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Genetic Basis of Dilated Cardiomyopathy in Dogs and Its Potential as a Bidirectional Model
Karen R Gaar-Humphreys1,2, Talitha C F Spanjersberg1,2,3, Giorgia Santarelli3
1Department of Cardiology, Division Heart & Lungs, University Medical Center Utrecht, Utrecht University, 3508 GA Utrecht, The Netherlands.
Insights
Dilated cardiomyopathy (DCM) affects both humans and dogs. This review explores canines as a natural model for DCM, examining genetics, histopathology, and induced pluripotent stem cells for disease insights and treatments.
Area of Science:
- Cardiovascular Research
- Comparative Pathology
- Genetics
Background:
- Dilated cardiomyopathy (DCM) is a significant cause of cardiac death in humans and dogs.
- Canine DCM shares disease progression and subtypes with human DCM, yet its genetic basis is less understood.
- Existing research on human genetic cardiomyopathies heavily utilizes induced pluripotent stem cells (iPSCs), a method not yet fully adapted for canine studies.
Purpose of the Study:
- To evaluate the feasibility of using canines as a naturally occurring, bidirectional disease model for DCM in both species.
- To analyze the histopathology of the myocardium in three distinct dog breeds with DCM compared to control tissues.
- To summarize the known genetic factors contributing to DCM in both canines and humans.
Main Methods:
- Comparative analysis of canine and human DCM genetics.
- Histopathological evaluation of myocardial tissue from three dog breeds with DCM versus controls.
- Review of existing literature on canine and human DCM, including iPSC applications.
Main Results:
- Canine DCM exhibits breed-specific phenotypes, offering unique models with reduced genetic variance compared to human DCM.
- Both genetic and environmental factors contribute to DCM development in dogs and humans.
- iPSCs present a promising avenue for investigating genetic variants in canine DCM pathogenesis.
Conclusions:
- Canines represent a valuable, naturally occurring model for studying DCM, facilitating bidirectional research between species.
- Understanding canine DCM can improve breeding practices and enhance care for both canine and human patients.
- Further research using canine iPSCs can elucidate DCM pathogenesis and inform novel treatment strategies.
Abstract:
Cardiac disease is a leading cause of death for both humans and dogs. Genetic cardiomyopathies, including dilated cardiomyopathy (DCM), account for a proportion of these cases in both species. Patients may suffer from ventricular enlargement and systolic dysfunction resulting in congestive heart failure and ventricular arrhythmias with high risk for sudden cardiac death. Although canine DCM has similar disease progression and subtypes as in humans, only a few candidate genes have been found to be associated with DCM while the genetic background of human DCM has been more thoroughly studied. Additionally, experimental disease models using induced pluripotent stem cells have been widely adopted in the study of human genetic cardiomyopathy but have not yet been fully adapted for the in-depth study of canine genetic cardiomyopathies. The clinical presentation of DCM is extremely heterogeneous for both species with differences occurring based on sex predisposition, age of onset, and the rate of disease progression. Both genetic predisposition and environmental factors play a role in disease development which are identical in dogs and humans in contrast to other experimental animals. Interestingly, different dog breeds have been shown to develop distinct DCM phenotypes, and this presents a unique opportunity for modeling as there are multiple breed-specific models for DCM with less genetic variance than human DCM. A better understanding of DCM in dogs has the potential for improved selection for breeding and could lead to better overall care and treatment for human and canine DCM patients. At the same time, progress in research made for human DCM can have a positive impact on the care given to dogs affected by DCM. Therefore, this review will analyze the feasibility of canines as a naturally occurring bidirectional disease model for DCM in both species. The histopathology of the myocardium in canine DCM will be evaluated in three different breeds compared to control tissue, and the known genetics that contributes to both canine and human DCM will be summarized. Lastly, the prospect of canine iPSCs as a novel method to uncover the contributions of genetic variants to the pathogenesis of canine DCM will be introduced along with the applications for disease modeling and treatment.
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