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1.
Anat Rec (Hoboken) ; 298(1): 122-44, 2015 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-25529239

RESUMO

In a broad range of evolutionary studies, an understanding of intraspecific variation is needed in order to contextualize and interpret the meaning of variation between species. However, mechanical analyses of primate crania using experimental or modeling methods typically encounter logistical constraints that force them to rely on data gathered from only one or a few individuals. This results in a lack of knowledge concerning the mechanical significance of intraspecific shape variation that limits our ability to infer the significance of interspecific differences. This study uses geometric morphometric methods (GM) and finite element analysis (FEA) to examine the biomechanical implications of shape variation in chimpanzee crania, thereby providing a comparative context in which to interpret shape-related mechanical variation between hominin species. Six finite element models (FEMs) of chimpanzee crania were constructed from CT scans following shape-space Principal Component Analysis (PCA) of a matrix of 709 Procrustes coordinates (digitized onto 21 specimens) to identify the individuals at the extremes of the first three principal components. The FEMs were assigned the material properties of bone and were loaded and constrained to simulate maximal bites on the P(3) and M(2) . Resulting strains indicate that intraspecific cranial variation in morphology is associated with quantitatively high levels of variation in strain magnitudes, but qualitatively little variation in the distribution of strain concentrations. Thus, interspecific comparisons should include considerations of the spatial patterning of strains rather than focus only on their magnitudes.


Assuntos
Análise de Elementos Finitos , Pan troglodytes/anatomia & histologia , Pan troglodytes/fisiologia , Crânio/anatomia & histologia , Crânio/fisiologia , Animais , Fenômenos Biomecânicos/fisiologia , Força de Mordida , Feminino , Masculino , Músculos da Mastigação/anatomia & histologia , Músculos da Mastigação/fisiologia , Matemática , Modelos Biológicos , Pan troglodytes/classificação , Análise de Componente Principal , Especificidade da Espécie
2.
Anat Rec (Hoboken) ; 298(1): 145-67, 2015 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-25529240

RESUMO

The African Plio-Pleistocene hominins known as australopiths evolved derived craniodental features frequently interpreted as adaptations for feeding on either hard, or compliant/tough foods. Among australopiths, Paranthropus boisei is the most robust form, exhibiting traits traditionally hypothesized to produce high bite forces efficiently and strengthen the face against feeding stresses. However, recent mechanical analyses imply that P. boisei may not have been an efficient producer of bite force and that robust morphology in primates is not necessarily strong. Here we use an engineering method, finite element analysis, to show that the facial skeleton of P. boisei is structurally strong, exhibits a strain pattern different from that in chimpanzees (Pan troglodytes) and Australopithecus africanus, and efficiently produces high bite force. It has been suggested that P. boisei consumed a diet of compliant/tough foods like grass blades and sedge pith. However, the blunt occlusal topography of this and other species suggests that australopiths are adapted to consume hard foods, perhaps including grass and sedge seeds. A consideration of evolutionary trends in morphology relating to feeding mechanics suggests that food processing behaviors in gracile australopiths evidently were disrupted by environmental change, perhaps contributing to the eventual evolution of Homo and Paranthropus.


Assuntos
Arco Dental/anatomia & histologia , Arco Dental/fisiologia , Dieta , Hominidae/anatomia & histologia , Hominidae/fisiologia , Crânio/anatomia & histologia , Crânio/fisiologia , Adaptação Fisiológica/fisiologia , Animais , Evolução Biológica , Fenômenos Biomecânicos/fisiologia , Força de Mordida , Ingestão de Alimentos/fisiologia , Ecologia , Análise de Elementos Finitos , Imageamento Tridimensional , Matemática , Modelos Biológicos
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