Literature DB >> 28463576

Advances in Application of Mechanical Stimuli in Bioreactors for Cartilage Tissue Engineering.

Ke Li1, Chunqiu Zhang1, Lulu Qiu1, Lilan Gao1, Xizheng Zhang1.   

Abstract

Articular cartilage (AC) is the weight-bearing tissue in diarthroses. It lacks the capacity for self-healing once there are injuries or diseases due to its avascularity. With the development of tissue engineering, repairing cartilage defects through transplantation of engineered cartilage that closely matches properties of native cartilage has become a new option for curing cartilage diseases. The main hurdle for clinical application of engineered cartilage is how to develop functional cartilage constructs for mass production in a credible way. Recently, impressive hyaline cartilage that may have the potential to provide capabilities for treating large cartilage lesions in the future has been produced in laboratories. The key to functional cartilage construction in vitro is to identify appropriate mechanical stimuli. First, they should ensure the function of metabolism because mechanical stimuli play the role of blood vessels in the metabolism of AC, for example, acquiring nutrition and removing wastes. Second, they should mimic the movement of synovial joints and produce phenotypically correct tissues to achieve the adaptive development between the micro- and macrostructure and function. In this article, we divide mechanical stimuli into three types according to forces transmitted by different media in bioreactors, namely forces transmitted through the liquid medium, solid medium, or other media, then we review and summarize the research status of bioreactors for cartilage tissue engineering (CTE), mainly focusing on the effects of diverse mechanical stimuli on engineered cartilage. Based on current researches, there are several motion patterns in knee joints; but compression, tension, shear, fluid shear, or hydrostatic pressure each only partially reflects the mechanical condition in vivo. In this study, we propose that rolling-sliding-compression load consists of various stimuli that will represent better mechanical environment in CTE. In addition, engineers often ignore the importance of biochemical factors to the growth and development of engineered cartilage. In our point of view, only by fully considering synergistic effects of mechanical and biochemical factors can we find appropriate culture conditions for functional cartilage constructs. Once again, rolling-sliding-compression load under appropriate biochemical conditions may be conductive to realize the adaptive development between the structure and function of engineered cartilage in vitro.

Entities:  

Keywords:  articular cartilage; bioreactor; chondrocytes; mechanical stimulus; mechanobiology; tissue engineering

Mesh:

Year:  2017        PMID: 28463576     DOI: 10.1089/ten.TEB.2016.0427

Source DB:  PubMed          Journal:  Tissue Eng Part B Rev        ISSN: 1937-3368            Impact factor:   6.389


  10 in total

Review 1.  A Guide for Using Mechanical Stimulation to Enhance Tissue-Engineered Articular Cartilage Properties.

Authors:  Evelia Y Salinas; Jerry C Hu; Kyriacos Athanasiou
Journal:  Tissue Eng Part B Rev       Date:  2018-04-26       Impact factor: 6.389

2.  Distinctive Roles of Wnt Signaling in Chondrogenic Differentiation of BMSCs under Coupling of Pressure and Platelet-Rich Fibrin.

Authors:  Baixiang Cheng; Fan Feng; Fan Shi; Jinmei Huang; Songbai Zhang; Yue Quan; Teng Tu; Yanli Liu; Junjun Wang; Ying Zhao; Min Zhang
Journal:  Tissue Eng Regen Med       Date:  2022-04-25       Impact factor: 4.451

3.  Chitosan-cartilage extracellular matrix hybrid scaffold induces chondrogenic differentiation to adipose-derived stem cells.

Authors:  I-Chan Lin; Tsung-Jen Wang; Chien-Liang Wu; Dai-Hua Lu; Yi-Ru Chen; Kai-Chiang Yang
Journal:  Regen Ther       Date:  2020-05-15       Impact factor: 3.419

4.  Bioreactor for mobilization of mesenchymal stem/stromal cells into scaffolds under mechanical stimulation: Preliminary results.

Authors:  Carolina Gamez; Barbara Schneider-Wald; Andy Schuette; Michael Mack; Luisa Hauk; Arif Ul Maula Khan; Norbert Gretz; Marcus Stoffel; Karen Bieback; Markus L Schwarz
Journal:  PLoS One       Date:  2020-01-10       Impact factor: 3.240

Review 5.  Cartilage Tissue Engineering Approaches Need to Assess Fibrocartilage When Hydrogel Constructs Are Mechanically Loaded.

Authors:  Hamed Alizadeh Sardroud; Tasker Wanlin; Xiongbiao Chen; B Frank Eames
Journal:  Front Bioeng Biotechnol       Date:  2022-01-12

Review 6.  Strategies for Articular Cartilage Repair and Regeneration.

Authors:  Yanxi Liu; Karan M Shah; Jian Luo
Journal:  Front Bioeng Biotechnol       Date:  2021-12-17

7.  Cartilage Repair Capacity within a Single Full-Thickness Chondral Defect in a Porcine Autologous Matrix-Induced Chondrogenesis Model Is Affected by the Location within the Defect.

Authors:  E Salonius; A Meller; T Paatela; A Vasara; J Puhakka; M Hannula; A-M Haaparanta; I Kiviranta; V Muhonen
Journal:  Cartilage       Date:  2021-07-26       Impact factor: 3.117

8.  Strain distribution of repaired articular cartilage defects by tissue engineering under compression loading.

Authors:  Shilei Wang; Yan Bao; Yinjie Guan; Chunqiu Zhang; Haiying Liu; Xu Yang; Lilan Gao; Tongtong Guo; Qian Chen
Journal:  J Orthop Surg Res       Date:  2018-01-30       Impact factor: 2.359

9.  Influence of Mechanical Unloading on Articular Chondrocyte Dedifferentiation.

Authors:  Simon L Wuest; Martina Caliò; Timon Wernas; Samuel Tanner; Christina Giger-Lange; Fabienne Wyss; Fabian Ille; Benjamin Gantenbein; Marcel Egli
Journal:  Int J Mol Sci       Date:  2018-04-25       Impact factor: 5.923

10.  Prenatal muscle forces are necessary for vertebral segmentation and disc structure, but not for notochord involution in mice.

Authors:  A Levillain; S Ahmed; D-M Kaimaki; S Schuler; S Barros; D Labonte; J C Iatridis; N C Nowlan
Journal:  Eur Cell Mater       Date:  2021-05-22       Impact factor: 3.942

  10 in total

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