- By:
- Grejtak, Tomas ; Hunt, Tyler; Whalen, Niall; Hendricks, Stephen; Babuska, Tomas; Craig, Robert; Varma, Soumya; Jia, Xiu; Norell, Mark; Pathak, Siddhartha; Vermaak, Natasha; Druckenmiller, Patrick; Erickson, Gregory; Krick, Brandon
- Journal Name:
- Acta Biomaterialia
- Page Number:
- 182-190
- Volume:
- 218
- Publication Date:
- July 8, 2026
- View DOI Listing:
- https://doi.org/10.1016/j.actbio.2026.05.040
Abstract
Eurasian mammoths (Mammuthus) underwent substantial modifications in molar morphology as later-diverging species evolved progressively thinner enamel and increased enamel crest complexity. These features have been hypothesized to reduce whole-tooth wear and extend dental longevity as increasingly graze-dominated diets evolved within the lineage. This hypothesis has yet to be directly tested. Here, we developed an in-silico wear model using experimentally derived wear rates from fossil and extant proboscidean dental tissues. The models revealed that shifts in tissue topology do not affect whole-tooth wear rate, as inverse trends in lamellar frequency and enamel thickness preserve a consistent surface enamel area fraction; the determining factor of wear. Rather, topological shifts produce a wear-emergent secondary occlusal surface with greater numbers of triturating crests that create a regular, low-relief, file-like shearing pavement. These changes in occlusal architecture likely directly impacted the mastication capacity of Mammuthus dentitions, facilitating their dietary expansion to incorporate fibrous, lower-nutrient graze.