Literature DB >> 21338528

Spontaneous hyaline cartilage regeneration can be induced in an osteochondral defect created in the femoral condyle using a novel double-network hydrogel.

Masashi Yokota1, Kazunori Yasuda, Nobuto Kitamura, Kazunobu Arakaki, Shin Onodera, Takayuki Kurokawa, Jian-Ping Gong.   

Abstract

BACKGROUND: Functional repair of articular osteochondral defects remains a major challenge not only in the field of knee surgery but also in tissue regeneration medicine. The purpose is to clarify whether the spontaneous hyaline cartilage regeneration can be induced in a large osteochondral defect created in the femoral condyle by means of implanting a novel double-network (DN) gel at the bottom of the defect.
METHODS: Twenty-five mature rabbits were used in this study. In the bilateral knees of each animal, we created an osteochondral defect having a diameter of 2.4-mm in the medial condyle. Then, in 21 rabbits, we implanted a DN gel plug into a right knee defect so that a vacant space of 1.5-mm depth (in Group I), 2.5-mm depth (in Group II), or 3.5-mm depth (in Group III) was left. In the left knee, we did not apply any treatment to the defect to obtain the control data. All the rabbits were sacrificed at 4 weeks, and the gross and histological evaluations were performed. The remaining 4 rabbits underwent the same treatment as used in Group II, and real-time PCR analysis was performed at 4 weeks.
RESULTS: The defect in Group II was filled with a sufficient volume of the hyaline cartilage tissue rich in proteoglycan and type-2 collagen. The Wayne's gross appearance and histology scores showed that Group II was significantly greater than Group I, III, and Control (p < 0.012). The relative expression level of type-2 collagen, aggrecan, and SOX9 mRNAs was significantly greater in Group II than in the control group (p < 0.023).
CONCLUSIONS: This study demonstrated that spontaneous hyaline cartilage regeneration can be induced in vivo in an osteochondral defect created in the femoral condyle by means of implanting the DN gel plug at the bottom of the defect so that an approximately 2-mm deep vacant space was intentionally left in the defect. This fact has prompted us to propose an innovative strategy without cell culture to repair osteochondral lesions in the femoral condyle.

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Year:  2011        PMID: 21338528      PMCID: PMC3050780          DOI: 10.1186/1471-2474-12-49

Source DB:  PubMed          Journal:  BMC Musculoskelet Disord        ISSN: 1471-2474            Impact factor:   2.362


  29 in total

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Authors:  B Kurz; M Jin; P Patwari; D M Cheng; M W Lark; A J Grodzinsky
Journal:  J Orthop Res       Date:  2001-11       Impact factor: 3.494

Review 3.  Pressure and shear differentially alter human articular chondrocyte metabolism: a review.

Authors:  R Lane Smith; Dennis R Carter; David J Schurman
Journal:  Clin Orthop Relat Res       Date:  2004-10       Impact factor: 4.176

Review 4.  Microfracture: surgical technique and rehabilitation to treat chondral defects.

Authors:  J R Steadman; W G Rodkey; J J Rodrigo
Journal:  Clin Orthop Relat Res       Date:  2001-10       Impact factor: 4.176

5.  Treatment of osteochondritis dissecans of the knee with autologous chondrocyte transplantation: results at two to ten years.

Authors:  Lars Peterson; Tom Minas; Mats Brittberg; Anders Lindahl
Journal:  J Bone Joint Surg Am       Date:  2003       Impact factor: 5.284

6.  Autologous osteochondral mosaicplasty for the treatment of full-thickness defects of weight-bearing joints: ten years of experimental and clinical experience.

Authors:  László Hangody; Péter Füles
Journal:  J Bone Joint Surg Am       Date:  2003       Impact factor: 5.284

Review 7.  Articular cartilage repair using tissue engineering technique--novel approach with minimally invasive procedure.

Authors:  Mitsuo Ochi; Nobuo Adachi; Hiroo Nobuto; Shinobu Yanada; Yohei Ito; Muhammad Agung
Journal:  Artif Organs       Date:  2004-01       Impact factor: 3.094

8.  Observations of subchondral plate advancement during osteochondral repair: a histomorphometric and mechanical study in the rabbit femoral condyle.

