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Allometric engineering is the process of experimentally shifting the scaling relationships, for body size or shape, in a population of organisms. More specifically, the process of experimentally breaking the tight covariance evident among component traits of a complex phenotype by altering the variance of one trait relative to another.
Hu and Hayton in 2001 discussed whether the basal metabolic rate scale is a 2 ⁄ 3 or 3 ⁄ 4 power of body mass. The exponent of 3 ⁄ 4 might be used for substances that are eliminated mainly by metabolism, or by metabolism and excretion combined, while 2 ⁄ 3 might apply for drugs that are eliminated mainly by renal excretion. [38]
Through extensive research on various animals' metabolic rates, he found that a 3/4 power scaling provided a better fit to the empirical data than the 2/3 power. [2] His findings provided the groundwork for understanding allometric scaling laws in biology, leading to the formulation of the Metabolic Scaling Theory and the later work by West ...
Various authors have proposed at least eight different types of mechanisms that predict an allometric scaling exponent of either 2 ⁄ 3 or 3 ⁄ 4. The majority view is that while the 3 ⁄ 4 exponent is indeed the mean observed exponent within and across taxa, there is intra- and interspecific variability in the exponent that can include ...
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If the sides of the cube were multiplied by 2, its surface area would be multiplied by the square of 2 and become 24 m 2. Its volume would be multiplied by the cube of 2 and become 8 m 3. The original cube (1 m sides) has a surface area to volume ratio of 6:1. The larger (2 m sides) cube has a surface area to volume ratio of (24/8) 3:1.
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