Helical Fibrillar Microstructure of Tendon using Serial Block-Face SEM and a Mechanical Model for Interfibrillar Load Transfer
Safa, B. N.; Peloquin, J. M.; Natriello, J. R.; Caplan, J. L.; Elliott, D. M.
Show abstract
Tendons hierarchical structure allows for load transfer between its fibrillar elements at multiple length scales. Tendon microstructure is particularly important, because it includes the cells and their surrounding collagen fibrils, where mechanical interactions can have potentially important physiological and pathological contributions. However, the three-dimensional microstructure and the mechanisms of load transfer in that length scale are not known. It has been postulated that interfibrillar matrix shear or direct load transfer via the fusion/branching of small fibrils are responsible for load transfer, but the significance of these mechanisms is still unclear. Alternatively, the helical fibrils that occur at the microstructural scale in tendon may also mediate load transfer, however, these structures are not well studied due to the lack of a three-dimensional visualization of tendon microstructure. In this study, we used serial block-face scanning electron microscopy (SBF-SEM) to investigate the threedimensional microstructure of fibrils in rat tail tendon. We found that tendon fibrils have a complex architecture with many helically wrapped fibrils. We studied the mechanical implications of these helical structures using finite element modeling and found that frictional contact between helical fibrils can induce load transfer even in the absence of matrix bonding or fibril fusion/branching. This study is significant in that it provides a three-dimensional view of the tendon microstructure and suggests friction between helically wrapped fibrils as a mechanism for load transfer, which is an important aspect of tendon biomechanics.
Matching journals
The top 1 journal accounts for 50% of the predicted probability mass.
Similar papers in this journal
- Assessment of the Viscoelastic Mechanical Properties of the Porcine Optic Nerve Head using Micromechanical Testing and Finite Element Modeling 95%
- A method for defining tissue injury criteria reveals ligament deformation thresholds are multimodal 95%
- Tracking tendon fibers to their insertion - a 3D analysis of the Achilles tendon enthesis in mice 93%
Similar papers in this journal
- Influence of multi-axial dynamic constraint on cell alignment and contractility in engineered tissues 95%
- A 3-D Constitutive Model for Finite Element Analyses of Agarose with a Range of Gel Concentrations 93%
- Strain softening and hysteresis arising from 3D multicellular dynamics during long-term large deformation 93%
Similar papers in this journal
- Modeling stem cell nucleus mechanics using confocal microscopy 93%
- Capturing sclera anisotropy using direct collagen fiber models. Linking microstructure to macroscopic mechanical properties. 92%
- Stress fiber growth and remodeling determines cellular morphomechanics under uniaxial cyclic stretch 91%
Similar papers in this journal
- A comprehensive model of Drosophila epithelium reveals the role of embryo geometry and cell topology in mechanical responses 93%
- Individual variation in Achilles tendon morphology and geometry changes susceptibility to injury 92%
- T cell stiffness is enhanced upon formation of immunological synapse 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.