Sepsis-Induced Cardiomyopathy and Cardiac Arrhythmias: Pathophysiology and Implications for Novel Therapeutic
Konstantinos Pamporis1,2, Paschalis Karakasis3, Antonia Pantelidaki1
1Department of Pharmacology, University of Athens, 75 Mikras Asias Avenue, 11527 Goudi, Greece.
Insights
Sepsis-induced cardiomyopathy (SICM) involves cardiac dysfunction and arrhythmias, with no unified definition. Emerging therapies target inflammation, mitochondrial function, and microcirculation for improved sepsis patient outcomes.
Area of Science:
- Cardiology
- Sepsis Research
- Molecular Medicine
Background:
- Sepsis can cause multi-organ damage, including sepsis-induced cardiomyopathy (SICM).
- SICM is characterized by impaired left ventricular ejection fraction, with no universally agreed-upon definition.
- Sepsis-induced arrhythmias, especially atrial fibrillation, are common and linked to poor outcomes.
Purpose of the Study:
- To review the molecular pathways implicated in SICM and sepsis-induced arrhythmogenesis.
- To discuss current and emerging therapeutic strategies for managing SICM and related arrhythmias.
- To highlight areas for future research, including definition standardization and personalized treatment.
Main Methods:
- Literature review of molecular mechanisms in SICM and arrhythmogenesis.
- Analysis of established and experimental therapeutic interventions.
- Discussion of future research directions in sepsis and cardiac dysfunction.
Main Results:
- Multiple molecular pathways contribute to SICM, including inflammation, mitochondrial dysfunction, and autonomic imbalance.
- Key arrhythmogenic mechanisms involve inflammation, electrolyte disturbances, and calcium mishandling.
- Investigational therapies include anti-inflammatory agents, mitochondrial modulators, and gene-regulating approaches.
Conclusions:
- Standardizing the SICM definition is crucial for consistent diagnosis and research.
- Emerging therapeutics show promise in targeting diverse pathways involved in sepsis-related cardiac dysfunction.
- Personalized treatment strategies and identification of novel molecular targets are essential for improving SICM outcomes.
Abstract:
In the context of multi-organ involvement in sepsis, cardiac toxicity is manifested as sepsis-induced cardiomyopathy (SICM). To date, no unified SICM definition exists, though a left ventricular ejection fraction ≤ 50% and/or an absolute drop ≥ 10% from baseline are the most widely accepted components. Several molecular pathways have been associated with SICM, including (i) pro-inflammatory mediator-induced cardiac depression; (ii) sarcolemmal membrane dysfunction; (iii) autonomic nervous system (ANS) imbalance; (iv) blunted cardiovascular response to catecholamines; (v) dysfunctional intracellular calcium handling; (vi) mitochondrial dysfunction; (vii) metabolic reprogramming; and (viii) disturbed endothelial and microcirculatory function. Atrial and ventricular arrhythmias-particularly atrial fibrillation-commonly complicate disease management and are associated with adverse outcomes. Key mechanisms outlining sepsis-induced arrhythmogenesis are (i) inflammation; (ii) electrolyte imbalances; (iii) myocardial ischemia; (iv) QT prolongation/dispersion; (v) adrenergic overactivation; (vi) calcium mishandling; and (vii) fever-induced arrhythmogenesis in Brugada. Established therapeutic approaches include prompt treatment with antibiotics, hemodynamic optimization, and/or selective use of beta-blockers. Furthermore, several molecules are currently being investigated targeting numerous pathways activated in sepsis. Vitamin C, ginsenoside Rc, Schistosoma Japonicum cystatin, and gasmerdin-D inhibitor Y2 exert anti-inflammatory actions, while melatonin and α-ketoglutarate regulate mitochondrial homeostasis. Triiodothyronine targets microcirculatory optimization and regulates protective pathways against stress-related cell death. Engineered exosomes may facilitate targeted drug delivery, inflammatory response modulation, and activation of pathways related to cell survival, while sodium octanoate exhibits anti-inflammatory actions coupled with improved energy metabolism. Finally, gene-regulating therapies aiming at inflammatory response optimization have also been proposed and are currently under development. Future research should aim to standardize the SICM definition, translate emerging therapeutics into clinical practice, identify novel molecular targets, and implement personalized treatment strategies for SICM.
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