Cardiometabolic Aging Driven by Multi-Organ Crosstalk: Mechanisms and Therapeutic Strategies.
S, Z., C, X., Y, S., & X, Z. (2026). Cardiometabolic Aging Driven by Multi-Organ Crosstalk: Mechanisms and Therapeutic Strategies.. International journal of molecular sciences. https://doi.org/10.3390/ijms27156881
S Z, C X, Y S, X Z. Cardiometabolic Aging Driven by Multi-Organ Crosstalk: Mechanisms and Therapeutic Strategies.. International journal of molecular sciences. 2026; doi: 10.3390/ijms27156881
S Z, C X, Y S, et al. Cardiometabolic Aging Driven by Multi-Organ Crosstalk: Mechanisms and Therapeutic Strategies.[J]. International journal of molecular sciences. 2026. DOI: 10.3390/ijms27156881.
@article{s2026,
author = {Zhang S and Xu C and Song Y and Zhang X},
title = {Cardiometabolic Aging Driven by Multi-Organ Crosstalk: Mechanisms and Therapeutic Strategies.},
journal = {International journal of molecular sciences},
year = {2026},
doi = {10.3390/ijms27156881},
note = {PMID: 42589535},
}
TY - JOUR AU - Zhang S AU - Xu C AU - Song Y AU - Zhang X TI - Cardiometabolic Aging Driven by Multi-Organ Crosstalk: Mechanisms and Therapeutic Strategies. T2 - International journal of molecular sciences PY - 2026 DO - 10.3390/ijms27156881 AN - PMID:42589535 ER -
Cardiac senescence is not an isolated organ decline but a systemic consequence driven by pathological crosstalk between the heart and its peripheral metabolic organs. In this review, we discard the traditional organ-centric perspective and construct an integrated framework around multi-organ crosstalk axes, including the epicardial adipose tissue-heart axis, the skeletal muscle-heart axis, the gut-heart axis, and the kidney-heart axis. For each axis, we dissect the local molecular mediators-inflammatory cytokines, lipotoxic metabolites, microbiota-derived compounds such as trimethylamine N-oxide (TMAO), renin-angiotensin-aldosterone system (RAAS) effectors, and extracellular vesicle (EV) cargoes-and illustrate how they converge onto common pathways of oxidative stress, impaired autophagy, and cellular senescence. Importantly, we emphasize that these signals do not operate in isolation; they act synergistically through the circulation, converting local organ dysfunction into systemic cardiac aging via convergence onto shared senescence pathways. By redefining aging as a potentially modifiable multi-organ crosstalk, we propose emerging nodal points-senolytics, myokine mimetics, gut microbiota modulation, RAAS/sodium-glucose cotransporter 2 (SGLT2) inhibitors, and integrated lifestyle strategies-to block pathological crosstalk and delay cardiovascular aging. This framework shifts the research focus from isolated organs to systemic multi-organ crosstalk, providing new insights into cardiometabolic aging.