The interplay of inflammation, exosomes and Ca2+ dynamics in diabetic cardiomyopathy
Santosh K Sanganalmath1, Shubham Dubey2, Sudhakar Veeranki3
1Department of Internal Medicine, Division of Cardiovascular Medicine, University of Nevada Las Vegas School of Medicine, Las Vegas, NV, 89102, USA. santosh.sanganalmath@unlv.edu.
Insights
Diabetic cardiomyopathy (DCM) involves inflammation and altered calcium handling, impacting heart function. Exosomes and miRNAs may play a role, but their precise link to calcium regulation in DCM requires further study for therapeutic insights.
Area of Science:
- Cardiology
- Endocrinology
- Molecular Biology
Background:
- Diabetes mellitus is a major risk factor for cardiovascular disease, leading to high morbidity and mortality.
- Diabetic cardiomyopathy (DCM) is characterized by reduced cardiac contractility, fibrosis, diastolic dysfunction, and heart failure.
- Inflammation, altered calcium (Ca2+) handling, and cardiomyocyte loss are key factors in DCM development.
Purpose of the Study:
- To review the evolving understanding of DCM pathophysiology.
- To explore the role of exosomes in intercellular communication within DCM.
- To investigate the intricate relationship between inflammatory mediators, exosomes, miRNAs, and Ca2+ handling in DCM.
Main Methods:
- Literature review of existing research on diabetic cardiomyopathy.
- Analysis of studies investigating the role of exosomes and miRNAs in cell-to-cell communication.
- Examination of the interplay between inflammatory responses and Ca2+ signaling in the heart.
Main Results:
- Exosomes facilitate intercellular communication via biomolecules like miRNAs and proteins in DCM.
- Inflammatory responses and Ca2+ signaling are interrelated and dysregulated in DCM.
- While inflammatory mediators, miRNAs, and exosomes interact with Ca2+ regulators, their specific roles in DCM pathogenesis are not fully elucidated.
Conclusions:
- Understanding the precise mechanisms linking exosomes, inflammation, and Ca2+ handling in DCM is crucial.
- Further research is needed to clarify these complex interactions.
- Restoring cardiac Ca2+ homeostasis presents potential therapeutic targets for DCM treatment.
Abstract:
Diabetes mellitus is one of the prime risk factors for cardiovascular complications and is linked with high morbidity and mortality. Diabetic cardiomyopathy (DCM) often manifests as reduced cardiac contractility, myocardial fibrosis, diastolic dysfunction, and chronic heart failure. Inflammation, changes in calcium (Ca2+) handling and cardiomyocyte loss are often implicated in the development and progression of DCM. Although the existence of DCM was established nearly four decades ago, the exact mechanisms underlying this disease pathophysiology is constantly evolving. Furthermore, the complex pathophysiology of DCM is linked with exosomes, which has recently shown to facilitate intercellular (cell-to-cell) communication through biomolecules such as micro RNA (miRNA), proteins, enzymes, cell surface receptors, growth factors, cytokines, and lipids. Inflammatory response and Ca2+ signaling are interrelated and DCM has been known to adversely affect many of these signaling molecules either qualitatively and/or quantitatively. In this literature review, we have demonstrated that Ca2+ regulators are tightly controlled at different molecular and cellular levels during various biological processes in the heart. Inflammatory mediators, miRNA and exosomes are shown to interact with these regulators, however how these mediators are linked to Ca2+ handling during DCM pathogenesis remains elusive. Thus, further investigations are needed to understand the mechanisms to restore cardiac Ca2+ homeostasis and function, and to serve as potential therapeutic targets in the treatment of DCM.
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