Influence of different commercial scaffolds on the in vitro differentiation of human mesenchymal stem cells to nucleus pulposus-like cells

被引:38
作者
Alessandro Bertolo
Marco Mehr
Niklaus Aebli
Martin Baur
Stephen J. Ferguson
Jivko V. Stoyanov
机构
[1] Swiss Paraplegic Research
[2] Institute for Surgical Technology and Biomechanics, University of Bern, Bern
[3] Swiss Paraplegic Center, Nottwil
[4] School of Medicine, Griffith University, Brisbane, QLD
[5] Cantonal Hospital of Lucerne, Lucerne
关键词
Chondrogenesis; Intervertebral disc; Mesenchymal stem cells; Nucleus pulposus and three-dimensional cultures;
D O I
10.1007/s00586-011-1975-3
中图分类号
学科分类号
摘要
Introduction: Cell-based therapies for regeneration of the degenerated intervertebral disc (IVD) are an alternative to current surgical intervention. Mesenchymal stem cells (MSCs), in combination with a scaffold, might be ideal candidates for regenerating nucleus pulposus (NP), the pressure-distributing part of the IVD. While the use of growth factors for MSCs differentiation currently receives major attention, in this study we compare the performance of sponge-like matrixes in supporting cell differentiation into NP-like cells. Materials and methods: Four types matrixes approved as medical devices for other applications were tested as scaffolds for MSCs: two made of equine or porcine collagen, one of gelatin and one of chitosan. Bone marrow-derived human MSCs were seeded in these scaffolds or embedded in alginate, as a three-dimensional control. After five weeks in culture, NP-like differentiation of the cell-scaffold constructs was analyzed by qRT-PCR, histology, total DNA quantification, proteoglycan accumulation and immunohistochemistry. Results: MSCs in collagen matrixes and gelatin produced more mRNA and proteins of the chondrogenic markers collagen type I, collagen type II (COL2) and aggrecan (ACAN), when compared with cells embedded in alginate or chitosan. Proteoglycan accumulation and cell survival were also higher in collagen and gelatin matrixes. Gene expression results were also confirmed by histological and immunohistochemical staining. In contrast to alginate control, the gene expression of the undesired bone marker osteopontin was lower in all tested groups. In porcine collagen supports, MSC expression ratio between COL2/ ACAN closely resembled the expression of nucleus pulposus cells, but gene expression of recently described NP markers keratin 19, PAX1 and FOXF1 was lower. Conclusions: Collagen supports provide a readily available, medically approved and effective scaffold for chondrogenic differentiation in vitro, but the phenotype of differentiated MSCs is not yet completely equivalent to that of NP cells. © Springer-Verlag 2011.
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页码:S826 / S838
页数:12
相关论文
共 41 条
[1]  
Richardson S.M., Mobasheri A., Freemont A.J., Hoyland J.A., Intervertebral disc biology, degeneration and novel tissue engineering and regenerative medicine therapies, Histology and Histopathology, 22, 7-9, pp. 1033-1041, (2007)
[2]  
Sive J.I., Baird P., Jeziorsk M., Watkins A., Hoyland J.A., Freemont A.J., Expression of chondrocyte markers by cells of normal and degenerate intervertebral discs, Journal of Clinical Pathology - Molecular Pathology, 55, 2, pp. 91-97, (2002)
[3]  
Mwale F., Roughley P., Antoniou J., Distinction between the extracellular matrix of the nucleus pulposus and hyaline cartilage: A requisite for tissue engineering of intervertebral disc, Eur Cell Mater, 8, pp. 58-63, (2004)
[4]  
Zhang Y., Sun Z., Liu J., Guo X., Advances in susceptibility genetics of intervertebral degenerative disc disease, Int J Biol Sci, 4, pp. 283-290, (2008)
[5]  
Pye S.R., Reid D.M., Adams J.E., Silman A.J., O'Neill T.W., Influence of weight, body mass index and lifestyle factors on radiographic features of lumbar disc degeneration [4], Annals of the Rheumatic Diseases, 66, 3, pp. 426-427, (2007)
[6]  
Sobajima S., Kim J.S., Gilbertson L.G., Kang J.D., Gene therapy for degenerative disc disease, Gene Therapy, 11, 4, pp. 390-401, (2004)
[7]  
Sobajima S., Vadala G., Shimer A., Kim J.S., Gilbertson L.G., Kang J.D., Feasibility of a stem cell therapy for intervertebral disc degeneration, Spine J, 8, pp. 888-896, (2008)
[8]  
Meisel H.J., Siodla V., Ganey T., Minkus Y., Hutton W.C., Alasevic O.J., Clinical experience in cell-based therapeutics: Disc chondrocyte transplantation. A treatment for degenerated or damaged intervertebral disc, Biomolecular Engineering, 24, 1 SPEC. ISS., pp. 5-21, (2007)
[9]  
Maroudas A., Stockwell R.A., Nachemson A., Urban J., Factors involved in the nutrition of the human lumbar intervertebral disc: Cellularity and diffusion of glucose in vitro, J Anat, 120, pp. 113-130, (1975)
[10]  
Baksh D., Song L., Tuan R.S., Adult mesenchymal stem cells: Characterization, differentiation, and application in cell and gene therapy, J Cell Mol Med, 8, pp. 301-316, (2004)