Systemic aging fuels heart failure: Molecular mechanisms and therapeutic avenues

Zhuyubing Fang1, Umar Raza2, Jia Song3

  • 1Cardiovascular Department of Internal Medicine, Karamay Hospital of People's Hospital of Xinjiang Uygur Autonomous Region, Karamay, Xinjiang Uygur Autonomous Region, China.

ESC Heart Failure
|July 22, 2024
PubMed

Insights

Systemic aging drives cardiac dysfunction and heart failure (HF) in the elderly through cellular stress, vascular changes, and metabolic shifts. Interventions targeting aging processes, including lifestyle changes and novel therapeutics, show promise for preserving cardiac function.

Area of Science:

  • Cardiology and Gerontology: Focuses on the intersection of aging processes and cardiovascular health, particularly in the elderly population.

Background:

  • Systemic aging leads to cardiac structural and functional decline, increasing susceptibility to heart failure (HF) in older adults.
  • Age-related cardiac dysfunction is driven by cumulative genomic, epigenetic, oxidative, inflammatory, and regenerative stresses, alongside cellular senescence.
  • Vascular aging, metabolic dysregulation, and chronic inflammation further exacerbate cardiac aging and HF risk.

Purpose of the Study:

  • To elucidate the multifaceted mechanisms through which systemic aging contributes to cardiac dysfunction and HF in the elderly.
  • To explore the impact of age-related vascular and metabolic changes on cardiac health.
  • To review current and emerging interventions targeting systemic aging for the prevention and treatment of HF.

Main Methods:

  • Comprehensive review of literature on aging, cardiovascular physiology, and heart failure pathophysiology.
  • Analysis of the molecular and cellular pathways implicated in age-related cardiac and vascular dysfunction.
  • Examination of the role of comorbidities and systemic inflammation in accelerating cardiac aging.
  • Evaluation of lifestyle interventions and therapeutic strategies aimed at mitigating aging-related cardiac decline.

Main Results:

  • Aging induces left ventricular hypertrophy, diastolic dysfunction, atrial dilation, fibrosis, and amyloidosis, elevating HF risk.
  • Vascular aging contributes to endothelial dysfunction, arterial stiffness, and impaired angiogenesis, straining the heart.
  • Metabolic aging disrupts glucose and lipid metabolism, causing insulin resistance, mitochondrial dysfunction, and cardiomyocyte lipid accumulation.
  • Chronic inflammation and senescence-associated secretory phenotype worsen cardiac dysfunction, compounded by comorbidities like CAD, hypertension, and diabetes.
  • Lifestyle interventions (exercise, specific diets) and therapeutics (senolytics, antioxidants, anti-inflammatories, metabolic rejuvenators) demonstrate potential to reverse cardiac remodeling and alleviate HF burden.

Conclusions:

  • Systemic aging is a significant, modifiable risk factor for heart failure in the elderly.
  • A holistic approach addressing cellular, vascular, and metabolic aging is crucial for managing age-related cardiac dysfunction.
  • Targeting aging pathways through lifestyle modifications and innovative therapies offers a promising strategy to preserve cardiac function and reduce HF incidence in aging populations.

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