用于体内骨软骨组织修复的双层肽生物功能化水凝胶

Jason L. Guo, Yu Seon Kim, Gerry L. Koons, Johnny Lam, A. Navara, Sergio Barrios, V. Y. Xie, Emma Watson, Brandon T. Smith, Hannah A. Pearce, Elysse A. Orchard, J. J. van den Beucken, J. Jansen, M. Wong, A. Mikos
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引用次数: 18

摘要

骨软骨缺损是一种独特的临床挑战,由于其结合了不同的软骨和骨,这需要特定的、分层的生化线索来进行组织再生。此外,关节软骨由于其无细胞和无血管的性质,其再生能力明显不如骨,这促使了对再生治疗的巨大需求。为了应对这些临床挑战,我们开发了一种双层模块化水凝胶系统,可以将软骨和骨骼特异性生化信号点击到每一层。在该体系中,将交联剂聚乙醇酸-聚乙二醇-聚乙醇酸-二(丁-2-炔-1,4-二硫醇)(PdBT)与感兴趣的软骨或骨特异性肽序列进行点击偶联,然后与热反应性聚合物和间充质干细胞(MSCs)混悬液混合,生成针对软骨或骨的组织特异性、细胞包膜的水凝胶层。将双层水凝胶植入兔股骨髁缺损,研究组织特异性肽呈递和细胞包封对骨软骨组织修复的影响。植入12周后,与非软骨性水凝胶相比,具有软骨原肽序列的水凝胶在总体缺损填充、软骨表面规整性、新软骨和邻近软骨的糖胺聚糖(GAG)/细胞含量以及骨填充和结合方面的组织学指标更高。此外,间充质干细胞包封促进了总体缺损填充、软骨厚度、新软骨GAG/细胞含量和骨填充的组织学测量。我们的结果建立了这种click功能化水凝胶系统在骨软骨单位的体内修复中的实用性。意义声明:骨软骨修复需要软骨和骨特异性生化信号的模仿,这是高度不同的。虽然骨软骨修复的传统结构模拟了软骨和骨在矿物质含量、机械性能、蛋白质或细胞类型方面的总体组成差异,但很少有结构重现了导致软骨和骨发育差异的特定生化线索。在这项研究中,click生物功能化的双层水凝胶产生了用于软骨形成和成骨形成的发育启发肽序列的分层呈现。据作者所知,这项工作代表了生物偶联化学在骨和软骨组织同时修复中的首次应用。组织特异性肽序列的偶联成功地促进了体内软骨和骨组织的发育。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bilayered, Peptide Biofunctionalized Hydrogels for in Vivo Osteochondral Tissue Repair
Osteochondral defects present a unique clinical challenge due to their combination of phenotypically distinct cartilage and bone, which require specific, stratified biochemical cues for tissue regeneration. Furthermore, the articular cartilage exhibits significantly worse regeneration than bone due to its largely acellular and avascular nature, prompting significant demand for regenerative therapies. To address these clinical challenges, we have developed a bilayered, modular hydrogel system that enables the click functionalization of cartilage- and bone-specific biochemical cues to each layer. In this system, the crosslinker poly(glycolic acid)-poly(ethylene glycol)-poly(glycolic acid)-di(but-2-yne-1,4-dithiol) (PdBT) was click conjugated with either a cartilage- or bone-specific peptide sequence of interest, and then mixed with a suspension of thermoresponsive polymer and mesenchymal stem cells (MSCs) to generate tissue-specific, cell-encapsulated hydrogel layers targeting the cartilage or bone. We implanted bilayered hydrogels in rabbit femoral condyle defects and investigated the effects of tissue-specific peptide presentation and cell encapsulation on osteochondral tissue repair. After 12 weeks implantation, hydrogels with a chondrogenic peptide sequence produced higher histological measures of overall defect filling, cartilage surface regularity, glycosaminoglycan (GAG)/cell content of neocartilage and adjacent cartilage, and bone filling and bonding compared to non-chondrogenic hydrogels. Furthermore, MSC encapsulation promoted greater histological measures of overall defect filling, cartilage thickness, GAG/cell content of neocartilage, and bone filling. Our results establish the utility of this click functionalized hydrogel system for in vivo repair of the osteochondral unit. STATEMENT OF SIGNIFICANCE: : Osteochondral repair requires mimicry of both cartilage- and bone-specific biochemical cues, which are highly distinct. While traditional constructs for osteochondral repair have mimicked gross compositional differences between the cartilage and bone in mineral content, mechanical properties, proteins, or cell types, few constructs have recapitulated the specific biochemical cues responsible for the differential development of cartilage and bone. In this study, click biofunctionalized, bilayered hydrogels produced stratified presentation of developmentally inspired peptide sequences for chondrogenesis and osteogenesis. This work represents, to the authors' knowledge, the first application of bioconjugation chemistry for the simultaneous repair of bone and cartilage tissue. The conjugation of tissue-specific peptide sequences successfully promoted development of both cartilage and bone tissues in vivo.
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