Key result
Extracellular vesicles improve LVEF by ~15% and curb ventricular arrhythmias in desmoglein-2 mutant mice.
Why the study?
Arrhythmogenic cardiomyopathy lacks effective therapies targeting its characteristic progressive cardiomyocyte loss and fibrofatty replacement, prompting evaluation of engineered cardiosphere-derived extracellular vesicles in a disease model.
Does intravenous administration of extracellular vesicles from cardiosphere-derived cells improve cardiac function and reduce arrhythmias in a murine model of arrhythmogenic cardiomyopathy?
Does intravenous administration of extracellular vesicles from cardiosphere-derived cells improve cardiac function and reduce arrhythmias in a murine model of arrhythmogenic cardiomyopathy?
Absolute Event Rate: 72.2% vs 57.4%
p-value: p=<0.0001
Extracellular vesicles from cardiosphere-derived cells attenuate structural and electrical progression of arrhythmogenic cardiomyopathy in a murine model, highlighting a potential novel immunomodulatory therapeutic approach.
Hypothesis-generating for EV therapy in arrhythmogenic cardiomyopathy; leaves open translation to patients pending clinical trials.
AIMS: Arrhythmogenic cardiomyopathy (ACM) is characterized by progressive loss of cardiomyocytes, and fibrofatty tissue replacement. Extracellular vesicles (EVs) secreted by cardiosphere-derived cells, immortalized, and engineered to express high levels of β-catenin, exert anti-inflammatory, and anti-fibrotic effects. The aim of the current study was to assess efficacy of EVs in an ACM murine model. METHODS AND RESULTS: Four-week-old homozygous knock-in mutant desmoglein-2 (Dsg2mt/mt) were randomized to receive weekly EVs or vehicle for 4 weeks. After 4 weeks, DSG2mt/mt mice receiving EVs showed improved biventricular function (left, P < 0.0001; right, P = 0.0037) and less left ventricular dilation (P < 0.0179). Electrocardiography revealed abbreviated QRS duration (P = 0.0003) and QTc interval (P = 0.0006) in EV-treated DSG2mt/mt mice. Further electrophysiology testing in the EV group showed decreased burden (P = 0.0042) and inducibility of ventricular arrhythmias (P = 0.0037). Optical mapping demonstrated accelerated repolarization (P = 0.0290) and faster conduction (P = 0.0274) in Dsg2mt/mt mice receiving EVs. DSG2mt/mt hearts exhibited reduced fibrosis, less cell death, and preserved connexin 43 expression after EV treatment. Hearts of Dsg2mt/mt mice expressed markedly increased levels of inflammatory cytokines that were, in part, attenuated by EV therapy. The pan-inflammatory transcription factor nuclear factor-κB (NF-κB), the inflammasome sensor NLRP3, and the macrophage marker CD68 were all reduced in EV-treated animals. Blocking EV hsa-miR-4488 in vitro and in vivo reactivates NF-κB and blunts the beneficial effects of EVs. CONCLUSIONS: Extracellular vesicle treatment improved cardiac function, reduced cardiac inflammation, and suppressed arrhythmogenesis in ACM. Further studies are needed prior to translating the present findings to human forms of this heterogenous disease.
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Lin et al. (2021) studied Arrhythmogenic cardiomyopathy (n=36). Extracellular vesicles from immortalized cardiosphere-derived cells vs. Vehicle (IMDM) was evaluated on Left ventricular ejection fraction (p=<0.0001). Extracellular vesicle treatment significantly improved left ventricular ejection fraction (72.2% vs 57.4%, P<0.0001) and reduced ventricular arrhythmias in desmoglein-2 mutant mice.
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