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Role of brain serotonin dysfunction in the pathophysiology of congestive heart failure
Lei Li1, Sachio Morimoto, Sachiko Take
1Department of Clinical Pharmacology, Graduate School of Medical Sciences, Kyushu University, Fukuoka, Japan.
Insights
Genetic background influences dilated cardiomyopathy (DCM) outcomes. Serotonin dysfunction in BALB/c mice exacerbated heart failure, while treatments improved symptoms, suggesting a link between serotonin and DCM progression.
Area of Science:
- Cardiovascular Genetics
- Neuroscience
- Pharmacology
Background:
- Dilated cardiomyopathy (DCM) presents diverse phenotypes, influenced by genetic and environmental factors.
- Understanding genetic modifiers of DCM is crucial for predicting disease progression and outcomes.
Purpose of the Study:
- To investigate genetic factors influencing DCM phenotypes in monogenic inherited human DCM.
- To explore the role of brain serotonin dysfunction in DCM progression and potential therapeutic targets.
Main Methods:
- Created knock-in mice with a sarcomeric protein mutation causing DCM on BALB/c and C57Bl/6 genetic backgrounds.
- Assessed cardiac function, heart failure symptoms, and survival rates.
- Administered paroxetine and buspirone to DCM mice on the BALB/c background to evaluate therapeutic effects.
Main Results:
- DCM mice on BALB/c background developed congestive heart failure (HF), unlike C57Bl/6 mice which died suddenly despite cardiac dysfunction.
- BALB/c mice exhibited brain serotonin dysfunction linked to tryptophan hydroxylase 2 (TPH2) gene polymorphism.
- Paroxetine and buspirone treatment improved cardiac function and reduced HF symptoms in BALB/c DCM mice.
Conclusions:
- Genetic background, specifically involving brain serotonin dysfunction (e.g., TPH2 SNP), significantly impacts DCM phenotype, particularly congestive HF development.
- Targeting serotonin pathways with antidepressants/anxiolytics may offer therapeutic benefits for DCM patients with specific genetic profiles.
Abstract:
Inherited or non-inherited dilated cardiomyopathy (DCM) patients develop varied disease phenotypes leading to death after developing congestive heart failure (HF) or sudden death with mild or no overt HF symptoms, suggesting that environmental and/or genetic factors may modify the disease phenotype of DCM. In this study, we sought to explore unknown genetic factors affecting the disease phenotype of monogenic inherited human DCM. Knock-in mice bearing a sarcomeric protein mutation that causes DCM were created on different genetic backgrounds; BALB/c and C57Bl/6. DCM mice on the BALB/c background showed cardiac enlargement and systolic dysfunction and developed congestive HF before died. In contrast, DCM mice on the C57Bl/6 background developed no overt HF symptoms and died suddenly, although they showed considerable cardiac enlargement and systolic dysfunction. BALB/c mice have brain serotonin dysfunction due to a single nucleotide polymorphism (SNP) in tryptophan hydroxylase 2 (TPH2). Brain serotonin dysfunction plays a critical role in depression and anxiety and BALB/c mice exhibit depression- and anxiety-related behaviors. Since depression is common and associated with poor prognosis in HF patients, we examined therapeutic effects of anti-depression drug paroxetine and anti-anxiety drug buspirone that could improve the brain serotonin function in mice. Both drugs reduced cardiac enlargement and improved systolic dysfunction and symptoms of severe congestive HF in DCM mice on the BALB/c background. These results strongly suggest that genetic backgrounds involving brain serotonin dysfunction, such as TPH2 gene SNP, may play an important role in the development of congestive HF in DCM.
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