Literature DB >> 18756688

Mechanical vibrations increase the proliferation of articular chondrocytes in high-density culture.

J A Kaupp1, S D Waldman.   

Abstract

Tissue engineering is a promising approach for articular cartilage repair; however, it still has proven a challenge to produce tissue from the limited number of cells that can be extracted from a single individual. Relatively few cell expansion methods exist without the problems of dedifferentiation and/or loss of potency. Previously, it has been shown that mechanical vibrations can enhance chondrocyte proliferation in monolayer culture. Thus, it was hypothesized that chondrocytes grown in high-density culture would respond in a similar fashion while maintaining phenotypic stability. Isolated bovine articular chondrocytes were seeded in high-density culture on Millicell filters and subjected to mechanical vibrations 48 h after seeding. Mechanical vibrations enhanced chondrocyte proliferation at frequencies above 350 Hz, with the peak response occurring at a 1g amplitude for a duration of 30 min. Under these conditions, the gene expression of cartilage-specific and dedifferentiation markers (collagen II, collagen I, and aggrecan) were unchanged by the imposed stimulus. To determine the effect of accumulated extracellular matrix (ECM) on this proliferative response, selected cultures were stimulated under the same conditions after varying lengths of preculture. The amount of accumulated ECM (collagen and proteoglycans) decreased this proliferative response, with the cultures becoming insensitive to the stimulus after 1 week of preculture. Thus, mechanical vibration can serve as an effective means preferentially to stimulate the proliferation of chondrocytes during culture, but its effects appear to be limited to the early stages where ECM accumulation is at a minimum.

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Year:  2008        PMID: 18756688     DOI: 10.1243/09544119JEIM376

Source DB:  PubMed          Journal:  Proc Inst Mech Eng H        ISSN: 0954-4119            Impact factor:   1.617


  7 in total

1.  Effective cell collection method using collagenase and ultrasonic vibration.

Authors:  Y Kurashina; K Takemura; S Miyata; J Komotori; T Koyama
Journal:  Biomicrofluidics       Date:  2014-10-21       Impact factor: 2.800

2.  Brief daily exposure to low-intensity vibration mitigates the degradation of the intervertebral disc in a frequency-specific manner.

Authors:  Nilsson Holguin; Gunes Uzer; Fu-Pen Chiang; Clinton Rubin; Stefan Judex
Journal:  J Appl Physiol (1985)       Date:  2011-09-29

3.  Magnetically actuated tissue engineered scaffold: insights into mechanism of physical stimulation.

Authors:  Yulia Sapir-Lekhovitser; Menahem Y Rotenberg; Juergen Jopp; Gary Friedman; Boris Polyak; Smadar Cohen
Journal:  Nanoscale       Date:  2016-01-21       Impact factor: 7.790

4.  Mechanical stimulation of chondrocyte-agarose hydrogels.

Authors:  James A Kaupp; Joanna F Weber; Stephen D Waldman
Journal:  J Vis Exp       Date:  2012-10-27       Impact factor: 1.355

5.  "Naturalization" of Routine Assisted Reproductive Technologies by In Vitro Culture of Embryos with Microvibration: Sex Ratio, Body Length, and Weight of 2,456 Live-Birth Deliveries after Transfer of 9,624 Embryos In Vitro Cultured in Static System and with Microvibration.

Authors:  Vladimir Isachenko; Karl Sterzik; Evgenia Isachenko; Robert Maettner; Plamen Todorov; Gohar Rahimi; Peter Mallmann; Erwin Strehler; Igor Pereligin; José Luis Alabart; Markus Merzenich
Journal:  Biomed Res Int       Date:  2017-12-20       Impact factor: 3.411

6.  Low-frequency mechanical vibration induces apoptosis of A431 epidermoid carcinoma cells.

Authors:  Wresti L Anggayasti; Chikahiro Imashiro; Taiki Kuribara; Kiichiro Totani; Kenjiro Takemura
Journal:  Eng Life Sci       Date:  2020-02-27       Impact factor: 2.678

7.  Potential regenerative rehabilitation technology: implications of mechanical stimuli to tissue health.

Authors:  Colleen L McHenry; Jason Wu; Richard K Shields
Journal:  BMC Res Notes       Date:  2014-06-03
  7 in total

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