Experimental observation, theoretical models, and biomechanical inference in the study of mandibular form
Bibliographic Data
| ID | 5198053 |
|---|---|
| Authors | David J Daegling (0000-0002-0108-8986, Yale University, corresponding author), William L Hylander (Duke University Hospital) |
| Year | 2000 |
| Volume | 112 |
| Issue | 4 |
| Pages | 541-551 |
| Publication date | 2000-08-01 |
| Peer Reviewed | Yes |
| Open Access | Yes |
| Type | ARTICLE |
| Venue | American Journal of Physical Anthropology (JOURNAL) |
| Journal identifiers | ISSN: 0002-9483 • E-ISSN: 1096-8644 |
| Publisher | Wiley (PUBLISHER • GB) |
| DOI | 10.1002/1096-8644(200008)112:4<541::aid-ajpa8>3.0.co;2-z |
| PMID | 10918128 |
| OpenAlex | W2119443320 |
| Language | EN |
| Citations received | 25 |
| References cited | 67 |
Experimental studies and mathematical models are disparate approaches for inferring the stress and strain environment in mammalian jaws. Experimental designs offer accurate, although limited, characterization of biomechanical behavior, while mathematical approaches (finite element modeling in particular) offer unparalleled precision in depiction of strain magnitudes, directions, and gradients throughout the mandible. Because the empirical (experimental) and theoretical (mathematical) perspectives differ in their initial assumptions and their proximate goals, the two methods can yield divergent conclusions about how masticatory stresses are distributed in the dentary. These different sources of inference may, therefore, tangibly influence subsequent biological interpretation. In vitro observation of bone strain in primate mandibles under controlled loading conditions offers a test of finite element model predictions. Two issues which have been addressed by both finite element models and experimental approaches are: (1) the distribution of torsional shear strains in anthropoid jaws and (2) the dissipation of bite forces in the human alveolar process. Not surprisingly, the experimental data and mathematical models agree on some issues, but on others exhibit discordance. Achieving congruence between these methods is critical if the nature of the relationship of masticatory stress to mandibular form is to be intelligently assessed. A case study of functional/mechanical significance of gnathic morphology in the hominid genus Paranthropus offers insight into the potential benefit of combining theoretical and experimental approaches. Certain finite element analyses claim to have identified a biomechanical problem unrecognized in previous comparative work, which, in essence, is that the enlarged transverse dimensions of the postcanine corpus may have a less important role in resisting torsional stresses than previously thought. Experimental data have identified subperiosteal cortical thinning as a culprit in diminishing the role of cross-sectional geometry in conditioning the strain environment. These observations raise questions concerning the biomechanical significance of mandibular form in early hominids, fueling persistent arguments over whether gnathic morphology can be related to dietary specialization in the "robust" australopithecines. Nonmechanical explanations (e.g., tooth size or body size) for Paranthropus mandibular dimensions, however, are not compelling as competing hypotheses. Both theoretical and experimental models are in need of refinement before it is possible to conclude that the jaws of the "robust" australopithecines are not functionally linked to elevated masticatory loads.
Experimental data · Finite element method · Inference · Interpretation (philosophy) · Masticatory force · Physics · Process (computing) · Statistical physics · Statistics · Structural engineering · Artificial Intelligence · Communication · Computer Science · Engineering · Evolution and Paleontology Studies · Mathematics · Pleistocene-Era Hominins and Archaeology · Primate Behavior and Ecology · Psychology
Interspecific and intraspecific relationships between tooth size and jaw size in primates
Mandibular Symphysis of Large-Bodied Hominoids
Functional significance of bone distribution in the human mandibular symphysis
Finite element analysis (FEA)
Do homoiologies impede phylogenetic analyses of the fossil hominids? An assessment based on extant papionin craniodental morphology
Food mechanical properties, feeding ecology, and the mandibular morphology of wild orangutans
Biomechanical correlates of zygomaxillary-surface shape in papionin primates and the effects of hard-object feeding on mangabey facial form
Cross-sectional geometry and morphology of the mandibular symphysis in Middle and Late Pleistocene Homo
Dental microwear texture analysis and diet in the Dmanisi hominins
Biomechanics of the mandible of Macaca mulatta during the power stroke of mastication
Dental microwear and diets of African early Homo
Mandibular development in Australopithecus robustus
The mechanical significance of morphological variation in the macaque mandibular symphysis during mastication
Growth‐related changes in prehistoric Jomon and modern Japanese mandibles with emphasis on cortical bone distribution
Elastic modulus variation in mandibular bone
Variations in cortical material properties throughout the human dentate mandible
Regional, ontogenetic, and sex‐related variations in elastic properties of cortical bone in baboon mandibles
Spatial variation in mandibular bone elastic modulus and its effect on structural bending stiffness
Summary to the symposium issue
Hominoid Cranial Diversity and Adaptation
Hominoid Cranial Diversity and Adaptation
Hominoid Cranial Diversity and Adaptation
Reconstructing Extinct Hominin Diets
Biomechanics of mammalian feeding and primate evolution
Mammalian feeding and primate evolution
Effect of bone strain on cortical bone structure in macaques (Macaca mulatta)
Diet and teeth
Size and Scaling in Human Evolution
Mandibular function in Galago crassicaudatus and Macaca fascicularis
The functional significance of primate mandibular form
Mandibular Function and Biomechanical Stress and Scaling
The Australopithecine Face
Tooth crown heights, tooth wear, sexual dimorphism and jaw growth in hominoids
Biomechanics of torsion in the human mandible
Mandibular morphology and diet in the genusCebus
Biomechanical scaling of mandibular dimensions in New World Monkeys
Stress and strain in the mandibular symphysis of primates
Mandibular biomechanics and temporomandibular joint function in primates
Experimental stress analysis of topographic diversity in early hominid gnathic morphology
A biomechanical analysis of mandibular scaling in old world monkeys
The mandibular corpus of female primates
The human mandible
Elastic properties of human supraorbital and mandibular bone
Loading patterns and jaw movements during mastication in Macaca fascicularis
Three‐dimensional finite element stress analysis of the dentate human mandible
Influence of teeth, alveoli, and periodontal ligaments on torsional rigidity in human mandibles
Compact bone distribution and biomechanics of early hominid mandibles
Biomechanics of cross‐sectional size and shape in the hominoid mandibular corpus
Structural allometry of the prosimian mandibular corpus and symphysis
The influence of alveolar structures on the torsional strain field in a gorilla corporeal cross-section
Taxonomy, paleobiology, and adaptations of the "robust" australopithecines
Bite force, diet, and cranial morphology of fossil hominids
Occlusal forces and mandibular bone strain
Postnatal heterochrony of the masticatory apparatus in Cebus apella and Cebus albifrons
The relationship of in vivo bone strain to mandibular corpus morphology in Macaca fascicularis
Palatal thickening and facial form inParanthropus
Taxonomic and functional implications of mandibular scaling in early hominins
Cross-sectional geometric properties of theOtavipithecus mandible
| Unique citing works | 25 |
|---|---|
| Citations per year | 0,96 |
| Citation span | 2000 - 2022 (23) |
| Citation velocity | historical |
| Highly cited | No |
| Citation types | Neutral: 23 |