Comparative Limb Morphology in Burrowing Mammals
Keywords:
burrowing mammals, convergent evolution, limb morphology, functional morphology, Talpidae, Chrysochloridae, geometric morphometrics, soil hardnessAbstract
Burrowing has evolved independently in mammals more than 40 times, providing one of the most replicated natural experiments in convergent evolution available to functional morphologists. The subterranean lifestyle imposes extreme and predictable biomechanical demands on the forelimb skeleton -- the primary digging apparatus in most burrowing taxa -- driving convergent modifications including shortened, robust humeri with expanded muscle attachment sites, widened olecranon processes for triceps leverage, broadened manus for scratch-digging or chisel-tooth digging assistance, and reduced digit proportions for push-digging mechanics. This study presents the most comprehensive quantitative comparative limb morphology analysis of burrowing mammals yet assembled, measuring 24 osteological parameters on 8,470 skeletal specimens representing 247 burrowing species from 18 orders plus 184 non-burrowing outgroup species, integrated with a time-calibrated phylogeny and soil hardness data to test the predictors of convergent limb modification magnitude. The degree of limb specialisation (burrowing morphology index; BMI) was significantly predicted by soil hardness at the species' habitat (partial R2 = 0.54; p < 0.001), burrowing mode (scratch-digging > chisel-tooth > push-digging; F = 47.4; p < 0.001), and phylogenetic distance from the nearest scratch-digging ancestor (partial R2 = 0.38; p < 0.001). Convergence in BMI across phylogenetically distant lineages was confirmed by C-score analysis: moles (Talpidae), golden moles (Chrysochloridae), and marsupial moles (Notoryctidae) showed the highest C-scores (0.84-0.94) despite being separated by > 150 Mya of independent evolution.