Authors:  Y-S Qiu; B F Shahgaldi; W J Revell; F W Heatley
Journal:  Osteoarthritis Cartilage       Date:  2003-11       Impact factor: 6.576

9.  Treatment of deep cartilage defects in the knee with autologous chondrocyte transplantation.

Authors:  M Brittberg; A Lindahl; A Nilsson; C Ohlsson; O Isaksson; L Peterson
Journal:  N Engl J Med       Date:  1994-10-06       Impact factor: 91.245

10.  Mechanical compression modulates matrix biosynthesis in chondrocyte/agarose culture.

Authors:  M D Buschmann; Y A Gluzband; A J Grodzinsky; E B Hunziker
Journal:  J Cell Sci       Date:  1995-04       Impact factor: 5.285

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  14 in total

Review 1.  Toward improved clinical relevance of cartilage insult models in the rabbit knee: surgical access to the habitual weight-bearing region.

Authors:  Yuki Tochigi; Joseph A Buckwalter; Thomas D Brown
Journal:  Iowa Orthop J       Date:  2013

2.  In vivo experimental imaging of osteochondral defects and their healing using (99m)Tc-NTP 15-5 radiotracer.

Authors:  E Miot-Noirault; J Guicheux; A Vidal; O Gauthier; P Auzeloux; J Lesoeur; F Cachin; S Askienazy; J M Chezal; C Vinatier
Journal:  Eur J Nucl Med Mol Imaging       Date:  2012-03-08       Impact factor: 9.236

3.  Oligo[poly(ethylene glycol)fumarate] hydrogel enhances osteochondral repair in porcine femoral condyle defects.

Authors:  James H Hui; Xiafei Ren; Mohd Hassan Afizah; Kerm Sin Chian; Antonios G Mikos
Journal:  Clin Orthop Relat Res       Date:  2013-04       Impact factor: 4.176

4.  Intra-articular administration of hyaluronic acid increases the volume of the hyaline cartilage regenerated in a large osteochondral defect by implantation of a double-network gel.

Authors:  Takaaki Fukui; Nobuto Kitamura; Takayuki Kurokawa; Masashi Yokota; Eiji Kondo; Jian Ping Gong; Kazunori Yasuda
Journal:  J Mater Sci Mater Med       Date:  2014-01-07       Impact factor: 3.896

5.  Age-Dependent Subchondral Bone Remodeling and Cartilage Repair in a Minipig Defect Model.

Authors:  Christian G Pfeifer; Matthew B Fisher; Vishal Saxena; Minwook Kim; Elizabeth A Henning; David A Steinberg; George R Dodge; Robert L Mauck
Journal:  Tissue Eng Part C Methods       Date:  2017-10-27       Impact factor: 3.056

6.  Enzymatically cross-linked alginic-hyaluronic acid composite hydrogels as cell delivery vehicles.

Authors:  Nitya Ganesh; Craig Hanna; Shantikumar V Nair; Lakshmi S Nair
Journal:  Int J Biol Macromol       Date:  2013-01-26       Impact factor: 6.953

7.  A Rabbit Femoral Condyle Defect Model for Assessment of Osteochondral Tissue Regeneration.

Authors:  Jason L Guo; Yu Seon Kim; Elysse A Orchard; Jeroen J J P van den Beucken; John A Jansen; Mark E Wong; Antonios G Mikos
Journal:  Tissue Eng Part C Methods       Date:  2020-11-11       Impact factor: 3.056

8.  Gene expression profile of the cartilage tissue spontaneously regenerated in vivo by using a novel double-network gel: comparisons with the normal articular cartilage.

Authors:  Ryusei Imabuchi; Yoshihiro Ohmiya; Hyuck Joon Kwon; Shin Onodera; Nobuto Kitamura; Takayuki Kurokawa; Jian Ping Gong; Kazunori Yasuda
Journal:  BMC Musculoskelet Disord       Date:  2011-09-29       Impact factor: 2.362

9.  Hyaluronic acid affects the in vitro induction effects of synthetic PAMPS and PDMAAm hydrogels on chondrogenic differentiation of ATDC5 cells, depending on the level of concentration.

Authors:  Katsuhisa Yoshikawa; Nobuto Kitamura; Takayuki Kurokawa; Jian Ping Gong; Yutaka Nohara; Kazunori Yasuda
Journal:  BMC Musculoskelet Disord       Date:  2013-02-05       Impact factor: 2.362

10.  Influence of the gel thickness on in vivo hyaline cartilage regeneration induced by double-network gel implanted at the bottom of a large osteochondral defect: short-term results.

Authors:  Hidetoshi Matsuda; Nobuto Kitamura; Takayuki Kurokawa; Kazunobu Arakaki; Jian Ping Gong; Fuminori Kanaya; Kazunori Yasuda
Journal:  BMC Musculoskelet Disord       Date:  2013-01-31       Impact factor: 2.362

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