A three-dimensional collagen matrix as a suitable culture system for the comparison of cyclic strain and hydrostatic pressure effects on intervertebral disc cells.
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Lutz Claes | Anita Ignatius | Hans-Joachim Wilke | Cornelia Neidlinger-Wilke | Astrid Liedert | L. Claes | H. Wilke | A. Ignatius | C. Neidlinger-Wilke | Karin Würtz | Carla Schmidt | Wolfgang Börm | K. Würtz | W. Börm | A. Liedert | C. Schmidt
[1] H. Gruber,et al. Human disc cells in monolayer vs 3D culture: cell shape, division and matrix formation , 2000, BMC musculoskeletal disorders.
[2] D S McNally,et al. Effects of hydrostatic pressure on matrix synthesis in different regions of the intervertebral disk. , 1996, Journal of applied physiology.
[3] I. Stokes,et al. Mechanical modulation of intervertebral disc thickness in growing rat tails. , 1998, Journal of spinal disorders.
[4] J. Lotz,et al. Compression-induced degeneration of the intervertebral disc: an in vivo mouse model and finite-element study. , 1998, Spine.
[5] L. Claes,et al. New in vivo measurements of pressures in the intervertebral disc in daily life. , 1999, Spine.
[6] I A Stokes,et al. Surface strain on human intervertebral discs , 1987, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[7] W C Hutton,et al. The effect of hydrostatic pressure on intervertebral disc metabolism. , 1999, Spine.
[8] I A Stokes,et al. Compression-induced changes in intervertebral disc properties in a rat tail model. , 1999, Spine.
[9] Martin H Krag,et al. Influence of fixed charge density magnitude and distribution on the intervertebral disc: applications of a poroelastic and chemical electric (PEACE) model. , 2003, Journal of biomechanical engineering.
[10] H. Gruber,et al. The influence of Matrigel or growth factor reduced Matrigel on human intervertebral disc cell growth and proliferation. , 1999, Histology and Histopathology.
[11] W. Hutton,et al. Effect of Tail Suspension (or Simulated Weightlessness) on the Lumbar Intervertebral Disc: Study of Proteoglycans and Collagen , 2002, Spine.
[12] C Neidlinger-Wilke,et al. Cyclic stretching of human osteoblasts affects proliferation and metabolism: A new experimental method and its application , 1994, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[13] J. Melrose,et al. Differential Expression of Proteoglycan Epitopes and Growth Characteristics of Intervertebral Disc Cells Grown in Alginate Bead Culture , 2001, Cells Tissues Organs.
[14] M. Revel,et al. Monolayer anulus fibrosus cell cultures in a mechanically active environment: local culture condition adaptations and cell phenotype study. , 2000, The Journal of laboratory and clinical medicine.
[15] M. Ishihara,et al. An atelocollagen honeycomb-shaped scaffold with a membrane seal (ACHMS-scaffold) for the culture of annulus fibrosus cells from an intervertebral disc. , 2003, Journal of biomedical materials research. Part A.
[16] L. Setton,et al. The micromechanical environment of intervertebral disc cells: effect of matrix anisotropy and cell geometry predicted by a linear model. , 2000, Journal of biomechanical engineering.
[17] S. Ayad,et al. 1991 Volvo Award in Basic Sciences: Collagen Types Around the Cells of the Intervertebral Disc and Cartilage End Plate: An Immunolocalization Study , 1991, Spine.
[18] A Shirazi-Adl,et al. A finite element study of a lumbar motion segment subjected to pure sagittal plane moments. , 1986, Journal of biomechanics.
[19] Mehran Kasra,et al. Effect of dynamic hydrostatic pressure on rabbit intervertebral disc cells , 2003, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[20] E. Thonar,et al. Metabolism of the Extracellular Matrix Formed by Intervertebral Disc Cells Cultured in Alginate , 1997, Spine.
[21] M. Adams,et al. Internal Intervertebral Disc Mechanics as Revealed by Stress Profilometry , 1992, Spine.
