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1.
Proc Natl Acad Sci U S A ; 106(22): 8969-74, 2009 Jun 02.
Artículo en Inglés | MEDLINE | ID: mdl-19451641

RESUMEN

The predatory ecology of Varanus komodoensis (Komodo Dragon) has been a subject of long-standing interest and considerable conjecture. Here, we investigate the roles and potential interplay between cranial mechanics, toxic bacteria, and venom. Our analyses point to the presence of a sophisticated combined-arsenal killing apparatus. We find that the lightweight skull is relatively poorly adapted to generate high bite forces but better adapted to resist high pulling loads. We reject the popular notion regarding toxic bacteria utilization. Instead, we demonstrate that the effects of deep wounds inflicted are potentiated through venom with toxic activities including anticoagulation and shock induction. Anatomical comparisons of V. komodoensis with V. (Megalania) priscus fossils suggest that the closely related extinct giant was the largest venomous animal to have ever lived.


Asunto(s)
Extinción Biológica , Lagartos/anatomía & histología , Lagartos/fisiología , Conducta Predatoria , Ponzoñas , Animales , Bacterias/patogenicidad , Dentición , Lagartos/microbiología , Cráneo/anatomía & histología , Cráneo/fisiología
2.
Proc Biol Sci ; 277(1700): 3579-86, 2010 Dec 07.
Artículo en Inglés | MEDLINE | ID: mdl-20554545

RESUMEN

Diminished bite force has been considered a defining feature of modern Homo sapiens, an interpretation inferred from the application of two-dimensional lever mechanics and the relative gracility of the human masticatory musculature and skull. This conclusion has various implications with regard to the evolution of human feeding behaviour. However, human dental anatomy suggests a capacity to withstand high loads and two-dimensional lever models greatly simplify muscle architecture, yielding less accurate results than three-dimensional modelling using multiple lines of action. Here, to our knowledge, in the most comprehensive three-dimensional finite element analysis performed to date for any taxon, we ask whether the traditional view that the bite of H. sapiens is weak and the skull too gracile to sustain high bite forces is supported. We further introduce a new method for reconstructing incomplete fossil material. Our findings show that the human masticatory apparatus is highly efficient, capable of producing a relatively powerful bite using low muscle forces. Thus, relative to other members of the superfamily Hominoidea, humans can achieve relatively high bite forces, while overall stresses are reduced. Our findings resolve apparently discordant lines of evidence, i.e. the presence of teeth well adapted to sustain high loads within a lightweight cranium and mandible.


Asunto(s)
Mandíbula , Cráneo , Animales , Evolución Biológica , Fenómenos Biomecánicos , Fuerza de la Mordida , Análisis de Elementos Finitos , Fósiles , Hominidae/anatomía & histología , Hominidae/fisiología , Mandíbula/anatomía & histología , Mandíbula/fisiología , Músculos Masticadores/anatomía & histología , Músculos Masticadores/fisiología , Modelos Biológicos , Cráneo/anatomía & histología , Cráneo/fisiología , Estrés Mecánico , Humanos
3.
PLoS One ; 8(11): e81196, 2013.
Artículo en Inglés | MEDLINE | ID: mdl-24260558

RESUMEN

Nanomechanical testing methods that are suitable for a range of hydrated tissues are crucial for understanding biological systems. Nanoindentation of tissues can provide valuable insights into biology, tissue engineering and biomimetic design. However, testing hydrated biological samples still remains a significant challenge. Shark jaw cartilage is an ideal substrate for developing a method to test hydrated tissues because it is a unique heterogeneous composite of both mineralized (hard) and non-mineralized (soft) layers and possesses a jaw geometry that is challenging to test mechanically. The aim of this study is to develop a novel method for obtaining multidirectional nanomechanical properties for both layers of jaw cartilage from a single sample, taken from the great white shark (Carcharodon carcharias). A method for obtaining multidirectional data from a single sample is necessary for examining tissue mechanics in this shark because it is a protected species and hence samples may be difficult to obtain. Results show that this method maintains hydration of samples that would otherwise rapidly dehydrate. Our study is the first analysis of nanomechanical properties of great white shark jaw cartilage. Variation in nanomechanical properties were detected in different orthogonal directions for both layers of jaw cartilage in this species. The data further suggest that the mineralized layer of shark jaw cartilage is less stiff than previously posited. Our method allows multidirectional nanomechanical properties to be obtained from a single, small, hydrated heterogeneous sample. Our technique is therefore suitable for use when specimens are rare, valuable or limited in quantity, such as samples obtained from endangered species or pathological tissues. We also outline a method for tip-to-optic calibration that facilitates nanoindentation of soft biological tissues. Our technique may help address the critical need for a nanomechanical testing method that is applicable to a variety of hydrated biological materials whether soft or hard.


Asunto(s)
Cartílago/química , Maxilares/química , Ensayo de Materiales/métodos , Tiburones/anatomía & histología , Agua/química , Animales , Fenómenos Biomecánicos , Calibración , Cartílago/anatomía & histología , Módulo de Elasticidad , Especies en Peligro de Extinción , Dureza , Maxilares/anatomía & histología , Masculino , Ensayo de Materiales/instrumentación , Tiburones/fisiología , Ingeniería de Tejidos
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