Cellular senescence as a systems-level driver of cardiovascular ageing

Miao-Miao Wang1, Tao Liu2, Chen-Qin Xu1

  • 1Institute of Vascular Anomalies, Shanghai TCM-Integrated Hospital, Shanghai University of Traditional Chinese Medicine, Shanghai 200082, China.

Insights

Cellular senescence drives cardiovascular aging but is complex and cell-specific. Precision therapies targeting specific cell types and states are needed for healthier aging, rather than uniform anti-senescence approaches.

Area of Science:

  • Cardiovascular Biology
  • Aging Research
  • Cellular Senescence

Background:

  • Cellular senescence is a key factor in cardiovascular aging.
  • Its molecular details, cell-type differences, and clinical applications are not fully understood.
  • Cardiovascular senescence arises from complex interactions between various cell types, influenced by metabolic and immune factors.

Purpose of the Study:

  • To review molecular hallmarks of cardiovascular senescence.
  • To emphasize cell-type specific differences in senescence.
  • To propose a systems-level framework and discuss therapeutic strategies.

Main Methods:

  • Literature review synthesizing recent advances in cardiovascular senescence.
  • Analysis of molecular hallmarks: DNA damage, telomere attrition, mitochondrial dysfunction, SASP, and epigenetic remodeling.
  • Discussion of transcriptional/post-transcriptional regulators and metabolic checkpoints.

Main Results:

  • Cardiovascular senescence is heterogeneous and context-dependent.
  • Key regulators integrate stress, inflammation, and metabolism.
  • An inflammation-coagulation-senescence axis is proposed.
  • Metabolic checkpoints influence vascular smooth muscle cell aging.

Conclusions:

  • Senescence-targeted therapies require precision, considering cell type, disease stage, and metabolic state.
  • Uniform anti-senescence strategies are insufficient.
  • Integrating multi-omics, aging metrics, and machine learning is crucial for targeted interventions and healthier cardiovascular aging.

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