[22] D S McNally,et al. 'Stress' distributions inside intervertebral discs. The effects of age and degeneration. , 1996, The Journal of bone and joint surgery. British volume.
[23] D Kaspar,et al. Tissue engineering of bone: effects of mechanical strain on osteoblastic cells in type I collagen matrices. , 2005, Biomaterials.
[24] H. Gruber,et al. Cell shape and gene expression in human intervertebral disc cells: in vitro tissue engineering studies. , 2003, Biotechnic & histochemistry : official publication of the Biological Stain Commission.
[25] J. Melrose,et al. Differential expression of proteoglycan epitopes by ovine intervertebral disc cells in calcium alginate microspheres , 1998, Journal of anatomy.
[26] Pascal Richette,et al. Cyclic tensile stretch modulates proteoglycan production by intervertebral disc annulus fibrosus cells through production of nitrite oxide , 2003, Journal of cellular biochemistry.
[27] J. Urban,et al. Cells From Different Regions of the Intervertebral Disc: Effect of Culture System on Matrix Expression and Cell Phenotype , 2002, Spine.
[28] T. Oegema,et al. Identification of heterogeneous cell populations in normal human intervertebral disc. , 1995, Journal of anatomy.
[29] James Melrose,et al. Spinal Biomechanics and Aging Are Major Determinants of the Proteoglycan Metabolism of Intervertebral Disc Cells , 2000, Spine.
[30] M. Aebi,et al. The Potential and Limitations of a Cell-Seeded Collagen/Hyaluronan Scaffold to Engineer an Intervertebral Disc-Like Matrix , 2003, Spine.
[31] M. Tsuzaki,et al. IL‐1β sensitizes intervertebral disc annulus cells to fluid‐induced shear stress , 2001, Journal of cellular biochemistry.
[32] H. Gruber,et al. Recent Advances in Disc Cell Biology , 2003, Spine.
[33] N. Boos,et al. 2002 SSE Award Competition in Basic Science: Expression of major matrix metalloproteinases is associated with intervertebral disc degradation and resorption , 2002, European Spine Journal.
[34] Koichi Masuda,et al. The Origin of Chondrocytes in the Nucleus Pulposus and Histologic Findings Associated With the Transition of a Notochordal Nucleus Pulposus to a Fibrocartilaginous Nucleus Pulposus in Intact Rabbit Intervertebral Discs , 2003, Spine.
[35] J. Urban,et al. The role of the physicochemical environment in determining disc cell behaviour. , 2002, Biochemical Society transactions.
[36] H. Tsuji,et al. Effects of Hydrostatic Pressure on Matrix Synthesis and Matrix Metalloproteinase Production in the Human Lumbar Intervertebral Disc , 1997, Spine.
[37] W C Hutton,et al. Do the intervertebral disc cells respond to different levels of hydrostatic pressure? , 2001, Clinical biomechanics.
[38] T. Takenaka,et al. Cyclic mechanical stretch stress increases the growth rate and collagen synthesis of nucleus pulposus cells in vitro. , 1999, Spine.
[39] H. Baba,et al. Herniation of Cervical Intervertebral Disc: Immunohistochemical Examination and Measurement of Nitric Oxide Production , 2001, Spine.
[40] J. Melrose,et al. REGULATION OF GELATINASE‐A (MMP‐2) PRODUCTION BY OVINE INTERVERTEBRAL DISC NUCLEUS PULPOSUS CELLS GROWN IN ALGINATE BEAD CULTURE BY TRANSFORMING GROWTH FACTOR‐β1AND INSULIN LIKE GROWTH FACTOR‐I , 2001, Cell biology international.
[41] J. Urban,et al. Swelling Pressure of the Lumbar Intervertebral Discs: Influence of Age, Spinal Level, Composition, and Degeneration , 1988, Spine.
[42] P. Weinhold,et al. Annulus cells release ATP in response to vibratory loading in vitro , 2003, Journal of cellular biochemistry.
[43] Michael A. Adams,et al. 'Stress' distributions inside intervertebral discs , 1996 .