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3D 打印聚己内酯/骨粘连蛋白支架对人牙髓细胞成牙分化的影响。

Effect of 3D-printed polycaprolactone/osteolectin scaffolds on the odontogenic differentiation of human dental pulp cells.

机构信息

Department of Conservative Dentistry, School of Dentistry, Chonnam National University, Gwangju, Republic of Korea.

Private practice, Local Dental Clinic, Seoul, Republic of Korea.

出版信息

Biomed Mater. 2024 Jun 11;19(4). doi: 10.1088/1748-605X/ad4ad9.

Abstract

Cell-based tissue engineering often requires the use of scaffolds to provide a three-dimensional (3D) framework for cell proliferation and tissue formation. Polycaprolactone (PCL), a type of polymer, has good printability, favorable surface modifiability, adaptability, and biodegradability. However, its large-scale applicability is hindered by its hydrophobic nature, which affects biological properties. Composite materials can be created by adding bioactive materials to the polymer to improve the properties of PCL scaffolds. Osteolectin is an odontogenic factor that promotes the maintenance of the adult skeleton by promoting the differentiation of LepR+ cells into osteoblasts. Therefore, the aim of this study was to evaluate whether 3D-printed PCL/osteolectin scaffolds supply a suitable microenvironment for the odontogenic differentiation of human dental pulp cells (hDPCs). The hDPCs were cultured on 3D-printed PCL scaffolds with or without pores. Cell attachment and cell proliferation were evaluated using EZ-Cytox. The odontogenic differentiation of hDPCs was evaluated by alizarin red S staining and alkaline phosphatase assays. Western blot was used to evaluate the expression of the proteins DSPP and DMP-Results: The attachment of hDPCs to PCL scaffolds with pores was significantly higher than to PCL scaffolds without pores. The odontogenic differentiation of hDPCs was induced more in PCL/osteolectin scaffolds than in PCL scaffolds, but there was no statistically significant difference. 3D-printed PCL scaffolds with pores are suitable for the growth of hDPCs, and the PCL/osteolectin scaffolds can provide a more favorable microenvironment for the odontogenic differentiation of hDPCs.

摘要

基于细胞的组织工程通常需要使用支架为细胞增殖和组织形成提供三维(3D)框架。聚己内酯(PCL)是一种聚合物,具有良好的可打印性、有利的表面可修饰性、适应性和生物降解性。然而,其疏水性会影响其生物特性,从而限制了其大规模应用。通过向聚合物中添加生物活性材料,可以制备出复合材料,以改善 PCL 支架的性能。骨桥蛋白是一种牙源性因子,通过促进 LepR+细胞向成骨细胞分化来维持成年骨骼。因此,本研究旨在评估 3D 打印的 PCL/骨桥蛋白支架是否为牙髓细胞(hDPCs)的牙源性分化提供合适的微环境。将 hDPCs 培养在具有或不具有孔的 3D 打印 PCL 支架上。通过 EZ-Cytox 评估细胞附着和细胞增殖。通过茜素红 S 染色和碱性磷酸酶测定评估 hDPCs 的牙源性分化。Western blot 用于评估 DSPP 和 DMP-蛋白的表达。结果:具有孔的 PCL 支架上 hDPCs 的附着明显高于无孔的 PCL 支架。PCL/骨桥蛋白支架诱导 hDPCs 的牙源性分化比 PCL 支架更明显,但无统计学差异。具有孔的 3D 打印 PCL 支架适合 hDPCs 的生长,PCL/骨桥蛋白支架可为 hDPCs 的牙源性分化提供更有利的微环境。

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