Literature DB >> 16129631

Collagen biosynthesis of mechanically loaded articular cartilage explants.

B Ackermann1, J Steinmeyer.   

Abstract

OBJECTIVE: The purpose of this study was to investigate systematically the effect of load amplitudes, frequencies and load durations of intermittently applied mechanical pressure on the biosynthesis of collagen and non-collagenous proteins (NCP) as well as on the water content of cultured bovine articular cartilage explants.
METHODS: Cyclic compressive pressure was applied using a sinusoidal waveform of 0.5 Hz frequency with a peak stress of 0.1, 0.5 or 1.0 MPa for a period of 10s followed by a load-free period of 10, 100 or 1000s. These intermittent loading protocols were repeated for a total duration of 1, 3 or 6 days. During the final 18 h of experiments, the incorporation of [(3)H]-proline into collagen and NCP, the content of water as well as the deformation of loaded explants were determined.
RESULTS: Intermittently applied, cyclic mechanical loading of articular cartilage explants consistently reduced the relative rate of collagen synthesis compared to load-free conditions. This reduced proportion of newly synthesized collagen among newly made proteins was independent of the mechanical stimuli applied. The release of newly synthesized collagen and NCP from loaded explants into the nutrient media was unaffected by any of the loading protocols applied. In addition, quantitative data are provided showing that only high amplitudes of loads and frequencies enhanced the water content of the explants.
CONCLUSIONS: Previous studies reporting that osteoarthritic cartilage in vivo can synthesize elevated amounts of collagen imply that the loading protocols chosen were inadequate for simulating in vitro osteoarthritic-like alterations of collagen synthesis. In our experiments the collagen biosynthesis of chondrocytes was only minor responsive to alterations in mechanical stimuli, applied over a wide range. Thus, our results imply that the synthesis of these structural macromolecules is under the strict control of normal chondrocytes enabling them to maintain the shape of this physical demanded tissue.

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Year:  2005        PMID: 16129631     DOI: 10.1016/j.joca.2005.06.001

Source DB:  PubMed          Journal:  Osteoarthritis Cartilage        ISSN: 1063-4584            Impact factor:   6.576


  6 in total

1.  Moderate dynamic compression inhibits pro-catabolic response of cartilage to mechanical injury, tumor necrosis factor-α and interleukin-6, but accentuates degradation above a strain threshold.

Authors:  Y Li; E H Frank; Y Wang; S Chubinskaya; H-H Huang; A J Grodzinsky
Journal:  Osteoarthritis Cartilage       Date:  2013-09-03       Impact factor: 6.576

2.  Mechanical load inhibits IL-1 induced matrix degradation in articular cartilage.

Authors:  P A Torzilli; M Bhargava; S Park; C T C Chen
Journal:  Osteoarthritis Cartilage       Date:  2009-09-01       Impact factor: 6.576

3.  Biomechanical influence of cartilage homeostasis in health and disease.

Authors:  D L Bader; D M Salter; T T Chowdhury
Journal:  Arthritis       Date:  2011-09-15

4.  Knee Cartilage Thickness, T1ρ and T2 Relaxation Time Are Related to Articular Cartilage Loading in Healthy Adults.

Authors:  Sam Van Rossom; Colin Robert Smith; Lianne Zevenbergen; Darryl Gerard Thelen; Benedicte Vanwanseele; Dieter Van Assche; Ilse Jonkers
Journal:  PLoS One       Date:  2017-01-11       Impact factor: 3.240

Review 5.  Injectable hydrogels for cartilage and bone tissue engineering.

Authors:  Mei Liu; Xin Zeng; Chao Ma; Huan Yi; Zeeshan Ali; Xianbo Mou; Song Li; Yan Deng; Nongyue He
Journal:  Bone Res       Date:  2017-05-30       Impact factor: 13.567

6.  Changes in growth plate extracellular matrix composition and biomechanics following in vitro static versus dynamic mechanical modulation.

Authors:  Rosa Kaviani; Irene Londono; Stefan Parent; Florina Moldovan; Isabelle Villemure
Journal:  J Musculoskelet Neuronal Interact       Date:  2018-03-01       Impact factor: 2.041

  6 in total

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