Processed xenogenic cartilage as innovative biomatrix for cartilage tissue engineering: effects on chondrocyte differentiation and function

被引:65
|
作者
Schwarz, Silke [1 ]
Elsaesser, Alexander F. [1 ]
Koerber, Ludwig [2 ]
Goldberg-Bockhorn, Eva [1 ]
Seitz, Andreas M. [3 ]
Bermueller, Christian [1 ]
Duerselen, Lutz [3 ]
Ignatius, Anita [3 ]
Breiter, Roman [2 ]
Rotter, Nicole [1 ]
机构
[1] Univ Ulm, Dept Otorhinolaryngol, Med Ctr, Frauensteige 12, D-89075 Ulm, Germany
[2] Univ Erlangen Nurnberg, Inst Bioproc Engn, Erlangen, Germany
[3] Univ Ulm, Ctr Musculoskeletal Res Ulm, Inst Orthopaed Res & Biomech, D-89075 Ulm, Germany
关键词
cell differentiation; extracellular matrix; cartilage tissue engineering; 3D cell culture; cartilage reconstruction; xenogenic implant matrix; HUMAN ARTICULAR CHONDROCYTES; SODIUM-HYDROXIDE; GENE-EXPRESSION; HUMAN EAR; SEPTAL CHONDROCYTES; COLLAGEN SCAFFOLDS; NASAL CHONDROCYTES; GROWTH-FACTORS; CELL-ADHESION; PORE-SIZE;
D O I
10.1002/term.1650
中图分类号
Q813 [细胞工程];
学科分类号
摘要
One key point in the development of new bioimplant matrices for the reconstruction and replacement of cartilage defects is to provide an adequate microenvironment to ensure chondrocyte migration and de novo synthesis of cartilage-specific extracellular matrix (ECM). A recently developed decellularization and sterilization process maintains the three-dimensional (3D) collagen structure of native septal cartilage while increasing matrix porosity, which is considered to be crucial for cartilage tissue engineering. Human primary nasal septal chondrocytes were amplified in monolayer culture and 3D-cultured on processed porcine nasal septal cartilage scaffolds. The influence of chondrogenic growth factors on neosynthesis of ECM proteins was examined at the protein and gene expression levels. Seeding experiments demonstrated that processed xenogenic cartilage matrices provide excellent environmental properties for human nasal septal chondrocytes with respect to cell adhesion, migration into the matrix and neosynthesis of cartilage-specific ECM proteins, such as collagen type II and aggrecan. Matrix biomechanical stability indicated that the constructs retrieve full stability and function during 3D culture for up to 42 days, proportional to collagen type II and GAG production. Thus, processed xenogenic cartilage offers a suitable environment for human nasal chondrocytes and has promising potential for cartilage tissue engineering in the head and neck region. Copyright (C) 2012 John Wiley & Sons, Ltd.
引用
收藏
页码:E239 / E251
页数:13
相关论文
共 50 条
  • [1] Cartilage reconstruction from clinical and biomaterials perspective: Processed xenogenic cartilage as novel biomatrix for cartilage tissue engineering
    Schwarz, S.
    Elsaesser, A. F.
    Koerber, L.
    Urlbauer, K.
    Krebs, R.
    Breiter, R.
    Rotter, N.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2012, 6 : 152 - 152
  • [2] Cartilage tissue engineering: Molecular control of chondrocyte differentiation for proper cartilage matrix reconstruction
    Demoor, Magali
    Ollitrault, David
    Gomez-Leduc, Tangni
    Bouyoucef, Mouloud
    Hervieu, Magalie
    Fabre, Hugo
    Lafont, Jerome
    Denoix, Jean-Marie
    Audigie, Fabrice
    Mallein-Gerin, Frederic
    Legendre, Florence
    Galera, Philippe
    BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 2014, 1840 (08): : 2414 - 2440
  • [3] Decellularized Cartilage Matrix as a Novel Biomatrix for Cartilage Tissue-Engineering Applications
    Schwarz, Silke
    Koerber, Ludwig
    Elsaesser, Alexander F.
    Goldberg-Bockhorn, Eva
    Seitz, Andreas M.
    Duerselen, Lutz
    Ignatius, Anita
    Walther, Paul
    Breiter, Roman
    Rotter, Nicole
    TISSUE ENGINEERING PART A, 2012, 18 (21-22) : 2195 - 2209
  • [4] Wnt influence on chondrocyte differentiation and cartilage function
    Yates, KE
    Shortkroff, S
    Reish, RG
    DNA AND CELL BIOLOGY, 2005, 24 (07) : 446 - 457
  • [5] Chondrocyte mecanobiology. Application in cartilage tissue engineering
    Stoltz, JF
    Netter, P
    Huselstein, C
    de Isla, N
    Yang, JW
    Muller, S
    BULLETIN DE L ACADEMIE NATIONALE DE MEDECINE, 2005, 189 (08): : 1803 - 1814
  • [6] Reproducing the Biomechanical Environment of the Chondrocyte for Cartilage Tissue Engineering
    Statham, Patrick
    Jones, Elena
    Jennings, Louise M.
    Fermor, Hazel L.
    TISSUE ENGINEERING PART B-REVIEWS, 2022, 28 (02) : 405 - 420
  • [7] The Review of Nanomaterials Inducing the Differentiation of Stem Cells into Chondrocyte Phenotypes in Cartilage Tissue Engineering
    Xie, Xueping
    Zhang, Qi
    Zhou, Tengfei
    Ma, Quanquan
    Liao, Jinfeng
    CURRENT STEM CELL RESEARCH & THERAPY, 2018, 13 (07) : 600 - 607
  • [8] CARTILAGE TISSUE ENGINEERING USING DECELLULARIZED BIOMATRIX HYDROGEL IN MECHANICAL LOADED BIOREACTOR
    Khanmohammadi, Mehdi
    Bordbar, Sima
    Badali, Elham
    Jalessi, Maryam
    TISSUE ENGINEERING PART A, 2022, 28 : S118 - S118
  • [9] Tissue engineering of stratified articular cartilage from chondrocyte subpopulations
    Klein, TJ
    Schumacher, BL
    Schmidt, TA
    Li, KW
    Voegtline, MS
    Masuda, K
    Thonar, EJMA
    Sah, RL
    OSTEOARTHRITIS AND CARTILAGE, 2003, 11 (08) : 595 - 602
  • [10] Strategies on process engineering of chondrocyte culture for cartilage tissue regeneration
    Sarada Prasanna Mallick
    Amit Rastogi
    Satyavrat Tripathi
    Pradeep Srivastava
    Bioprocess and Biosystems Engineering, 2017, 40 : 601 - 610