Literature DB >> 18656244

Food material properties and mandibular load resistance abilities in large-bodied hominoids.

Andrea B Taylor1, Erin R Vogel, Nathaniel J Dominy.   

Abstract

Numerous comparative studies have sought to demonstrate a functional link between feeding behavior, diet, and mandibular form in primates. In lieu of data on the material properties of foods ingested and masticated, many investigators have relied on qualitative dietary classifications such as "folivore" or "frugivore." Here we provide the first analysis of the relationship between jaw form, dietary profiles, and food material properties in large-bodied hominoids. We employed ratios of area moments of inertia and condylar area to estimate moments imposed on the mandible in order to evaluate and compare the relative ability to counter mandibular loads among central Bornean orangutans (Pongo pygmaeus wurmbii), Virunga mountain gorillas (Gorilla beringei beringei), and east African chimpanzees (Pan troglodytes schweinfurthii). We used data on elastic modulus (E) of fruit, fracture toughness (R) of fruit, leaves, and non-fruit, non-leaf vegetation, and derived fragmentation indices ( R/E and ER), as proxies for bite force. We generated bending and twisting moments (forcexmoment arm) for various mandibular loading behaviors using food material properties to estimate minimally required bite forces. Based on E and R of foods ingested and masticated, we hypothesized improved resistance to mandibular loads in Pongo p. wurmbii compared to the African apes, and in G. b. beringei compared to Pan t. schweinfurthii. Results reveal that our predictions are borne out only when bite forces are estimated from maximum R of non-fruit, non-leaf vegetation. For all other tissues and material properties results were contrary to our predictions. Importantly, as food material properties change, the moments imposed on the mandible change; this, in turn, alters the entire ratio of relative load resistance to moment. The net effect is that species appear over- or under-designed for the moments imposed on the mandible. Our hypothesis, therefore, is supported only if we accept that maximum R of these vegetative tissues represents the relevant mechanical property influencing the magnitude of neuromuscular activity, food fragmentation, and mandibular morphology. A general implication is that reliable estimates of average and maximum bite forces from food material properties require that the full range of tissues masticated be tested. Synthesizing data on ingestive and masticatory behaviors, the number of chewing cycles associated with a given food, and food mechanical properties, should inform the broader question of which foods and feeding behaviors are most influential on the mandibular loading environment.

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Year:  2008        PMID: 18656244     DOI: 10.1016/j.jhevol.2008.04.001

Source DB:  PubMed          Journal:  J Hum Evol        ISSN: 0047-2484            Impact factor:   3.895


  13 in total

1.  Biomechanics of the mandible of Macaca mulatta during the power stroke of mastication: Loading, deformation, and strain regimes and the impact of food type.

Authors:  Olga Panagiotopoulou; Jose Iriarte-Diaz; Hyab Mehari Abraha; Andrea B Taylor; Simon Wilshin; Paul C Dechow; Callum F Ross
Journal:  J Hum Evol       Date:  2020-09-06       Impact factor: 3.895

2.  Timing of ectocranial suture activity in Gorilla gorilla as related to cranial volume and dental eruption.

Authors:  James Cray; Gregory M Cooper; Mark P Mooney; Michael I Siegel
Journal:  J Anat       Date:  2011-03-08       Impact factor: 2.610

3.  Comparative biomechanics of the Pan and Macaca mandibles during mastication: finite element modelling of loading, deformation and strain regimes.

Authors:  Amanda L Smith; Chris Robinson; Andrea B Taylor; Olga Panagiotopoulou; Julian Davis; Carol V Ward; William H Kimbel; Zeresenay Alemseged; Callum F Ross
Journal:  Interface Focus       Date:  2021-08-13       Impact factor: 4.661

4.  Wild Bornean orangutans experience muscle catabolism during episodes of fruit scarcity.

Authors:  Caitlin A O'Connell; Andrea L DiGiorgio; Alexa D Ugarte; Rebecca S A Brittain; Daniel J Naumenko; Sri Suci Utami Atmoko; Erin R Vogel
Journal:  Sci Rep       Date:  2021-05-13       Impact factor: 4.379

5.  The jaw adductor resultant and estimated bite force in primates.

Authors:  Jonathan M G Perry; Adam Hartstone-Rose; Rachel L Logan
Journal:  Anat Res Int       Date:  2011-07-24

6.  Strategies for the Use of Fallback Foods in Apes.

Authors:  Mark E Harrison; Andrew J Marshall
Journal:  Int J Primatol       Date:  2011-01-07       Impact factor: 2.264

7.  Micro-evolutionary divergence patterns of mandible shapes in wild house mouse (Mus musculus) populations.

Authors:  Louis Boell; Diethard Tautz
Journal:  BMC Evol Biol       Date:  2011-10-18       Impact factor: 3.260

8.  Chewed out: an experimental link between food material properties and repetitive loading of the masticatory apparatus in mammals.

Authors:  Matthew J Ravosa; Jeremiah E Scott; Kevin R McAbee; Anna J Veit; Annika L Fling
Journal:  PeerJ       Date:  2015-11-03       Impact factor: 2.984

9.  Food mechanical properties and isotopic signatures in forest versus savannah dwelling eastern chimpanzees.

Authors:  Adam van Casteren; Vicky M Oelze; Samuel Angedakin; Ammie K Kalan; Mohamed Kambi; Christophe Boesch; Hjalmar S Kühl; Kevin E Langergraber; Alexander K Piel; Fiona A Stewart; Kornelius Kupczik
Journal:  Commun Biol       Date:  2018-08-10

10.  Clarifying relationships between cranial form and function in tapirs, with implications for the dietary ecology of early hominins.

Authors:  Larisa R G DeSantis; Alana C Sharp; Blaine W Schubert; Matthew W Colbert; Steven C Wallace; Frederick E Grine
Journal:  Sci Rep       Date:  2020-06-01       Impact factor: 4.379

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