Beyond the ‘3/4‐power law’: variation in the intra‐and interspecific scaling of metabolic rate in animals
Top Cited Papers
- 1 November 2005
- journal article
- review article
- Published by Wiley in Biological Reviews
- Vol. 80 (4) , 611-662
- https://doi.org/10.1017/s1464793105006834
Abstract
In this review I show that the ‘3/4‐power scaling law’ of metabolic rate is not universal, either within or among animal species. Significant variation in the scaling of metabolic rate with body mass is described mainly for animals, but also for unicells and plants. Much of this variation, which can be related to taxonomic, physiological, and/or environmental differences, is not adequately explained by existing theoretical models, which are also reviewed. As a result, synthetic explanatory schemes based on multiple boundary constraints and on the scaling of multiple energy‐using processes are advocated. It is also stressed that a complete understanding of metabolic scaling will require the identification of both proximate (functional)and ultimate (evolutionary)causes. Four major types of intraspecific metabolic scaling with body mass are recognized [based on the power functionR=aMb, whereRis respiration (metabolic) rate,ais a constant,Mis body mass, andbis the scaling exponent]: Type I: linear, negatively allometric (bb=1); Type III: nonlinear, ontogenetic shift from isometric (b=1), or nearly isometric, to negatively allometric (b 1) to one or two later phases of negative allometry (b<1). Ontogenetic changes in the metabolic intensity of four component processes (i.e.growth, reproduction, locomotion, and heat production) appear to be important in these different patterns of metabolic scaling. These changes may, in turn, be shaped by age (size)‐specific patterns of mortality. In addition, major differences in interspecific metabolic scaling are described, especially with respect to mode of temperature regulation, body‐size range, and activity level. A‘metabolic‐level boundaries hypothesis’ focusing on two major constraints (surface‐area limits on resource/waste exchange processes and mass/volume limits on power production) can explain much, but not all of this variation. My analysis indicates that further empirical and theoretical work is needed to understand fully the physiological and ecological bases for the considerable variation in metabolic scaling that is observed both within and among species.Recommended approaches for doing this are discussed. I conclude that the scaling of metabolism is not the simple result of a physical law, but rather appears to be the more complex result of diverse adaptations evolved in the context of both physico‐chemical and ecological constraints.Keywords
This publication has 470 references indexed in Scilit:
- Relationship between body size, Na+-K+-ATPase activity, and membrane lipid composition in mammal and bird kidneyAmerican Journal of Physiology-Regulatory, Integrative and Comparative Physiology, 2005
- Ecology's Big, Hot IdeaPLoS Biology, 2004
- Body size effects on tissue metabolic rate and ischemia tolerance in neonatal rat and mouse heartsThermochimica Acta, 2004
- TOWARD A METABOLIC THEORY OF ECOLOGYEcology, 2004
- Proton conductance and fatty acyl composition of liver mitochondria correlates with body mass in birdsBiochemical Journal, 2003
- Allometric scaling and proportion regulation in the freshwater planarian Schmidtea mediterraneaDevelopmental Dynamics, 2003
- The effects of activity, temperature and mass on the respiratory metabolism of the squid, Illex illecebrosusJournal of the Marine Biological Association of the United Kingdom, 1984
- The Dependence of Crustacean Respiration Rate on Body Mass and Habitat TemperatureInternational Review of Hydrobiology, 1980
- Physiological EnergeticsPublished by Elsevier ,1979
- RESPIRATION OF A VERTICALLY MIGRATING MARINE CRUSTACEAN EUPHAUSIA PACIFICA HANSEN1Limnology and Oceanography, 1967