Literature DB >> 16905341

Proteoglycan synthesis in bovine articular cartilage explants exposed to different low-frequency low-energy pulsed electromagnetic fields.

M De Mattei1, M Fini, S Setti, A Ongaro, D Gemmati, G Stabellini, A Pellati, A Caruso.   

Abstract

OBJECTIVE: To investigate the role of pulsed electromagnetic field (PEMF) exposure parameters (exposure length, magnetic field peak amplitude, pulse frequency) in the regulation of proteoglycan (PG) synthesis of bovine articular cartilage explants.
METHODS: Bovine articular cartilage explants were exposed to a PEMF (75 Hz; 2 mT) for different time periods: 1, 4, 9, 24 h. Then, cartilage explants were exposed for 24 h to PEMFs of different magnetic field peak amplitudes (0.5, 1, 1.5, 2 mT) and different frequencies (2, 37, 75, 110 Hz). PG synthesis of control and exposed explants was determined by Na2-35SO4 incorporation.
RESULTS: PEMF exposure significantly increased PG synthesis ranging from 12% at 4 h to 17% at 24 h of exposure. At all the magnetic field peak amplitude values, a significant PG synthesis increase was measured in PEMF-exposed explants compared to controls, with maximal effect at 1.5 mT. No effect of pulse frequency was observed on PG synthesis stimulation.
CONCLUSIONS: The results of this study show the range of exposure length, PEMF amplitude, pulse frequency which can stimulate cartilage PG synthesis, and suggest optimal exposure parameters which may be useful for cartilage repair in in vivo experiments and clinical application.

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Year:  2006        PMID: 16905341     DOI: 10.1016/j.joca.2006.06.019

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


  18 in total

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2.  In vitro functional response of human tendon cells to different dosages of low-frequency pulsed electromagnetic field.

Authors:  L de Girolamo; M Viganò; E Galliera; D Stanco; S Setti; M G Marazzi; G Thiebat; M M Corsi Romanelli; V Sansone
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3.  Application of pulsed electromagnetic fields after microfractures to the knee: a mid-term study.

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4.  Biophysical stimulation improves clinical results of matrix-assisted autologous chondrocyte implantation in the treatment of chondral lesions of the knee.

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Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  2017-06-17       Impact factor: 4.342

Review 5.  Coupling of pulsed electromagnetic fields (PEMF) therapy to molecular grounds of the cell.

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7.  Pulsed electromagnetic fields after arthroscopic treatment for osteochondral defects of the talus: double-blind randomized controlled multicenter trial.

Authors:  Christiaan J A van Bergen; Leendert Blankevoort; Rob J de Haan; Inger N Sierevelt; Duncan E Meuffels; Pieter R N d'Hooghe; Rover Krips; Geert van Damme; C Niek van Dijk
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Review 8.  Rehabilitation and return-to-sports activity after debridement and bone marrow stimulation of osteochondral talar defects.

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9.  Pulsed Electromagnetic Fields and Tissue Engineering of the Joints.

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10.  Pulsed electromagnetic fields promote repair of focal articular cartilage defects with engineered osteochondral constructs.

Authors:  Robert M Stefani; Sofia Barbosa; Andrea R Tan; Stefania Setti; Aaron M Stoker; Gerard A Ateshian; Ruggero Cadossi; Gordana Vunjak-Novakovic; Roy K Aaron; James L Cook; J Chloë Bulinski; Clark T Hung
Journal:  Biotechnol Bioeng       Date:  2020-02-05       Impact factor: 4.530

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