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How Does Tooth Cusp Radius of Curvature Affect Brittle Food Item Processing?

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Date 2013 May 3
PMID 23635495
Citations 11
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Abstract

Tooth cusp sharpness, measured by radius of curvature (RoC), has been predicted to play a significant role in brittle/hard food item fracture. Here, we set out to test three existing hypotheses about this relationship: namely, the Blunt and Strong Cusp hypotheses, which predict that dull cusps will be most efficient at brittle food item fracture, and the Pointed Cusp hypothesis, which predicts that sharp cusps will be most efficient at brittle food item fracture using a four cusp bunodont molar. We also put forth and test the newly constructed Complex Cusp hypothesis, which predicts that a mixture of dull and sharp cusps will be most efficient at brittle food item fracture. We tested the four hypotheses using finite-element models of four cusped, bunodont molars. When testing the three existing hypotheses, we assumed all cusps had the same level of sharpness (RoC), and gained partial support for the Blunt Cusp hypotheses. We found no support for the Pointed Cusp or Strong Cusp hypotheses. We used the Taguchi sampling method to test the Complex Cusps hypothesis with a morphospace created by independently varying the radii of curvature of the four cusps in the buccolingual and mesiodistal directions. The optimal occlusal morphology for fracturing brittle food items consists of a combination of sharp and dull cusps, which creates high stress concentrations in the food item while stabilizing the food item and keeping the stress concentrations in the enamel low. This model performed better than the Blunt Cusp hypothesis, suggesting a role for optimality in the evolution of cusp form.

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References
1.
Constantino P, Lee J, Morris D, Lucas P, Hartstone-Rose A, Lee W . Adaptation to hard-object feeding in sea otters and hominins. J Hum Evol. 2011; 61(1):89-96. DOI: 10.1016/j.jhevol.2011.02.009. View

2.
Yamashita N . Food procurement and tooth use in two sympatric lemur species. Am J Phys Anthropol. 2003; 121(2):125-33. DOI: 10.1002/ajpa.10206. View

3.
Anderson P, Rayfield E . Virtual experiments, physical validation: dental morphology at the intersection of experiment and theory. J R Soc Interface. 2012; 9(73):1846-55. PMC: 3385769. DOI: 10.1098/rsif.2012.0043. View

4.
Anderson P, Gill P, Rayfield E . Modeling the effects of cingula structure on strain patterns and potential fracture in tooth enamel. J Morphol. 2010; 272(1):50-65. DOI: 10.1002/jmor.10896. View

5.
Ungar P . Dental topography and diets of Australopithecus afarensis and early Homo. J Hum Evol. 2004; 46(5):605-22. DOI: 10.1016/j.jhevol.2004.03.004. View