Abstract / Summary
Background: Arrhythmogenic cardiomyopathy (ACM) is a genetic and phenotypically heterogeneous myocardial disorder characterized by progressive cardiomyocyte loss, immune cell infiltration, and fibro-fatty replacement of the ventricular myocardium, with an increased risk of sudden cardiac death (SCD), predominantly caused by mutations in cardiac desmosomal genes including PKP2, DSP, and DSG2. We previously described the pivotal role of NFκB and CCR2+ cardiac macrophage-triggered inflammation in ACM pathogenesis.
Methods: WT or Dsg2mut/mut mice were treated with either isotype control or anti-CD14 antibody once a week for the described treatment period (4 or 8 weeks). At the end of the treatment period, disease characteristics were assessed by echocardiography, electrocardiography, histology, immunofluorescence, positron emission tomography (PET) imaging and single-cell transcriptomics.
Results: Here, we demonstrate the efficacy of neutralizing CD14 signaling, an important mediator of inflammatory macrophage activation, in attenuating ACM disease in vivo. Additionally, we elucidate shifts in the cellular and transcriptomic landscapes that occur following anti-CD14 antibody treatment in a well-established mouse model of ACM and identify substantial reductions in inflammatory macrophage and pro-fibrotic fibroblast populations.
Conclusion: This study provides evidence that blockade of CD14 can attenuate the ACM disease phenotype. It may do so by inhibiting macrophage-based activation and inflammation, while also altering the transcriptional state of other important cell types. Collectively, these findings suggest that CD14 inhibition may be an effective option for ACM, which should be explored in early-phase clinical studies.