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工程 3D 打印核壳水凝胶支架,增强了混合羟基磷灰石/聚己内酯纳米粒子,用于体内骨再生。

Engineering 3D-printed core-shell hydrogel scaffolds reinforced with hybrid hydroxyapatite/polycaprolactone nanoparticles for in vivo bone regeneration.

机构信息

Department of Pharmaceutics, Faculty of Pharmacy, Alexandria University, Alexandria, Egypt.

出版信息

Biomater Sci. 2021 Jun 7;9(11):4019-4039. doi: 10.1039/d1bm00062d. Epub 2021 Apr 26.

DOI:10.1039/d1bm00062d
PMID:33899858
Abstract

The versatility of 3D printing has rendered it an indispensable tool for the fabrication of composite hydrogel scaffolds, offering bone biomimetic features through inorganic and biopolymeric components as promising platforms for osteoregeneration. In this work, extrusion-based 3D printing was employed for the realization of osteoconductive composite biopolymer-based hydrogel scaffolds reinforced with hybrid bioactive hydroxyapatite/polycaprolactone nanoparticles (HAp/PCL NPs) for osteoregeneration. The printing technique was optimized for ink printability and viscosity and crosslinking parameters, where a biopolymeric blend of gelatin, polyvinyl alcohol and hyaluronic acid was developed as innovative plain polymeric ink (PPI). Scaffolds were fabricated by 3D printing adopting a biphasic core/shell geometry, where the core phase of the scaffolds was reinforced with HAp/PCL NPs; the scaffolds were then freeze-dried. Novel composite freeze-dried, loaded-core scaffolds, HAp/PCL NPs-LCS-FD exhibited controlled swelling and maintained structural integrity for 28 days. The developed HAp/PCL NPs-LCS-FD also demonstrated double-ranged pore size, interconnected porosity and efficient mechanical stiffness and strength, favorable for osteoconductive actions. Cell infiltration studies, computed tomography and histomorphometry demonstrated that HAp/PCL NPs-LCS-FD afforded osteoconduction, biodegradation, biocompatibility and bone healing in rabbit tibial model, acting as a template for new bone formation. Our findings suggest that HAp/PCL NPs-LCS-FD could offer prominent bone regeneration and could be involved in various bone defects.

摘要

3D 打印的多功能性使其成为制造复合水凝胶支架的不可或缺的工具,通过无机和生物聚合物成分提供骨仿生特征,为骨再生提供了有前途的平台。在这项工作中,基于挤出的 3D 打印用于实现具有骨传导性的复合生物聚合物基水凝胶支架,该支架用混合生物活性羟基磷灰石/聚己内酯纳米粒子(HAp/PCL NPs)增强,用于骨再生。该打印技术经过优化,可实现墨水的可印刷性和粘度以及交联参数,其中开发了明胶、聚乙烯醇和透明质酸的生物聚合物混合物作为创新的纯聚合物墨水(PPI)。采用双相核/壳几何形状通过 3D 打印制造支架,其中支架的核相用 HAp/PCL NPs 增强;然后将支架冻干。新型复合冻干、负载核支架 HAp/PCL NPs-LCS-FD 表现出控制的溶胀,并在 28 天内保持结构完整性。所开发的 HAp/PCL NPs-LCS-FD 还表现出双范围孔径、互连孔隙率和有效的机械刚度和强度,有利于骨传导作用。细胞渗透研究、计算机断层扫描和组织形态计量学表明,HAp/PCL NPs-LCS-FD 在兔胫骨模型中提供了骨传导、生物降解、生物相容性和骨愈合作用,作为新骨形成的模板。我们的研究结果表明,HAp/PCL NPs-LCS-FD 可能提供显著的骨再生,并可能参与各种骨缺损的治疗。

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