Literature DB >> 28071819

Evidence that interfibrillar load transfer in tendon is supported by small diameter fibrils and not extrafibrillar tissue components.

Spencer E Szczesny1, Kristen L Fetchko2, George R Dodge3,4, Dawn M Elliott2.   

Abstract

Collagen fibrils in tendon are believed to be discontinuous and transfer tensile loads through shear forces generated during interfibrillar sliding. However, the structures that transmit these interfibrillar forces are unknown. Various extrafibrillar tissue components (e.g., glycosaminoglycans, collagens XII and XIV) have been suggested to transmit interfibrillar loads by bridging collagen fibrils. Alternatively, collagen fibrils may interact directly through physical fusions and interfibrillar branching. The objective of this study was to test whether extrafibrillar proteins are necessary to transmit load between collagen fibrils or if interfibrillar load transfer is accomplished directly by the fibrils themselves. Trypsin digestions were used to remove a broad spectrum of extrafibrillar proteins and measure their contribution to the multiscale mechanics of rat tail tendon fascicles. Additionally, images obtained from serial block-face scanning electron microscopy were used to determine the three-dimensional fibrillar organization in tendon fascicles and identify any potential interfibrillar interactions. While trypsin successfully removed several extrafibrillar tissue components, there was no change in the macroscale fascicle mechanics or fibril:tissue strain ratio. Furthermore, the imaging data suggested that a network of smaller diameter fibrils (<150 nm) wind around and fuse with their neighboring larger diameter fibrils. These findings demonstrate that interfibrillar load transfer is not supported by extrafibrillar tissue components and support the hypothesis that collagen fibrils are capable of transmitting loads themselves. Conclusively determining how fibrils bear load within tendon is critical for identifying the mechanisms that impair tissue function with degeneration and for restoring tissue properties via cell-mediated regeneration or engineered tissue replacements.
© 2017 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 35:2127-2134, 2017. © 2017 Orthopaedic Research Society. Published by Wiley Periodicals, Inc.

Entities:  

Keywords:  extrafibrillar proteins; interfibrillar load transfer; multiscale mechanics; tendon; trypsin digestion

Mesh:

Substances:

Year:  2017        PMID: 28071819      PMCID: PMC5503823          DOI: 10.1002/jor.23517

Source DB:  PubMed          Journal:  J Orthop Res        ISSN: 0736-0266            Impact factor:   3.494


  50 in total

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3.  Electron microscope 3D reconstruction of branched collagen fibrils in vivo.

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4.  Macro- to microscale strain transfer in fibrous tissues is heterogeneous and tissue-specific.

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5.  Possible role of decorin glycosaminoglycans in fibril to fibril force transfer in relative mature tendons--a computational study from molecular to microstructural level.

Authors:  A Redaelli; S Vesentini; M Soncini; P Vena; S Mantero; F M Montevecchi
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7.  Dysfunctional tendon collagen fibrillogenesis in collagen VI null mice.

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8.  Quantification of Interfibrillar Shear Stress in Aligned Soft Collagenous Tissues via Notch Tension Testing.

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Authors:  Benjamin R Freedman; David J Mooney
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Review 4.  The Role of the Non-Collagenous Extracellular Matrix in Tendon and Ligament Mechanical Behavior: A Review.

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Review 6.  Innate and adaptive immune system cells implicated in tendon healing and disease.

Authors:  G Crosio; A H Huang
Journal:  Eur Cell Mater       Date:  2022-02-18       Impact factor: 4.325

7.  Dysregulated assembly of elastic fibers in fibulin-5 knockout mice results in a tendon-specific increase in elastic modulus.

Authors:  Jeremy D Eekhoff; Heiko Steenbock; Ian M Berke; Jürgen Brinckmann; Hiromi Yanagisawa; Jessica E Wagenseil; Spencer P Lake
Journal:  J Mech Behav Biomed Mater       Date:  2020-10-07

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10.  Tensile Viscoelastic Properties of the Sclera after Glycosaminoglycan Depletion.

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