Literature DB >> 31325483

Tendon tissue microdamage and the limits of intrinsic repair.

Tino Stauber1, Ulrich Blache1, Jess G Snedeker2.   

Abstract

The transmission of mechanical muscle force to bone for musculoskeletal stability and movement is one of the most important functions of tendon. The load-bearing tendon core is composed of highly aligned collagen-rich fascicles interspersed with stromal cells (tenocytes). Despite being built to bear very high mechanical stresses, supra-physiological/repetitive mechanical overloading leads to tendon microdamage in fascicles, and potentially to tendon disease and rupture. To date, it is unclear to what extent intrinsic healing mechanisms of the tendon core compartment can repair microdamage. In the present study, we investigated the healing capacity of the tendon core compartment in an ex vivo tissue explant model. To do so, we isolated rat tail tendon fascicles, damaged them by applying a single stretch to various degrees of sub-rupture damage and longitudinally assessed downstream functional and structural changes over a period of several days. Functional damage was assessed by changes in the elastic modulus of the material stress-strain curves, and biological viability of the resident tenocytes. Structural damage was quantified using a fluorescent collagen hybridizing peptide (CHP) to label mechanically disrupted collagen structures. While we observed functional mechanical damage for strains above 2% of the initial fascicle length, structural collagen damage was only detectable for 6% strain and beyond. Minimally loaded/damaged fascicles (2-4% strain) progressively lost elastic modulus over the course of tissue culture, despite their collagen structures remaining intact with high degree of maintained cell viability. In contrast, more severely overloaded fascicles (6-8% strain) with damage at the molecular/collagen level showed no further loss of the elastic modulus but markedly decreased cell viability. Surprisingly, in these heavily damaged fascicles the elastic modulus partially recovered, an effect also seen in further experiments on devitalized fascicles, implying the possibility of a non-cellular but matrix-driven mechanism of molecular repair. Overall, our findings indicate that the tendon core has very little capacity for self-repair of microdamage. We conclude that stromal tenocytes likely do not play a major role in anabolic repair of tendon matrix microdamage, but rather mediate catabolic matrix breakdown and communication with extrinsic cells that are able to effect tissue repair.
Copyright © 2019 The Authors. Published by Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Biomechanics; Collagen microdamage; Ex vivo tissue; Fascicle; Tendon

Mesh:

Substances:

Year:  2019        PMID: 31325483     DOI: 10.1016/j.matbio.2019.07.008

Source DB:  PubMed          Journal:  Matrix Biol        ISSN: 0945-053X            Impact factor:   11.583


  10 in total

1.  Pelvic floor muscle injury during a difficult labor. Can tissue fatigue damage play a role?

Authors:  Maria C P Vila Pouca; Marco P L Parente; Renato M Natal Jorge; John O L DeLancey; James A Ashton-Miller
Journal:  Int Urogynecol J       Date:  2021-11-16       Impact factor: 2.894

Review 2.  Tendon and ligament mechanical loading in the pathogenesis of inflammatory arthritis.

Authors:  Eric Gracey; Arne Burssens; Isabelle Cambré; Georg Schett; Rik Lories; Iain B McInnes; Hiroshi Asahara; Dirk Elewaut
Journal:  Nat Rev Rheumatol       Date:  2020-02-20       Impact factor: 20.543

3.  Shear-stress sensing by PIEZO1 regulates tendon stiffness in rodents and influences jumping performance in humans.

Authors:  Fabian S Passini; Patrick K Jaeger; Aiman S Saab; Shawn Hanlon; Nicole A Chittim; Matthias J Arlt; Kim David Ferrari; Dominik Haenni; Sebastiano Caprara; Maja Bollhalder; Barbara Niederöst; Aron N Horvath; Tobias Götschi; Shang Ma; Bettina Passini-Tall; Sandro F Fucentese; Ulrich Blache; Unai Silván; Bruno Weber; Karin Grävare Silbernagel; Jess G Snedeker
Journal:  Nat Biomed Eng       Date:  2021-05-24       Impact factor: 29.234

4.  A numerical framework for mechano-regulated tendon healing-Simulation of early regeneration of the Achilles tendon.

Authors:  Thomas Notermans; Petri Tanska; Rami K Korhonen; Hanifeh Khayyeri; Hanna Isaksson
Journal:  PLoS Comput Biol       Date:  2021-02-08       Impact factor: 4.475

5.  Inhibition of ERK 1/2 kinases prevents tendon matrix breakdown.

Authors:  Ulrich Blache; Stefania L Wunderli; Amro A Hussien; Tino Stauber; Gabriel Flückiger; Maja Bollhalder; Barbara Niederöst; Sandro F Fucentese; Jess G Snedeker
Journal:  Sci Rep       Date:  2021-03-25       Impact factor: 4.379

Review 6.  Injuries in Muscle-Tendon-Bone Units: A Systematic Review Considering the Role of Passive Tissue Fatigue.

Authors:  Maria C P Vila Pouca; Marco P L Parente; Renato M Natal Jorge; James A Ashton-Miller
Journal:  Orthop J Sports Med       Date:  2021-08-11

7.  An in-House System for the Precise Measurement of Electrical Potentials and Mechanical Properties of Soft Tissues: Design and Validation Using Adult Mammalian Tendon Fascicle Bundles.

Authors:  Marek Kalemba; Martyna Ekiert-Radecka; Marek Wajdzik; Andrzej Mlyniec
Journal:  Materials (Basel)       Date:  2022-06-24       Impact factor: 3.748

Review 8.  Dynamic Load Model Systems of Tendon Inflammation and Mechanobiology.

Authors:  Lindsay G Benage; James D Sweeney; Morgan B Giers; Ravi Balasubramanian
Journal:  Front Bioeng Biotechnol       Date:  2022-07-15

Review 9.  Interplay of Forces and the Immune Response for Functional Tendon Regeneration.

Authors:  Yuwei Yang; Yicong Wu; Ke Zhou; Dongmei Wu; Xudong Yao; Boon Chin Heng; Jing Zhou; Hua Liu; Hongwei Ouyang
Journal:  Front Cell Dev Biol       Date:  2021-06-04

10.  Tough and tunable scaffold-hydrogel composite biomaterial for soft-to-hard musculoskeletal tissue interfaces.

Authors:  Raul A Sun Han Chang; John F Shanley; Mariana E Kersh; Brendan A C Harley
Journal:  Sci Adv       Date:  2020-08-19       Impact factor: 14.136

  10 in total

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