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A 3D System for Culturing Human Articular Chondrocytes in Synovial Fluid
Published on: January 31, 2012
Phenotypic variations in chondrocyte subpopulations and their response to in vitro culture and external stimuli
Emily E Coates1, John P Fisher
1Fischell Department of Bioengineering, University of Maryland, 3238 Jeong H. Kim Engineering Building, College Park, MD 20742, USA.
Abstract:
Articular cartilage defects have limited capacity to self-repair, and cost society up to 60 billion dollars annually in both medical treatments and loss of working days. Recent developments in cartilage tissue engineering have resulted in many new products coming to market or entering clinical trials. However, there is a distinct lack of treatments which aim to recreate the complex zonal organization of articular cartilage. Cartilage tissue withstands repetitive strains throughout an individual's lifetime and provides frictionless movement between joints. The structure and composition of its intricately organized extracellular matrix varies with tissue depth to provide optimal resistance to loading, ensure ease of movement, and integrate with the subchondral bone. Each tissue zone is specially designed to resist the load it experiences, and maximize the tissue properties needed for its location. It is unlikely that a homogenous solution to tissue repair will be able to optimally restore the function of such a heterogeneous tissue. For zonal engineering of articular cartilage to become practical, maintenance of phenotypically stable zonal cell populations must be achieved. The chondrocyte phenotype varies considerably by zone, and it is the activity of these cells that help achieve the structural organization of the tissue. This review provides an examination of literature which has studied variations in cellular phenotype between cartilage zones. By doing so, we have identified critical differences between cell populations and highlighted areas of research which show potential in the field. Current research has made the morphological and metabolic variations between these cell populations clear, but an ideal way of maintaining these differences in vitro culture is yet to be established. Combinations of delivered growth factors, mechanical loading, and layered three-dimensional culture systems all show potential for achieving this goal. Furthermore, differentiation of progenitor cell populations into chondrocyte subpopulations may also hold promise for achieving large numbers of zonal chondrocytes. Success of the field lies in establishing methods of retaining phenotypically stable cell populations for in vitro culture.
Insights
Articular cartilage defects are costly and difficult to treat. This review examines zonal variations in chondrocyte phenotype, crucial for developing effective cartilage tissue engineering strategies that mimic natural zonal organization.
Area of Science:
- Biomaterials Science
- Regenerative Medicine
- Orthopedic Surgery
Background:
- Articular cartilage defects have limited self-repair capacity, leading to significant societal costs.
- Current cartilage tissue engineering often fails to replicate the native tissue's complex zonal organization.
- The zonal structure of articular cartilage is essential for load resistance, joint function, and subchondral bone integration.
Purpose of the Study:
- To review literature on zonal variations in chondrocyte phenotype within articular cartilage.
- To identify critical differences between chondrocyte populations in different cartilage zones.
- To highlight research areas with potential for zonal cartilage engineering.
Main Methods:
- Literature review of studies investigating chondrocyte phenotype variations across cartilage zones.
- Analysis of morphological and metabolic differences between zonal chondrocytes.
- Examination of current in vitro culture techniques and their limitations.
Main Results:
- Significant morphological and metabolic differences exist between chondrocytes from different articular cartilage zones.
- Maintaining phenotypically stable zonal chondrocytes in vitro remains a challenge.
- Current research indicates potential in combining growth factors, mechanical loading, and 3D culture systems.
Conclusions:
- Recreating the zonal organization of articular cartilage is critical for effective tissue engineering.
- Further research is needed to establish methods for maintaining phenotypically stable zonal chondrocytes in vitro.
- Successful zonal engineering requires strategies that preserve distinct chondrocyte phenotypes for optimal tissue function.
