Sarcopenia and Cardiogeriatrics: The Links Between Skeletal Muscle Decline and Cardiovascular Aging

Dimitrios Anagnostou1,2, Nikolaos Theodorakis1,2,3, Christos Hitas1

  • 1Department of Cardiology & 65+ Geriatric Outpatient Clinic, Amalia Fleming General Hospital, 14, 25th Martiou Str., 15127 Melissia, Greece.

Nutrients
|January 25, 2025
PubMed

Insights

Sarcopenia, age-related muscle loss, significantly impacts cardiovascular health in older adults. Understanding shared mechanisms and integrated therapies is crucial for improving quality of life and managing these conditions.

Area of Science:

  • Gerontology
  • Cardiology
  • Muscle Physiology

Background:

  • Sarcopenia, the age-related loss of muscle mass and function, is a growing concern in aging populations, especially those with cardiovascular diseases (CVD).
  • Shared pathophysiological pathways, including inflammaging, hormonal changes, oxidative stress, and inactivity, link sarcopenia and cardiogeriatrics.
  • Existing diagnostic criteria (EWGSOP2, AWGS) show variability, hindering standardization.

Purpose of the Study:

  • To synthesize the complex relationship between sarcopenia and cardiovascular conditions.
  • To review diagnostic tools and shared underlying mechanisms.
  • To explore emerging therapeutic strategies and identify research gaps.

Main Methods:

  • Comprehensive literature review focusing on sarcopenia, cardiogeriatrics, and shared mechanisms.
  • Analysis of diagnostic criteria and assessment tools (DXA, BIA, grip strength, gait speed).
  • Examination of bidirectional interactions between sarcopenia and specific cardiovascular diseases (heart failure, aortic stenosis, atherosclerotic CVD).

Main Results:

  • Sarcopenia and cardiovascular diseases exhibit a bidirectional, mutually exacerbating relationship.
  • Chronic inflammation, hormonal dysregulation, oxidative stress, and inactivity are key shared mechanisms.
  • Emerging therapies targeting mTOR, NAD+ metabolism, and senescence show promise for sarcopenia mitigation.

Conclusions:

  • Integrated interventions combining exercise, nutrition, and novel therapies are essential for improving outcomes.
  • Further longitudinal studies are needed to establish causality and validate advanced treatments.
  • Personalized interventions using multi-omics and machine learning are critical for future management.

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