Literature DB >> 15299288

Functional tissue engineering of chondral and osteochondral constructs.

Eric G Lima1, Robert L Mauck, Shelley H Han, Seonghun Park, Kenneth W Ng, Gerard A Ateshian, Clark T Hung.   

Abstract

Due to the prevalence of osteoarthritis (OA) and damage to articular cartilage, coupled with the poor intrinsic healing capacity of this avascular connective tissue, there is a great demand for an articular cartilage substitute. As the bearing material of diarthrodial joints, articular cartilage has remarkable functional properties that have been difficult to reproduce in tissue-engineered constructs. We have previously demonstrated that by using a functional tissue engineering approach that incorporates mechanical loading into the long-term culture environment, one can enhance the development of mechanical properties in chondrocyte-seeded agarose constructs. As these gel constructs begin to achieve material properties similar to that of the native tissue, however, new challenges arise, including integration of the construct with the underlying native bone. To address this issue, we have developed a technique for producing gel constructs integrated into an underlying bony substrate. These osteochondral constructs develop cartilage-like extracellular matrix and material properties over time in free swelling culture. In this study, as a preliminary to loading such osteochondral constructs, finite element modeling (FEM) was used to predict the spatial and temporal stress, strain, and fluid flow fields within constructs subjected to dynamic deformational loading. The results of these models suggest that while chondral ("gel alone") constructs see a largely homogenous field of mechanical signals, osteochondral ("gel bone") constructs see a largely inhomogeneous distribution of mechanical signals. Such inhomogeneity in the mechanical environment may aid in the development of inhomogeneity in the engineered osteochondral constructs. Together with experimental observations, we anticipate that such modeling efforts will provide direction for our efforts aimed at the optimization of applied physical forces for the functional tissue engineering of an osteochondral articular cartilage substitute.

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Year:  2004        PMID: 15299288

Source DB:  PubMed          Journal:  Biorheology        ISSN: 0006-355X            Impact factor:   1.875


  25 in total

1.  Development of porous HAp and β-TCP scaffolds by starch consolidation with foaming method and drug-chitosan bilayered scaffold based drug delivery system.

Authors:  B Kundu; A Lemos; C Soundrapandian; P S Sen; S Datta; J M F Ferreira; D Basu
Journal:  J Mater Sci Mater Med       Date:  2010-07-20       Impact factor: 3.896

2.  Osteochondral transplantation using autografts from the upper tibio-fibular joint for the treatment of knee cartilage lesions.

Authors:  João Espregueira-Mendes; Hélder Pereira; Nuno Sevivas; Pedro Varanda; Manuel Vieira da Silva; Alberto Monteiro; Joaquim M Oliveira; Rui L Reis
Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  2012-01-28       Impact factor: 4.342

3.  Spatial regulation of human mesenchymal stem cell differentiation in engineered osteochondral constructs: effects of pre-differentiation, soluble factors and medium perfusion.

Authors:  W L Grayson; S Bhumiratana; P H Grace Chao; C T Hung; G Vunjak-Novakovic
Journal:  Osteoarthritis Cartilage       Date:  2010-02-06       Impact factor: 6.576

4.  Effects of perfusion and dynamic loading on human neocartilage formation in alginate hydrogels.

Authors:  Shawn P Grogan; Sujata Sovani; Chantal Pauli; Jianfen Chen; Andreas Hartmann; Clifford W Colwell; Martin K Lotz; Darryl D D'Lima
Journal:  Tissue Eng Part A       Date:  2012-06-12       Impact factor: 3.845

Review 5.  Patellofemoral joint biomechanics and tissue engineering.

Authors:  Gerard A Ateshian; Clark T Hung
Journal:  Clin Orthop Relat Res       Date:  2005-07       Impact factor: 4.176

Review 6.  Tissue-engineering strategies for the tendon/ligament-to-bone insertion.

Authors:  Lester Smith; Younan Xia; Leesa M Galatz; Guy M Genin; Stavros Thomopoulos
Journal:  Connect Tissue Res       Date:  2011-12-20       Impact factor: 3.417

7.  Large, stratified, and mechanically functional human cartilage grown in vitro by mesenchymal condensation.

Authors:  Sarindr Bhumiratana; Ryan E Eton; Sevan R Oungoulian; Leo Q Wan; Gerard A Ateshian; Gordana Vunjak-Novakovic
Journal:  Proc Natl Acad Sci U S A       Date:  2014-04-28       Impact factor: 11.205

8.  Mechanical evaluation of a tissue-engineered zone of calcification in a bone-hydrogel osteochondral construct.

Authors:  Jérôme Hollenstein; Alexandre Terrier; Esther Cory; Albert C Chen; Robert L Sah; Dominique P Pioletti
Journal:  Comput Methods Biomech Biomed Engin       Date:  2013-05-24       Impact factor: 1.763

9.  Effects of initial seeding density and fluid perfusion rate on formation of tissue-engineered bone.

Authors:  Warren L Grayson; Sarindr Bhumiratana; Christopher Cannizzaro; P-H Grace Chao; Donald P Lennon; Arnold I Caplan; Gordana Vunjak-Novakovic
Journal:  Tissue Eng Part A       Date:  2008-11       Impact factor: 3.845

10.  Engineering cartilage and bone using human mesenchymal stem cells.

Authors:  Pen-Hsiu Grace Chao; Warren Grayson; Gordana Vunjak-Novakovic
Journal:  J Orthop Sci       Date:  2007-08-02       Impact factor: 1.601

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