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Thermodynamic and metabolic effects on the scaling of production and population energy use

S. K. Morgan Ernest; Brian J. Enquist; James H. Brown; Eric L. Charnov; James F. Gillooly; Van M. Savage; Ethan P. White; Felisa A. Smith; Elizabeth A. Hadly; John P. Haskell; S. Kathleen Lyons; Brian A. Maurer; Karl J. Niklas; Bruce Tiffney
Ecology Letters · Vol. 6, Issue 11 · pp. 990-995 · 2003

Abstract

Ecosystem properties result in part from the characteristics of individual organisms. How these individual traits scale to impact ecosystem‐level processes is currently unclear. Because metabolism is a fundamental process underlying many individual‐ and population‐level variables, it provides a mechanism for linking individual characteristics with large‐scale processes. Here we use metabolism and ecosystem thermodynamics to scale from physiology to individual biomass production and population‐level energy use. Temperature‐corrected rates of individual‐level biomass production show the same body‐size dependence across a wide range of aerobic eukaryotes, from unicellular organisms to mammals and vascular plants. Population‐level energy use for both mammals and plants are strongly influenced by both metabolism and thermodynamic constraints on energy exchange between trophic levels. Our results show that because metabolism is a fundamental trait of organisms, it not only provides a link between individual‐ and ecosystem‐level processes, but can also highlight other important factors constraining ecological structure and dynamics.

Bibliographic Information

JournalEcology Letters
PublisherWiley
Publication Date2003-11-01
Publication Year2003
Volume6
Issue11
Pages990-995
Document TypeJournal Article
Print ISSN1461-023X
eISSN1461-0248
DOI10.1046/j.1461-0248.2003.00526.x
SubjectEcology & Organismal Biology

Access Information

NARA Access Coverage1998-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/14610248
Publisher PageOpen Publisher Page
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