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March 8, 20266 citations

Senescence-related myocardial dysfunction: keeping a young heart.

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RAR. A. AjjanUniversity of LeedsRHRobert T R HucksteppUniversity of WarwickNANaveed AkbarUniversity of Oxford

Key Result

Myocardial ageing involves cellular senescence, mitochondrial dysfunction, and fibrosis, highlighting the need to differentiate physiological changes from early pathological changes.

Key Points

  • To explore the impact of aging on myocardial function, including physiological and pathological changes.
  • Discussion of alterations in cellular and tissue function of the heart with age.
  • Examination of molecular influences such as non-coding RNAs and extracellular vesicles.
  • Analysis of how various factors like fibrosis and vascular abnormalities affect myocardial health.
  • Identified cellular senescence and mitochondrial dysfunction as key contributors to myocardial aging.
  • Found that accumulated reactive oxygen species and telomere shortening limit heart regeneration.
  • Recognized that compensatory hypertrophy increases myocardial stiffness and dysfunction.

PICO

P
Population
Senescence-related myocardial dysfunction
E
Exposure / Comparator
Myocardial ageing and senescence

Abstract

The heart, a vital organ, works without interruption and constantly adjusts to the ever-changing demands on our body. It adapts to physiological and pathological changes, including exercise and emotional state, as well as metabolic, respiratory, and vascular abnormalities. The pumping action of the heart is determined by the health of the myocardium, which undergoes changes with ageing that are both under-investigated and incompletely understood, potentially impacting our approach to pathological conditions. Here, the alterations in cellular, tissue, and gross physiological function of the heart with age are discussed. At the molecular level, non-coding RNAs influence cellular senescence, and extracellular vesicles induce fibrosis through matrix remodelling. Mitochondrial dysfunction and altered fatty acid oxidation reduce cellular energetics, whilst accumulation of reactive oxygen species and steatosis, as well as telomere shortening coupled with reduced autophagy, limit the myocardium's regenerative capability. Loss of cardiomyocytes, combined with senescence, requires compensatory hypertrophy, inducing myocardial stiffness and altered muscle function. In addition to these direct alterations in myocardial characteristics with ageing, other factors that can affect the myocardium indirectly are addressed, including valve calcification, resulting in regurgitation and/or stenosis; vascular abnormalities, reducing compliance and exacerbating hypertension; fibrosis leading to cardiac arrhythmias; and autonomic dysregulation, reducing cardiac adaptability. Finally, potential modulation of cardiac ageing is discussed whilst also addressing which senescent modifications should be considered as ageing-related physiological changes of the myocardium. A better understanding of myocardial ageing will differentiate physiological changes from early, preventable, and reversible pathological changes, consequently helping to optimize management of individuals with or at risk of myocardial disease by taking into account diverse trajectories of myocardial ageing.

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Cite This Study

Ajjan et al. (2026) conducted a review in Senescence-related myocardial dysfunction. Myocardial ageing and senescence was evaluated. Myocardial ageing involves cellular senescence, mitochondrial dysfunction, and fibrosis, highlighting the need to differentiate physiological changes from early pathological changes.

synapsesocial.com/papers/69ad1304e7e9681137aa8e59https://doi.org/10.1093/eurheartj/ehag095
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