𝔖 Bobbio Scriptorium
✦   LIBER   ✦

Repair of porcine articular cartilage defect with a biphasic osteochondral composite

✍ Scribed by Ching-Chuan Jiang; Hongsen Chiang; Chun-Jen Liao; Yu-Ju Lin; Tzong-Fu Kuo; Chang-Shun Shieh; Yi-You Huang; Rocky S. Tuan


Publisher
Elsevier Science
Year
2007
Tongue
English
Weight
736 KB
Volume
25
Category
Article
ISSN
0736-0266

No coin nor oath required. For personal study only.

✦ Synopsis


Abstract

Autologous chondrocyte implantation (ACI) has been recently used to treat cartilage defects. Partly because of the success of mosaicplasty, a procedure that involves the implantation of native osteochondral plugs, it is of potential significance to consider the application of ACI in the form of biphasic osteochondral composites. To test the clinical applicability of such composite construct, we repaired osteochondral defect with ACI at low cell‐seeding density on a biphasic scaffold, and combined graft harvest and implantation in a single surgery. We fabricated a biphasic cylindrical porous plug of DL‐poly‐lactide‐co‐glycolide, with its lower body impregnated with β‐tricalcium phosphate as the osseous phase. Osteochondral defects were surgically created at the weight‐bearing surface of femoral condyles of Lee‐Sung mini‐pigs. Autologous chondrocytes isolated from the cartilage were seeded into the upper, chondral phase of the plug, which was inserted by press‐fitting to fill the defect. Defects treated with cell‐free plugs served as control. Outcome of repair was examined 6 months after surgery. In the osseous phase, the biomaterial retained in the center and cancellous bone formed in the periphery, integrating well with native subchondral bone with extensive remodeling, as depicted on X‐ray roentgenography by higher radiolucency. In the chondral phase, collagen type II immunohistochemistry and Safranin O histological staining showed hyaline cartilage regeneration in the experimental group, whereas only fibrous tissue formed in the control group. On the International Cartilage Repair Society Scale, the experimental group had higher mean scores in surface, matrix, cell distribution, and cell viability than control, but was comparable with the control group in subchondral bone and mineralization. Tensile stress–relaxation behavior determined by uni‐axial indentation test revealed similar creep property between the surface of the experimental specimen and native cartilage, but not the control specimen. Implanted autologous chondrocytes could survive and could yield hyaline‐like cartilage in vivo in the biphasic biomaterial construct. Pre‐seeding of osteogenic cells did not appear to be necessary to regenerate subchondral bone. © 2007 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 25:1277–1290, 2007


📜 SIMILAR VOLUMES


Articular cartilage repair using dediffe
✍ Lin Lin; Chunyan Zhou; Xuelei Wei; Yu Hou; Liheng Zhao; Xin Fu; Jiying Zhang; Ch 📂 Article 📅 2008 🏛 John Wiley and Sons 🌐 English ⚖ 260 KB 👁 1 views

## Abstract ## Objective To observe redifferentiation of dedifferentiated chondrocytes after transplantation into the joint, and to evaluate the ability of dedifferentiated chondrocytes transduced with adenovirus containing bone morphogenetic protein 4 (BMP‐4) to redifferentiate in vitro and in vi

Failure of xenoimplantation using porcin
✍ Ming Pei; Zuoqin Yan; Mark Shoukry; Brandon M. Boyce 📂 Article 📅 2010 🏛 Elsevier Science 🌐 English ⚖ 539 KB

## Abstract The use of xenogeneic tissues offers many advantages with respect to availability, quality control, and timing of tissue harvest. Our previous study indicated that implantation of premature tissue constructs from allogeneic synovium‐derived stem cells (SDSCs) facilitated cartilage tissu

Use of a guanidine extract of deminerali
✍ Takaaki Tanaka; Katsuyuki Fujii; Mitsunobu Ohta; Shigeru Soshi; Atsushi Kitamura 📂 Article 📅 1995 🏛 Elsevier Science 🌐 English ⚖ 779 KB

In order to evaluate the ability of a guanidine extract of demineralized bone to repair osteochondral defects in articular cartilage, plugs made of this extract were implanted into defects in rabbit knees. The repair tissue was examined macroscopically, histologically, and immunohistochemically at 4

Repair of articular cartilage defects wi
✍ Tatsuya Igarashi; Norimasa Iwasaki; Daisuke Kawamura; Yasuhiko Kasahara; Yukinor 📂 Article 📅 2011 🏛 John Wiley and Sons 🌐 English ⚖ 299 KB 👁 1 views

## Abstract We developed an ultra‐purified __in situ__ forming gel as an injectable delivery vehicle of bone marrow stromal cells (BMSCs). Our objective was to assess reparative tissues treated with autologous BMSCs implanted using the injectable implantation system into osteochondral defects in a

Formation of cartilage repair tissue in
✍ Christoph Erggelet; Michaela Endres; Katja Neumann; Lars Morawietz; Jochen Ringe 📂 Article 📅 2009 🏛 Elsevier Science 🌐 English ⚖ 354 KB

## Abstract The aim of our study was to evaluate the mid‐term outcome of a cell‐free polymer‐based cartilage repair approach in a sheep cartilage defect model in comparison to microfracture treatment. Cell‐free, freeze‐dried implants (chondrotissue®) made of a poly‐glycolic acid (PGA) scaffold and

Repair of osteochondral defects with adi
✍ Gun-Il Im; Jin Ho Lee 📂 Article 📅 2009 🏛 John Wiley and Sons 🌐 English ⚖ 993 KB

## Abstract The purpose of this work was to evaluate the __in vivo__ effectiveness of a TGF‐β~2~ and bone morphogenetic protein (BMP)‐7‐immobilized porous polycaprolactone (PCL)/F127 scaffold to enhance the healing of cartilage defect. An osteochondral defect was created on the patellar groove of t