4.8 Article

Seasonal bone growth and physiology in endotherms shed light on dinosaur physiology

期刊

NATURE
卷 487, 期 7407, 页码 358-361

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NATURE PORTFOLIO
DOI: 10.1038/nature11264

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  1. Spanish Ministry of Science and Innovation [CGL2008-06204/BTE, CGL2011-24685, BES-2009-02641, JCI-2010-08157]
  2. Norwegian Research Council [NORKLIMA 178561/S30]
  3. ICREA Funding Source: Custom

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Cyclical growth leaves marks in bone tissue that are in the forefront of discussions about physiologies of extinct vertebrates(1). Ectotherms show pronounced annual cycles of growth arrest that correlate with a decrease in body temperature and metabolic rate; endotherms are assumed to grow continuously until they attain maturity because of their constant high body temperature and sustained metabolic rate(1,2). This apparent dichotomy has driven the argument that zonal bone denotes ectotherm-like physiologies, thus fuelling the controversy on dinosaur thermophysiology and the evolution of endothermy in birds and mammal-like reptiles(1-4). Here we show, from a comprehensive global study of wild ruminants from tropical to polar environments, that cyclical growth is a universal trait of homoeothermic endotherms. Growth is arrested during the unfavourable season concurrently with decreases in body temperature, metabolic rate and bone-growth-mediating plasma insulin-like growth factor-1 levels, forming part of a plesiomorphic thermometabolic strategy for energy conservation. Conversely, bouts of intense tissue growth coincide with peak metabolic rates and correlated hormonal changes at the beginning of the favourable season, indicating an increased efficiency in acquiring and using seasonal resources. Our study supplies the strongest evidence so far that homeothermic endotherms arrest growth seasonally, which precludes the use of lines of arrested growth as an argument in support of ectothermy. However, high growth rates are a distinctive trait of mammals, suggesting the capacity for endogenous heat generation. The ruminant annual cycle provides an extant model on which to base inferences regarding the thermophysiology of dinosaurs and other extinct taxa.

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