Allometric scaling of metabolic rate from molecules and mitochondria to cells and mammals
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Open Access
- 19 February 2002
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 99 (suppl_1) , 2473-2478
- https://doi.org/10.1073/pnas.012579799
Abstract
The fact that metabolic rate scales as the three-quarter power of body mass (M) in unicellular, as well as multicellular, organisms suggests that the same principles of biological design operate at multiple levels of organization. We use the framework of a general model of fractal-like distribution networks together with data on energy transformation in mammals to analyze and predict allometric scaling of aerobic metabolism over a remarkable 27 orders of magnitude in mass encompassing four levels of organization: individual organisms, single cells, intact mitochondria, and enzyme molecules. We show that, whereas rates of cellular metabolism in vivo scale as M−1/4, rates for cells in culture converge to a single predicted value for all mammals regardless of size. Furthermore, a single three-quarter power allometric scaling law characterizes the basal metabolic rates of isolated mammalian cells, mitochondria, and molecules of the respiratory complex; this overlaps with and is indistinguishable from the scaling relationship for unicellular organisms. This observation suggests that aerobic energy transformation at all levels of biological organization is limited by the transport of materials through hierarchical fractal-like networks with the properties specified by the model. We show how the mass of the smallest mammal can be calculated (≈1 g), and the observed numbers and densities of mitochondria and respiratory complexes in mammalian cells can be understood. Extending theoretical and empirical analyses of scaling to suborganismal levels potentially has important implications for cellular structure and function as well as for the metabolic basis of aging.Keywords
This publication has 34 references indexed in Scilit:
- Dependence of Energy Metabolism on the Density of Cells in Culture.Cell Structure and Function, 1998
- Biochemical evidence for nuclear gene involvement in phenotype of non- syndromic deafness associated with mitochondrial 12S rRNA mutationHuman Molecular Genetics, 1996
- Respiration and Growth Defects in Transmitochondrial Cell Lines Carrying the 11778 Mutation Associated with Leber's Hereditary Optic NeuropathyJournal of Biological Chemistry, 1996
- Complex I deficiency is Associated with 3243G:C Mitochondrial DNA in Osteosarcoma Cell CybridsHuman Molecular Genetics, 1996
- Pericellular PO2 and O2 consumption in monolayer cell culturesRespiration Physiology, 1995
- Oxygen consumption rate and mitochondrial density in human melanoma monolayer cultures and multicellular spheroidsInternational Journal of Cancer, 1994
- Low Mitochondrial Free Radical Production Per Unit O2Consumption Can Explain the Simultaneous Presence of High Longevity and High Aerobic Metabolic Rate in BirdsFree Radical Research, 1994
- Taxonomic Differences in the Mammalian Life Span-Body Weight Relationship and the Problem of Brain WeightGerontology, 1980
- Total Cytochrome Oxidase Activity and its Relation to Basal and Maximal MetabolismNature, 1961
- QUANTITATIVE RELATIONS BETWEEN LIVER MITOCHONDRIA METABOLISM AND TOTAL BODY WEIGHT IN MAMMALSAnnals of the New York Academy of Sciences, 1956