Full thickness loss of articular cartilage will often progress in aging individuals until total destruction of a joint occurs. This in turn is extremely disabling, not only by limitation of function of a joint, but by producing severe pain. Left untreated, articular cartilage is not capable of repairing itself. On the basis of our prior research showing that perichondrial cells are capable of performing as chondroprogenitor repair cells, the focus of this research has evolved in the development of an optimized delivery system for treatment of an osteochondral defect. This delivery system consists of a porous polylactic acid (PLA) scaffold seeded with cells cultured from perichondrium. It is unknown whether such a repair system will give different results in skeletally mature vs aged animals. In addition, transforming growth factor (TGFbeta1) influences chondrocyte proliferation and the chondroid composition of the extracellular matrix (ECM), however its effect on repair in aged joints is unknown. The plasma cell membrane glycoprotein-1 (PC-1) gene has been postulated to regulate calcium deposition in the aging human chondrocyte; its influence on the ability of a cell to participate in a repair process in also unknown (Project 2). The current proposal has 4 specific aims: 1) To evaluate the repair of a full-thickness articular cartilage defect in skeletally mature and aged rabbits using a PLA scaffold seeded with cells grown from autologous perichondrium. 2) to assess the effect of transfection with the gene for PC-1 of the perichondrial cells used with the PLA scaffold and to determine the effect of this transfection on the repair of full-thickness cartilage defects in skeletally mature rabbits. 3) To assess the effect of transfection with the gene for TGFbeta1 of the perichondrial cells and its effect on repair when seeded into the PLA scaffold, and 4) To assess the long-term repairs of a full-thickness articular cartilage defect when treated with a PLA scaffold with or without autologous perichondrial cells with or without transfection with TGFbeta1. The assessment will be multidisplinary, employing: 1) Histomorphometric and immunohistochemistry measurements of neocartilage at the repair site. 2) Biochemical and molecular biological analysis of the expression of types I, II, and IX collagen genes. 3) Differential gene expression between the mRNA extracted from the progenitor chondroblastic cells with and without transfection with a plasmid containing TGFbeta1 gene of the mature and aged rabbits using differential display (DD) and representational difference analysis (RDA). 4) Biomechanical quantitation of neocartilage and subchondral tissue compressive material properties by confined compression testing with video microscopy, and host tissue integration by tensile testing to determine tissue tensile modulus.

Agency
National Institute of Health (NIH)
Institute
National Institute on Aging (NIA)
Type
Research Program Projects (P01)
Project #
5P01AG007996-10
Application #
6311468
Study Section
Project Start
2000-05-01
Project End
2001-03-31
Budget Start
1998-10-01
Budget End
1999-09-30
Support Year
10
Fiscal Year
2000
Total Cost
$207,197
Indirect Cost
Name
Scripps Research Institute
Department
Type
DUNS #
City
La Jolla
State
CA
Country
United States
Zip Code
92037
Chen, Liang-Yu; Lotz, Martin; Terkeltaub, Robert et al. (2018) Modulation of matrix metabolism by ATP-citrate lyase in articular chondrocytes. J Biol Chem 293:12259-12270
Matsuzaki, Tokio; Alvarez-Garcia, Oscar; Mokuda, Sho et al. (2018) FoxO transcription factors modulate autophagy and proteoglycan 4 in cartilage homeostasis and osteoarthritis. Sci Transl Med 10:
Su, Alvin W; Chen, Yunchan; Dong, Yao et al. (2018) Biomechanics of osteochondral impact with cushioning and graft Insertion: Cartilage damage is correlated with delivered energy. J Biomech 73:127-136
Abhishek, Abhishek; Neogi, Tuhina; Choi, Hyon et al. (2018) Review: Unmet Needs and the Path Forward in Joint Disease Associated With Calcium Pyrophosphate Crystal Deposition. Arthritis Rheumatol 70:1182-1191
Fisch, K M; Gamini, R; Alvarez-Garcia, O et al. (2018) Identification of transcription factors responsible for dysregulated networks in human osteoarthritis cartilage by global gene expression analysis. Osteoarthritis Cartilage 26:1531-1538
Ramdani, Ghania; Schall, Nadine; Kalyanaraman, Hema et al. (2018) cGMP-dependent protein kinase-2 regulates bone mass and prevents diabetic bone loss. J Endocrinol 238:203-219
Serrano, Ramon L; Chen, Liang-Yu; Lotz, Martin K et al. (2018) Impaired Proteasomal Function in Human Osteoarthritic Chondrocytes Can Contribute to Decreased Levels of SOX9 and Aggrecan. Arthritis Rheumatol 70:1030-1041
Jin, Yunyun; Cong, Qian; Gvozdenovic-Jeremic, Jelena et al. (2018) Enpp1 inhibits ectopic joint calcification and maintains articular chondrocytes by repressing hedgehog signaling. Development 145:
Grogan, Shawn P; Duffy, Stuart F; Pauli, Chantal et al. (2018) Gene expression profiles of the meniscus avascular phenotype: A guide for meniscus tissue engineering. J Orthop Res 36:1947-1958
Baek, Jihye; Sovani, Sujata; Choi, Wonchul et al. (2018) Meniscal Tissue Engineering Using Aligned Collagen Fibrous Scaffolds: Comparison of Different Human Cell Sources. Tissue Eng Part A 24:81-93

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