6533b82dfe1ef96bd129130d

RESEARCH PRODUCT

Forage silica and water content control dental surface texture in guinea pigs and provide implications for dietary reconstruction.

Ellen Schulz-kornasAnnelies De CuyperThomas M. KaiserDaniela E. WinklerMarcus ClaussThomas Tütken

subject

0106 biological sciences10253 Department of Small Animals01 natural sciencesPHYTOLITHSsurface textureGRASSTEETHMICROWEARGrazingphytolithsWater content2. Zero hungerTimothy-grassMultidisciplinarybiologyEnamel paint630 AgricultureEcologymicrotextureTRIBOLOGYfood and beveragesPlantsBiological SciencesSilicon DioxideVARIABILITYPhytolithvisual_artMAMMALSvisual_art.visual_art_mediumFemale010506 paleontologyBambooGuinea PigsForage010603 evolutionary biologyFEEDING ECOLOGYAnimal sciencestomatognathic systemHardnessAnimalsgrazingDental Enamel0105 earth and related environmental sciences1000 MultidisciplinaryBiology and Life SciencesWater15. Life on landbiology.organism_classificationMolarDietTooth AbrasionWEARTooth wearMECHANICStooth wear570 Life sciences; biology

description

Significance Ingesta leave characteristic wear features on the tooth surface, which enable us to reconstruct the diet of extant and fossil vertebrates. However, whether dental wear is caused by internal (phytoliths) or external (mineral dust) silicate abrasives is controversially debated in paleoanthropology and biology. To assess this, we fed guinea pigs plant forages of increasing silica content (lucerne < grass < bamboo) without any external abrasives, both in fresh and dried state. Abrasiveness and enamel surface wear increased with higher forage phytolith content. Additionally, water loss altered plant material properties. Dental wear of fresh grass feeding was similar to lucerne browsing, while dried grass caused more grazer-like wear. Fresh grass grazing could be confounded with browsing, being a major pitfall for paleodietary reconstructions.

10.1073/pnas.1814081116https://pubmed.ncbi.nlm.nih.gov/30606800