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用于体外和体内成骨的 3D 陶瓷支架上的模块化程控双相双输送系统。

A modular programmed biphasic dual-delivery system on 3D ceramic scaffolds for osteogenesis in vitro and in vivo.

机构信息

Department of Orthopedics, The Second Affiliated Hospital of Harbin Medical University, Harbin, China.

出版信息

J Mater Chem B. 2020 Nov 14;8(42):9697-9717. doi: 10.1039/c9tb02127b. Epub 2020 Aug 13.

Abstract

Single-factor delivery is the most common characteristic of bone tissue engineering techniques. However, bone regeneration is a complex process requiring multiple factors and specialized release mechanisms. Therefore, the development of a dual-delivery system allowing for programmed release kinetics would be highly desirable. Improvement of the molarity and versatility of the delivery system has rarely been studied. Herein, we report the development of a novel, modular programmed biphasic dual-release system (SCB), carrying a BMP2 and an engineered collagen I-derived recognition motif (Stath-DGEA), with a self-remodification feature on hydroxyapatite (HA)-based materials. The SCB system was loaded onto an additive manufactured (AM) scaffold in order to evaluate its bifactor osteogenic potential and its biphasic release behavior. Further, the biomechanical properties of the scaffold were studied by using the fluid-structure interaction (FSI) method. Section fluorescent labeling revealed that the HA scaffold has a relatively higher density and efficiency. Additionally, the results of the release and inhibition experiment suggested that the SCB system could facilitate the sustained release of therapeutic levels of two factors during the initial stage of implantation, thereby exhibiting a rapid high-dose release pattern at a specific time point during the second stage. The FSI prediction model indicated that the scaffold provides an excellent biomimetic mechanical and fluid dynamic microenvironment to promote osteogenesis. Our results indicated that incorporation of BMP2 with Stath-DGEA in the biphasic SCB system could have a synergetic effect in promoting the adhesion, proliferation, and differentiation of bone marrow mesenchymal stem cells (BMSCs) in vitro, under staged stimulations. Further, in vivo studies in both ectopic and orthotopic rat models showed that the SCB system loaded onto an AM scaffold could enhance osteointegration and osteoinduction throughout the osteogenic process. Thus, the novel synthetic SCB system described herein used on an AM scaffold provides a biomimetic extracellular environment that enhances bone regeneration and is a promising multifunctional, dual-release platform.

摘要

单因素给药是骨组织工程技术最常见的特点。然而,骨再生是一个复杂的过程,需要多种因素和专门的释放机制。因此,开发一种允许编程释放动力学的双输送系统将是非常理想的。提高输送系统的摩尔浓度和多功能性很少被研究。本文报道了一种新型的、模块化的程控双相双释放系统(SCB)的开发,该系统携带 BMP2 和一种工程化的胶原蛋白 I 衍生的识别基序(Stath-DGEA),并具有基于羟基磷灰石(HA)的材料的自修复功能。将 SCB 系统加载到增材制造(AM)支架上,以评估其双因子成骨潜力和双相释放行为。此外,还使用流固耦合(FSI)方法研究了支架的生物力学性能。荧光标记的切片显示,HA 支架具有相对较高的密度和效率。此外,释放和抑制实验的结果表明,SCB 系统可以促进两种因子的治疗水平在植入初期的持续释放,从而在第二阶段的特定时间点表现出快速高剂量释放模式。FSI 预测模型表明,支架提供了一个极好的仿生力学和流体动力学微环境,以促进成骨。我们的结果表明,在双相 SCB 系统中加入 BMP2 和 Stath-DGEA 可以协同促进骨髓间充质干细胞(BMSCs)在体外的黏附、增殖和分化。进一步,在异位和原位大鼠模型的体内研究表明,加载到 AM 支架上的 SCB 系统可以增强整个成骨过程中的骨整合和诱导。因此,本文所述的新型合成 SCB 系统在 AM 支架上的应用提供了一个仿生的细胞外环境,增强了骨再生,是一种有前途的多功能、双释放平台。

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