Effects of different aperture-sized type I collagen/silk fibroin scaffolds on the proliferation and differentiation of human dental pulp cells

丝素 丝绸 脚手架 碱性磷酸酶 生物医学工程 染色 盖髓 扫描电子显微镜 材料科学 化学 牙髓(牙) 细胞粘附 粘附 生物物理学 复合材料 牙科 牙本质 病理 生物化学 生物 医学
作者
Shihui Jiang,Zhaoxia Yu,Lanrui Zhang,Guanhua Wang,Xiaohua Dai,Xiaoli Lian,Yan Yan,Zhang Linpu,Yue Wang,Ruixin Li,Huiru Zou
出处
期刊:Regenerative Biomaterials [Oxford University Press]
卷期号:8 (4) 被引量:35
标识
DOI:10.1093/rb/rbab028
摘要

Abstract This study aimed at evaluate the effects of different aperture-sized type I collagen/silk fibroin (CSF) scaffolds on the proliferation and differentiation of human dental pulp cells (HDPCs). The CSF scaffolds were designed with 3D mapping software Solidworks. Three different aperture-sized scaffolds (CSF1–CSF3) were prepared by low-temperature deposition 3D printing technology. The morphology was observed by scanning electron microscope (SEM) and optical coherence tomography. The porosity, hydrophilicity and mechanical capacity of the scaffold were detected, respectively. HDPCs (third passage, 1 × 105 cells) were seeded into each scaffold and investigated by SEM, CCK-8, alkaline phosphatase (ALP) activity and HE staining. The CSF scaffolds had porous structures with macropores and micropores. The macropore size of CSF1 to CSF3 was 421 ± 27 μm, 579 ± 36 μm and 707 ± 43 μm, respectively. The porosity was 69.8 ± 2.2%, 80.1 ± 2.8% and 86.5 ± 3.3%, respectively. All these scaffolds enhanced the adhesion and proliferation of HDPCs. The ALP activity in the CSF1 group was higher than that in the CSF3 groups (P < 0.01). HE staining showed HDPCs grew in multilayer within the scaffolds. CSF scaffolds significantly improved the adhesion and ALP activity of HDPCs. CSF scaffolds were promising candidates in dentine-pulp complex regeneration.
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