脚手架
软骨发生
透明软骨
软骨
材料科学
生物医学工程
再生(生物学)
纳米纤维
生物材料
组织工程
透明质酸
骨关节炎
解剖
纳米技术
细胞生物学
生物
病理
医学
关节软骨
替代医学
作者
Jacob A. Lewis,Brett Nemke,Yan Lü,Nicholas A. Sather,Mark McClendon,Michael Mullen,Shelby C. Yuan,Sudheer Ravuri,Jason A. Bleedorn,Marc J. Philippon,Johnny Huard,Mark D. Markel,Samuel I. Stupp
标识
DOI:10.1073/pnas.2405454121
摘要
Regeneration of hyaline cartilage in human-sized joints remains a clinical challenge, and it is a critical unmet need that would contribute to longer healthspans. Injectable scaffolds for cartilage repair that integrate both bioactivity and sufficiently robust physical properties to withstand joint stresses offer a promising strategy. We report here on a hybrid biomaterial that combines a bioactive peptide amphiphile supramolecular polymer that specifically binds the chondrogenic cytokine transforming growth factor β-1 (TGFβ-1) and crosslinked hyaluronic acid microgels that drive formation of filament bundles, a hierarchical motif common in natural musculoskeletal tissues. The scaffold is an injectable slurry that generates a porous rubbery material when exposed to calcium ions once placed in cartilage defects. The hybrid material was found to support in vitro chondrogenic differentiation of encapsulated stem cells in response to sustained delivery of TGFβ-1. Using a sheep model, we implanted the scaffold in shallow osteochondral defects and found it can remain localized in mechanically active joints. Evaluation of resected joints showed significantly improved repair of hyaline cartilage in osteochondral defects injected with the scaffold relative to defects injected with the growth factor alone, including implantation in the load-bearing femoral condyle. These results demonstrate the potential of the hybrid biomimetic scaffold as a niche to favor cartilage repair in mechanically active joints using a clinically relevant large-animal model.
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