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Osteochondral Regeneration with 3D‐Printed Biodegradable High‐Strength Supramolecular Polymer Reinforced‐Gelatin Hydrogel Scaffolds

机译:骨质色素再生与3D印刷的可生物降解的高强度超分子聚合物增强 - 明胶水凝胶支架

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Biomacromolecules with poor mechanical properties cannot satisfy the stringent requirement for load‐bearing as bioscaffolds. Herein, a biodegradable high‐strength supramolecular polymer strengthened hydrogel composed of cleavable poly( N ‐acryloyl 2‐glycine) (PACG) and methacrylated gelatin (GelMA) (PACG‐GelMA) is successfully constructed by photo‐initiated polymerization. Introducing hydrogen bond‐strengthened PACG contributes to a significant increase in the mechanical strengths of gelatin hydrogel with a high tensile strength (up to 1.1 MPa), outstanding compressive strength (up to 12.4 MPa), large Young's modulus (up to 320 kPa), and high compression modulus (up to 837 kPa). In turn, the GelMA chemical crosslinking could stabilize the temporary PACG network, showing tunable biodegradability by adjusting ACG/GelMA ratios. Further, a biohybrid gradient scaffold consisting of top layer of PACG‐GelMA hydrogel‐Mn 2+ and bottom layer of PACG‐GelMA hydrogel‐bioactive glass is fabricated for repair of osteochondral defects by a 3D printing technique. In vitro biological experiments demonstrate that the biohybrid gradient hydrogel scaffold not only supports cell attachment and spreading but also enhances gene expression of chondrogenic‐related and osteogenic‐related differentiation of human bone marrow stem cells. Around 12 weeks after in vivo implantation, the biohybrid gradient hydrogel scaffold significantly facilitates concurrent regeneration of cartilage and subchondral bone in a rat model.
机译:机械性能差的生物量度不能满足负荷承载作为生物支承的严格要求。这里,通过光引发的聚合成功构建了由可切割的聚(N-丙烯醛2-甘氨酸)(PACG)和甲基丙烯酸甲基丙烯酸酯(PALMA)(PALMA)(PALMA)(PALMA)组成的可生物降解的高强度超分子聚合物强化水凝胶。引入氢键增强的PACG有助于明胶水凝胶的机械强度升高,具有高抗拉强度(高达1.1MPa),出色的抗压强度(高达12.4MPa),大型模量(高达320kPa),和高压缩模量(高达837 kPa)。反过来,凝胶化学交联可以通过调节ACG / GELMA比率来稳定临时PACG网络,显示出可调谐的生物降解性。此外,由PACG-GELMA水凝胶-MN 2+的顶层和PACG-GELMA水凝胶 - 生物活性玻璃的顶层组成的生物次冬嗜梯度支架制造用于通过3D印刷技术修复骨色神经缺陷。体外生物实验表明,生物冬小梯度水凝胶支架不仅支持细胞附着和扩散,而且还增强了人骨髓干细胞的软骨内相关和骨质发生相关分化的基因表达。在体内植入后12周大约12周,生物冬级梯度水凝胶支架明显促进了大鼠模型中软骨和子骨髓的同时再生。

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