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Published in: Clinical Orthopaedics and Related Research® 12/2009

01-12-2009 | Symposium: Tribute to Dr. Marshall Urist: Musculoskeletal Growth Factors

Enhanced Meniscal Repair by Overexpression of hIGF-1 in a Full-thickness Model

Authors: Haining Zhang, PhD, MD, Ping Leng, PhD, Jie Zhang, MD

Published in: Clinical Orthopaedics and Related Research® | Issue 12/2009

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Abstract

The importance of the menisci to the well-being of the normal knee is well-documented. However, there is no ideal repair or reconstructive approach for damaged menisci. Gene therapy provides one promising alternative strategy, especially when combined with injectable tissue engineering to achieve minimally invasive clinical application. We asked whether the introduction of human insulin-like growth factor 1 (hIGF-1) gene could improve the repair of full-thickness meniscal defects. We created full-thickness meniscal defects in the “white area” of the anterior horn in 48 goats. Bone marrow stromal cells with the transfection of hIGF-1 gene and injectable calcium alginate gel were mixed together to repair the defects; three control groups included cells without transfection, gel without cells, and defects left empty. After 4, 8, and 16 weeks, the animals were euthanized and the excised defects were examined by macroscopic assessment, histological analysis, electron microscopy, proteoglycan determination, and MRI. Sixteen weeks after surgery the repaired meniscal defects were filled with white tissue similar to that in normal meniscal fibrocartilage. The repair tissue was composed of cells embedded within matrix that filled the spaces of the fibers. The proteoglycan content in the gene-enhanced tissue engineering group was higher than those in the control groups, and less than that in the normal meniscus. The results suggest full-thickness meniscal defects in regions without blood supply can be reconstructed with hIGF-1-enhanced injectable tissue engineering.
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Metadata
Title
Enhanced Meniscal Repair by Overexpression of hIGF-1 in a Full-thickness Model
Authors
Haining Zhang, PhD, MD
Ping Leng, PhD
Jie Zhang, MD
Publication date
01-12-2009
Publisher
Springer-Verlag
Published in
Clinical Orthopaedics and Related Research® / Issue 12/2009
Print ISSN: 0009-921X
Electronic ISSN: 1528-1132
DOI
https://doi.org/10.1007/s11999-009-0921-8

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Clinical Orthopaedics and Related Research® 12/2009 Go to the issue

Symposium: Tribute to Dr. Marshall Urist: Musculoskeletal Growth Factors

Are Endogenous BMPs Necessary for Bone Healing during Distraction Osteogenesis?

Symposium: Tribute to Dr. Marshall Urist: Musculoskeletal Growth Factors

Alendronate Enhances Osteogenic Differentiation of Bone Marrow Stromal Cells: A Preliminary Study

Symposium: Tribute to Dr. Marshall Urist: Musculoskeletal Growth Factors

Synthetic Alginate is a Carrier of OP-1 for Bone Induction

Symposium: Tribute to Dr. Marshall Urist: Musculoskeletal Growth Factors

OP-1 Augments Glucocorticoid-inhibited Fracture Healing in a Rat Fracture Model

Symposium: Tribute to Dr. Marshall Urist: Musculoskeletal Growth Factors

Can rhBMP-2 Containing Collagen Sponges Enhance Bone Repair in Ovariectomized Rats?: A Preliminary Study

Symposium: Tribute to Dr. Marshall Urist: Musculoskeletal Growth Factors

Starch-poly-є-caprolactone Microparticles Reduce the Needed Amount of BMP-2