Literature DB >> 17318529

Cartilage tissue engineering and bioreactor systems for the cultivation and stimulation of chondrocytes.

Ronny Maik Schulz1, Augustinus Bader.   

Abstract

Damage to and degeneration of articular cartilage is a major health issue in industrialized nations. Articular cartilage has a particularly limited capacity for auto regeneration. At present, there is no established therapy for a sufficiently reliable and durable replacement of damaged articular cartilage. In this, as well as in other areas of regenerative medicine, tissue engineering methods are considered to be a promising therapeutic component. Nevertheless, there remain obstacles to the establishment of tissue-engineered cartilage as a part of the routine therapy for cartilage defects. One necessary aspect of potential tissue engineering-based therapies for cartilage damage that requires both elucidation and progress toward practical solutions is the reliable, cost effective cultivation of suitable tissue. Bioreactors and associated methods and equipment are the tools with which it is hoped that such a supply of tissue-engineered cartilage can be provided. The fact that in vivo adaptive physical stimulation influences chondrocyte function by affecting mechanotransduction leads to the development of specifically designed bioreactor devices that transmit forces like shear, hydrostatic pressure, compression, and combinations thereof to articular and artificial cartilage in vitro. This review summarizes the basic knowledge of chondrocyte biology and cartilage dynamics together with the exploration of the various biophysical principles of cause and effect that have been integrated into bioreactor systems for the cultivation and stimulation of chondrocytes.

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Year:  2007        PMID: 17318529     DOI: 10.1007/s00249-007-0139-1

Source DB:  PubMed          Journal:  Eur Biophys J        ISSN: 0175-7571            Impact factor:   2.095


  233 in total

1.  Tissue shear deformation stimulates proteoglycan and protein biosynthesis in bovine cartilage explants.

Authors:  M Jin; E H Frank; T M Quinn; E B Hunziker; A J Grodzinsky
Journal:  Arch Biochem Biophys       Date:  2001-11-01       Impact factor: 4.013

Review 2.  Domain organization, genomic structure, evolution, and regulation of expression of the aggrecan gene family.

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3.  Combination of reduced oxygen tension and intermittent hydrostatic pressure: a useful tool in articular cartilage tissue engineering.

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Journal:  J Biomech       Date:  2001-07       Impact factor: 2.712

4.  The nutrition of mature and immature cartilage in rabbits. An autoradiographic study.

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Journal:  J Bone Joint Surg Br       Date:  1969-02-01

Review 5.  Constitutive modeling of articular cartilage and biomacromolecular solutions.

Authors:  W M Lai; V C Mow; W Zhu
Journal:  J Biomech Eng       Date:  1993-11       Impact factor: 2.097

6.  In vitro chondrogenesis of bone marrow-derived mesenchymal progenitor cells.

Authors:  B Johnstone; T M Hering; A I Caplan; V M Goldberg; J U Yoo
Journal:  Exp Cell Res       Date:  1998-01-10       Impact factor: 3.905

Review 7.  Integration of glycosphingolipid metabolism and cell-fate decisions in cancer and stem cells: review and hypothesis.

Authors:  Erhard Bieberich
Journal:  Glycoconj J       Date:  2004       Impact factor: 2.916

8.  In vitro response of chondrocytes to mechanical loading. The effect of short term mechanical tension.

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Journal:  Connect Tissue Res       Date:  1984       Impact factor: 3.417

9.  Effects of static and cyclic compressive loading on articular cartilage plugs in vitro.

Authors:  M J Palmoski; K D Brandt
Journal:  Arthritis Rheum       Date:  1984-06

10.  Composition of cell-polymer cartilage implants.

Authors:  L E Freed; J C Marquis; R Langer; G Vunjak-Novakovic; J Emmanual
Journal:  Biotechnol Bioeng       Date:  1994-03-25       Impact factor: 4.530

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  50 in total

1.  Effects of perfusion and dynamic loading on human neocartilage formation in alginate hydrogels.

Authors:  Shawn P Grogan; Sujata Sovani; Chantal Pauli; Jianfen Chen; Andreas Hartmann; Clifford W Colwell; Martin K Lotz; Darryl D D'Lima
Journal:  Tissue Eng Part A       Date:  2012-06-12       Impact factor: 3.845

2.  Novel technique for online characterization of cartilaginous tissue properties.

Authors:  Tai-Yi Yuan; Chun-Yuh Huang; Wei Yong Gu
Journal:  J Biomech Eng       Date:  2011-09       Impact factor: 2.097

Review 3.  Regenerative rehabilitation: The role of mechanotransduction in orthopaedic regenerative medicine.

Authors:  Vaida Glatt; Christopher H Evans; Martin J Stoddart
Journal:  J Orthop Res       Date:  2019-01-16       Impact factor: 3.494

4.  "Deep-media culture condition" promoted lumen formation of endothelial cells within engineered three-dimensional tissues in vitro.

Authors:  Sachiko Sekiya; Tatsuya Shimizu; Masayuki Yamato; Teruo Okano
Journal:  J Artif Organs       Date:  2011-02-02       Impact factor: 1.731

5.  Design and performance of an optically accessible, low-volume, mechanobioreactor for long-term study of living constructs.

Authors:  Jeffrey A Paten; Ramin Zareian; Nima Saeidi; Suzanna A Melotti; Jeffrey W Ruberti
Journal:  Tissue Eng Part C Methods       Date:  2011-04-21       Impact factor: 3.056

6.  Impact of oxygen environment on mesenchymal stem cell expansion and chondrogenic differentiation.

Authors:  A Krinner; M Zscharnack; A Bader; D Drasdo; J Galle
Journal:  Cell Prolif       Date:  2009-08       Impact factor: 6.831

7.  Development and Characterization of Acellular Extracellular Matrix Scaffolds from Porcine Menisci for Use in Cartilage Tissue Engineering.

Authors:  Ying-Chen Chen; Ray-Neng Chen; Hua-Jing Jhan; Der-Zen Liu; Hsiu-O Ho; Yong Mao; Joachim Kohn; Ming-Thau Sheu
Journal:  Tissue Eng Part C Methods       Date:  2015-06-10       Impact factor: 3.056

8.  A novel system for studying mechanical strain waveform-dependent responses in vascular smooth muscle cells.

Authors:  Jason Lee; Mitchell Wong; Quentin Smith; Aaron B Baker
Journal:  Lab Chip       Date:  2013-12-07       Impact factor: 6.799

9.  Physiologic deformational loading does not counteract the catabolic effects of interleukin-1 in long-term culture of chondrocyte-seeded agarose constructs.

Authors:  Eric G Lima; Andrea R Tan; Timon Tai; Liming Bian; Gerard A Ateshian; James L Cook; Clark T Hung
Journal:  J Biomech       Date:  2008-09-26       Impact factor: 2.712

10.  Hyperosmolarity regulates SOX9 mRNA posttranscriptionally in human articular chondrocytes.

Authors:  Simon R Tew; Mandy J Peffers; Tristan R McKay; Emma T Lowe; Wasim S Khan; Timothy E Hardingham; Peter D Clegg
Journal:  Am J Physiol Cell Physiol       Date:  2009-08-05       Impact factor: 4.249

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