Open access · CC-BY
via OpenAlex
Cellular allostatic load is linked to increased energy expenditure and accelerated biological aging
Natalia Bobba‐Alves, Gabriel Sturm, Jue Lin, Sarah A. Ware, Kalpita R. Karan, Anna S. Monzel, Céline Bris, Vincent Procaccio, Guy Lenaers, Albert Higgins‐Chen, Morgan E. Levine, Steve Horvath, Balaji Santhanam, Brett A. Kaufman, Michio Hirano
Psychoneuroendocrinology · 2023 · ▲ 72 citations
Telomere attrition
Epigenetic alterations
Mitochondrial dysfunction
Chronic inflammation
Cell culture / in vitro
Human
Abstract
Stress triggers anticipatory physiological responses that promote survival, a phenomenon termed allostasis. However, the chronic activation of energy-dependent allostatic responses results in allostatic load, a dysregulated state that predicts functional decline, accelerates aging, and increases mortality in humans. The energetic cost and cellular basis for the damaging effects of allostatic load have not been defined. Here, by longitudinally profiling three unrelated primary human fibroblast lines across their lifespan, we find that chronic glucocorticoid exposure increases cellular energy expenditure by ∼60%, along with a metabolic shift from glycolysis to mitochondrial oxidative phosphorylation (OxPhos). This state of stress-induced hypermetabolism is linked to mtDNA instability, non-linearly affects age-related cytokines secretion, and accelerates cellular aging based on DNA methylation clocks, telomere(definition) shortening rate, and reduced lifespan. Pharmacologically normalizing OxPhos activity while further increasing energy expenditure exacerbates the accelerated aging phenotype, pointing to total energy expenditure as a potential driver of aging dynamics. Together, our findings define bioenergetic and multi-omic recalibrations of stress adaptation, underscoring increased energy expenditure and accelerated cellular aging as interrelated features of cellular allostatic load.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1016/j.psyneuen.2023.106322
- Canonical
- link ↗
- Fetched
- 2026-07-25 MST
Cite this
APA
Bobba‐Alves, N., Sturm, G., Lin, J., Ware, S.A., Karan, K.R., Monzel, A.S., Bris, C., Procaccio, V., Lenaers, G., Higgins‐Chen, A., Levine, M.E., Horvath, S., Santhanam, B., Kaufman, B.A., Hirano, M., Epel, E.S., & Picard, M. (2023). Cellular allostatic load is linked to increased energy expenditure and accelerated biological aging. <em>Psychoneuroendocrinology</em>. https://doi.org/10.1016/j.psyneuen.2023.106322
Vancouver
Bobba‐Alves N, Sturm G, Lin J, Ware SA, Karan KR, Monzel AS, et al. Cellular allostatic load is linked to increased energy expenditure and accelerated biological aging. Psychoneuroendocrinology. 2023. doi:10.1016/j.psyneuen.2023.106322.
BibTeX
@article{natalia2023Cellul,
title = {Cellular allostatic load is linked to increased energy expenditure and accelerated biological aging},
author = {Natalia Bobba‐Alves and Gabriel Sturm and Jue Lin and Sarah A. Ware and Kalpita R. Karan and Anna S. Monzel and Céline Bris and Vincent Procaccio and Guy Lenaers and Albert Higgins‐Chen and Morgan E. Levine and Steve Horvath and Balaji Santhanam and Brett A. Kaufman and Michio Hirano and Elissa S. Epel and Martin Picard},
journal = {Psychoneuroendocrinology},
year = {2023},
doi = {10.1016/j.psyneuen.2023.106322},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
HORMONES 2009
Open access · OA
Psychological and metabolic stress: A recipe for accelerated cellular aging?
Preprints.org 2019
Preprint · CC-BY
The Matrisome during Aging and Longevity: A Systems-Level Approach towards Defining Matreotypes Promoting Healthy Aging
Aging cell 2026
Open access · OA
Long-Term Stress Adaptation as a Highly-Conserved Key Factor in Yeast Aging.
2024
Citation only
Molecular and Cellular Basis of Aging
Frontiers in nutrition 2025
Open access · OA
Targeting aging hallmarks in brain health within the framework of preventive medicine: mechanistic insights into naringenin's role in longevity, synaptic function, and cellular homeostasis.
Frontiers in Cardiovascular Medicine 2025
Open access · CC-BY