Energetic constraints on growth across biological scales

Growth requires the continuous conversion of environmental resources into biomass and usable energy. Despite the high energetic efficiency of oxidative phosphorylation, the ability of cells and organisms to expand metabolism during growth is constrained by multiple physical and physiological factors. Increasing evidence suggests that metabolic strategies during growth are shaped not solely by energetic efficiency but by a series of constraints operating across biological scales: environmental factors such as temperature and oxygen availability impose external limits on metabolic demand and supply. At the organismal level, transport networks constrain the distribution of oxygen and nutrients. Within cells, geometric scaling, membrane allocation limits, biosynthetic capacity, and proteome investment restrict oxidative metabolism. Finally, recent thermodynamic analyses suggest that these diverse constraints may converge on a more general limit on free energy dissipation by cells. Together, these perspectives support the view that energetic constraints not only limit growth but actively shape how growth is achieved across biological scales. Under such constraints, cells frequently adopt alternative metabolic strategies, mainly increased reliance on fermentative pathways. Integrating energetic constraints across scales provides a unified framework for understanding metabolic strategies during growth.

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Publication Details

Journal
Seminars in Cell and Developmental Biology
Published
2026-09-11
DOI
https://doi.org/10.1016/j.semcdb.2026.103698
Primary Topic
Physiological and biochemical adaptations
Type
article
Field-Weighted Citation Impact
0.00

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article

Energetic constraints on growth across biological scales

Youmna Atieh, Thomas Lecuit
Seminars in Cell and Developmental Biology
Physiological and biochemical adaptations
article

Energetic constraints on growth across biological scales

Youmna Atieh, Thomas Lecuit
article en

Abstract

Growth requires the continuous conversion of environmental resources into biomass and usable energy. Despite the high energetic efficiency of oxidative phosphorylation, the ability of cells and organisms to expand metabolism during growth is constrained by multiple physical and physiological factors. Increasing evidence suggests that metabolic strategies during growth are shaped not solely by energetic efficiency but by a series of constraints operating across biological scales: environmental factors such as temperature and oxygen availability impose external limits on metabolic demand and supply. At the organismal level, transport networks constrain the distribution of oxygen and nutrients. Within cells, geometric scaling, membrane allocation limits, biosynthetic capacity, and proteome investment restrict oxidative metabolism. Finally, recent thermodynamic analyses suggest that these diverse constraints may converge on a more general limit on free energy dissipation by cells. Together, these perspectives support the view that energetic constraints not only limit growth but actively shape how growth is achieved across biological scales. Under such constraints, cells frequently adopt alternative metabolic strategies, mainly increased reliance on fermentative pathways. Integrating energetic constraints across scales provides a unified framework for understanding metabolic strategies during growth.

Seminars in Cell and Developmental BiologyVol. 185-187
Centre National de la Recherche Scientifique (FR), Aix-Marseille Université (FR), Living Systems (United States) (US)
Fondation ARC pour la Recherche sur le Cancer, H2020 Marie Skłodowska-Curie Actions
Openalex Percentile: Top 11%
Physiological and biochemical adaptations
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Energetic constraints on growth across biological scales — Youmna Atieh, Thomas Lecuit · Seminars in Cell and Developmental Biology (2026) | TGRS Research Map | TGRS