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Extracellular Matrix (ECM) Multilayer Membrane as a Sustained Releasing Growth Factor Delivery System for rhTGF-[Beta]3 in Articular Cartilage Repair
Recombinant human transforming growth factor beta-3 (rhTGF-[Beta]3) is a key regulator of chondrogenesis in stem cells and cartilage formation. We have developed a novel drug delivery system that continuously releases rhTGF-[Beta]3 using a multilayered extracellular matrix (ECM) membrane. We hypothe...
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Published in: | PloS one 2016-06, Vol.11 (6) |
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Main Authors: | , , , , , , , , |
Format: | Article |
Language: | English |
Online Access: | Get full text |
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Summary: | Recombinant human transforming growth factor beta-3 (rhTGF-[Beta]3) is a key regulator of chondrogenesis in stem cells and cartilage formation. We have developed a novel drug delivery system that continuously releases rhTGF-[Beta]3 using a multilayered extracellular matrix (ECM) membrane. We hypothesize that the sustained release of rhTGF-[Beta]3 could activate stem cells and result in enhanced repair of cartilage defects. The properties and efficacy of the ECM multilayer-based delivery system (EMLDS) are investigated using rhTGF-[Beta]3 as a candidate drug. The bioactivity of the released rhTGF-s3 was evaluated through chondrogenic differentiation of mesenchymal stem cells (MSCs) using western blot and circular dichroism (CD) analyses in vitro. The cartilage reparability was evaluated through implanting EMLDS with endogenous and exogenous MSC in both in vivo and ex vivo models, respectively. In the results, the sustained release of rhTGF-s3 was clearly observed over a prolonged period of time in vitro and the released rhTGF-[Beta]3 maintained its structural stability and biological activity. Successful cartilage repair was also demonstrated when rabbit MSCs were treated with rhTGF-[Beta]3-loaded EMLDS ((+) rhTGF-[Beta]3 EMLDS) in an in vivo model and when rabbit chondrocytes and MSCs were treated in ex vivo models. Therefore, the multilayer ECM membrane could be a useful drug delivery system for cartilage repair. |
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ISSN: | 1932-6203 |
DOI: | 10.1371/journal.pone.0156292 |