Mesenchymal Stem Cells in Cartilage Repair: State of the Art and Methods to monitor Cell Growth, Differentiation and Cartilage Regeneration

被引:32
|
作者
Galle, J. [2 ]
Bader, A. [3 ]
Hepp, P. [7 ]
Grill, W. [4 ]
Fuchs, B. [1 ]
Kaes, J. A. [5 ]
Krinner, A. [2 ]
Marquass, B. [7 ]
Mueller, K. [5 ]
Schiller, J. [1 ]
Schulz, R. M. [3 ]
von Buttlar, M. [4 ]
von der Burg, E. [4 ]
Zscharnack, M. [3 ]
Loeffler, M. [2 ,6 ]
机构
[1] Univ Leipzig, Inst Med Phys & Biophys, Fak Med, D-04107 Leipzig, Germany
[2] Univ Leipzig, Interdisciplinary Ctr Bioinformat, Fac Med, D-04107 Leipzig, Germany
[3] Univ Leipzig, Ctr Biotechnol & Biomed, Fac Med, D-04107 Leipzig, Germany
[4] Univ Leipzig, Fac Phys & Earth Sci, Inst Expt Phys 2, D-04107 Leipzig, Germany
[5] Univ Leipzig, Fac Phys & Earth Sci, Inst Expt Phys 1, D-04107 Leipzig, Germany
[6] Univ Leipzig, Inst Med Stat & Epidemiol, D-04107 Leipzig, Germany
[7] Univ Leipzig, Dept Trauma & Reconstruct Surg, D-04107 Leipzig, Germany
关键词
Stem cells; cartilage; extracellular matrix; modeling; microscopy; mass spectrometry; MALDI-TOF-MS; AUTOLOGOUS CHONDROCYTE IMPLANTATION; TISSUE-ENGINEERED CARTILAGE; HUMAN BONE-MARROW; ASSISTED LASER-DESORPTION; IN-VITRO CHONDROGENESIS; LONG-TERM CULTURES; ARTICULAR-CARTILAGE; MASS-SPECTROMETRY; STROMAL CELLS;
D O I
10.2174/092986710791331095
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Degenerative joint diseases caused by rheumatism, joint dysplasia or traumata are particularly widespread in countries with high life expectation. Although there is no absolutely convincing cure available so far, hyaline cartilage and bone defects resulting from joint destruction can be treated today by appropriate transplantations. Recently, procedures were developed based on autologous chondrocytes from intact joint areas. The chondrocytes are expanded in cell culture and subsequently transplanted into the defect areas of the affected joints. However, these autologous chondrocytes are characterized by low expansion capacity and the synthesis of extracellular matrix of poor functionality and quality. An alternative approach is the use of adult mesenchymal stem cells (MSCs). These cells effectively expand in 2D culture and have the potential to differentiate into various cell types, including chondrocytes. Furthermore, they have the ability to synthesize extracellular matrix with properties mimicking closely the healthy hyaline joint cartilage. Beside a more general survey of the architecture of hyaline cartilage, its composition and the pathological processes of joint diseases, we will describe here which advances were achieved recently regarding the development of closed, aseptic bioreactors for the production of autologous grafts for cartilage regeneration based on MSCs. Additionally, a novel mathematical model will be presented that supports the understanding of the growth and differentiation of MSCs. It will be particularly emphasized that such models are helpful to explain the well-known fact that MSCs exhibit improved growth properties under reduced oxygen pressure and limited supply with nutrients. Finally, it will be comprehensively shown how different analytical methods can be used to characterize MSCs on different levels. Besides discussing methods for non-invasive monitoring and tracking of the cells and the determination of their elastic properties, mass spectrometric methods to evaluate the lipid compositions of cells will be highlighted.
引用
收藏
页码:2274 / 2291
页数:18
相关论文
共 50 条
  • [21] Role of RHEB in Regulating Differentiation Fate of Mesenchymal Stem Cells for Cartilage and Bone Regeneration
    Ashraf, Sajjad
    Han, In-Bo
    Park, Hansoo
    Lee, Soo-Hong
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2017, 18 (04)
  • [22] Articular Cartilage Repair With Magnetic Mesenchymal Stem Cells
    Kamei, Goki
    Kobayashi, Takaaki
    Ohkawa, Shingo
    Kongcharoensombat, Wirat
    Adachi, Nobuo
    Takazawa, Kobun
    Shibuya, Hayatoshi
    Deie, Masataka
    Hattori, Koji
    Goldberg, Jeffrey L.
    Ochi, Mitsuo
    AMERICAN JOURNAL OF SPORTS MEDICINE, 2013, 41 (06): : 1255 - 1264
  • [23] FIBROBLAST GROWTH FACTOR 2 PROMOTES REGENERATION OF CARTILAGE BY ATTRACTING MESENCHYMAL STEM CELLS TO THE SITE OF CARTILAGE INJURY
    Khan, S. N.
    Muhammad, H.
    Scammahorn, J. J.
    Dell'Accio, F.
    Vincent, T. L.
    OSTEOARTHRITIS AND CARTILAGE, 2018, 26 : S37 - S37
  • [24] Isolation, Characterization, and Differentiation of Stem Cells for Cartilage Regeneration
    Beane, Olivia S.
    Darling, Eric M.
    ANNALS OF BIOMEDICAL ENGINEERING, 2012, 40 (10) : 2079 - 2097
  • [25] Isolation, Characterization, and Differentiation of Stem Cells for Cartilage Regeneration
    Olivia S. Beane
    Eric M. Darling
    Annals of Biomedical Engineering, 2012, 40 : 2079 - 2097
  • [26] Cartilage Repair and Mesenchymal Cells
    Davidson, E. N. Blaney
    Hellingman, C. A.
    Koevoet, W.
    Vitters, E. L.
    van den Berg, W. B.
    van Osch, G. J.
    van der Kraan, P. M.
    OSTEOARTHRITIS AND CARTILAGE, 2010, 18 : S79 - S79
  • [27] Repair of articular cartilage defect with autologous mesenchymal stem cells with acellular cartilage matrix
    Wang, DY
    Yang, DP
    Guan, DH
    Guo, TF
    Han, XF
    TISSUE ENGINEERING, 2006, 12 (04): : 1106 - 1106
  • [28] New aspect in cartilage regeneration using mesenchymal stem cells
    Kim, Yun Hee
    Lee, Jin Woo
    TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2007, 4 (03) : 316 - 320
  • [29] Osteoarthritis-The Role of Mesenchymal Stem Cells in Cartilage Regeneration
    Gherghel, Robert
    Macovei, Luana Andreea
    Burlui, Maria-Alexandra
    Cardoneanu, Anca
    Rezus, Ioana-Irina
    Mihai, Ioana Ruxandra
    Rezus, Elena
    APPLIED SCIENCES-BASEL, 2023, 13 (19):
  • [30] Mesenchymal Stem Cells and Nanofibers as Scaffolds for the Regeneration of Thyroid Cartilage
    Jotz, Geraldo P.
    da Luz Soster, Paula R.
    Kunrath, Seno O.
    Steffens, Daniela
    Braghirolli, Daikelly I.
    Zettler, Claudio Galleano
    Beck, Carlos A.
    Muccillo, Marcelo
    Lopes, Rui F. F.
    Mastella, Bernardo
    Pranke, Patricia
    LARYNGOSCOPE, 2014, 124 (12): : E455 - E460