The scaling relationship between metabolic rate and body mass is a foundational principle in biology that links physiology, ecology, and evolution. From early empirical studies—most notably Kleiber's observation of 3/4 power law scaling—to contemporary theoretical frameworks, decades of research have sought to explain why organismal metabolic rate increases more slowly than body mass. This review examines variation in scaling exponents across the tree of life and explores how cellular features, including cell size, mitochondrial dynamics, and energy storage, shape whole-organism metabolism. We describe how dynamic metabolic rates during embryonic development reveal patterns of energy use during growth, while deviations in metabolic scaling across species and disease states indicate how biological systems balance energy constraints with adaptive flexibility. Together, these insights position cells as the critical interface linking molecular bioenergetics to organismal function, evolution, and ecology.
Piñeros et al. (Tue,) studied this question.
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