractility and Ca2+ handling • ↓ LV systolic and diastolic function • ↑ EBD uptake • ↑ Fibrosis |
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Law, M.L.; Cohen, H.; Martin, A.A.; Angulski, A.B.B.; Metzger, J.M. Dysregulation of Calcium Handling in Duchenne Muscular Dystrophy-Associated Dilated Cardiomyopathy: Mechanisms and Experimental Therapeutic Strategies. J. Clin. Med. 2020, 9, 520. https://doi.org/10.3390/jcm9020520
Law ML, Cohen H, Martin AA, Angulski ABB, Metzger JM. Dysregulation of Calcium Handling in Duchenne Muscular Dystrophy-Associated Dilated Cardiomyopathy: Mechanisms and Experimental Therapeutic Strategies. Journal of Clinical Medicine. 2020; 9(2):520. https://doi.org/10.3390/jcm9020520
Chicago/Turabian StyleLaw, Michelle L., Houda Cohen, Ashley A. Martin, Addeli Bez Batti Angulski, and Joseph M. Metzger. 2020. "Dysregulation of Calcium Handling in Duchenne Muscular Dystrophy-Associated Dilated Cardiomyopathy: Mechanisms and Experimental Therapeutic Strategies" Journal of Clinical Medicine 9, no. 2: 520. https://doi.org/10.3390/jcm9020520
APA StyleLaw, M. L., Cohen, H., Martin, A. A., Angulski, A. B. B., & Metzger, J. M. (2020). Dysregulation of Calcium Handling in Duchenne Muscular Dystrophy-Associated Dilated Cardiomyopathy: Mechanisms and Experimental Therapeutic Strategies. Journal of Clinical Medicine, 9(2), 520. https://doi.org/10.3390/jcm9020520