Cellular and molecular biology of aging endothelial cells

Anthony J Donato1, R Garrett Morgan2, Ashley E Walker3

  • 1University of Utah, Department of Internal Medicine, Division of Geriatrics, Salt Lake City, UT, USA; Veteran's Affairs Medical Center-Salt Lake City, Geriatrics Research Education and Clinical Center, Salt Lake City, UT, USA.

Insights

Aging promotes endothelial dysfunction, a key factor in cardiovascular disease (CVD). This dysfunction stems from increased oxidative stress and inflammation in blood vessels, creating a harmful cycle that accelerates CVD risk in older adults.

Area of Science:

  • Cardiovascular Science
  • Aging Research
  • Molecular Biology

Background:

  • Cardiovascular disease (CVD) is a leading cause of death, with aging as a primary risk factor.
  • Endothelial dysfunction, characterized by reduced nitric oxide bioavailability due to oxidative stress and inflammation, is a major age-related arterial change contributing to CVD.
  • Aging exacerbates endothelial oxidative stress and inflammation, creating a vicious cycle that impairs vascular function.

Purpose of the Study:

  • To review the macro-mechanistic processes of oxidative stress and inflammation contributing to age-related endothelial dysfunction.
  • To discuss cellular and molecular events driving the cycle of inflammation and oxidative stress in aged endothelium.
  • To explore emerging concepts like senescence, genomic instability, and altered energy-sensing pathways in the context of endothelial dysfunction.

Main Methods:

  • Literature review of studies on aging, endothelial function, oxidative stress, inflammation, and related molecular pathways.
  • Analysis of cellular and molecular mechanisms underlying age-related changes in the endothelium.
  • Synthesis of current knowledge on senescence, genomic instability, and energy-sensing pathways in vascular aging.

Main Results:

  • Aging increases endothelial oxidative stress via NADPH oxidase, uncoupled eNOS, and mitochondrial respiration, while diminishing antioxidant defenses.
  • NFkB activation by redox changes promotes inflammation, creating a feed-forward cycle that suppresses endothelial function.
  • Senescence, genomic instability, and altered SIRT-1, AMPK, and mTOR pathways contribute to the pro-inflammatory endothelial phenotype in aging.

Conclusions:

  • Understanding the mechanisms of age-related endothelial dysfunction is crucial for developing interventions to mitigate CVD risk in the elderly.
  • Oxidative stress, inflammation, senescence, genomic instability, and altered energy-sensing pathways are key contributors to endothelial dysfunction with aging.
  • Targeting these pathways offers potential strategies for pharmacological and lifestyle interventions to improve vascular health in older adults.

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