Biomass of a trophic level increases with maximum body size, but less than proportionally
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Abstract
A recent paper by Enquist and colleagues 1 took a very important step in predicting the ecosystemic effects of species losses on a global scale. Using Metabolic Scaling Theory (MST), they concluded that large-sized species contribute disproportionately to several ecosystem functions. One of their key predictions is that total biomass of animals in a trophic level ( M Tot , using their notation) should increase more than proportionally with its maximum body size ( m max ), following the relationship M Tot ∝ m max 5/4 . Here I argue that this superlinear scaling results from an incorrect representation of the individual size distribution and that the exponent should be 1/4, implying a sublinear scaling. The same reasoning applies to total energy flux or metabolism B Tot , which should be invariant to maximum size according to the energetic equivalence and perfect compensatory responses entailed by MST.
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