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矿物质诱导的气泡效应和生物矿化作为为牙本质组织工程创建高度多孔且具有生物活性支架的策略。

Mineral-induced bubbling effect and biomineralization as strategies to create highly porous and bioactive scaffolds for dentin tissue engineering.

作者信息

de Melo Camila Correa da Silva Braga, Cassiano Fernanda Balestrero, Bronze-Uhle Érika Soares, Stuani Vitor de Toledo, Bordini Ester Alves Ferreira, Gallinari Marjorie de Oliveira, de Souza Costa Carlos Alberto, Soares Diana Gabriela

机构信息

Department of Operative Dentistry, Endodontics and Dental Materials, Sao Paulo University-USP, Bauru School of Dentistry, Bauru, Sao Paulo, Brazil.

Department of Physiology and Pathology, Univ. Estadual Paulista-UNESP, Araraquara School of Dentistry, Araraquara, Sao Paulo, Brazil.

出版信息

J Biomed Mater Res B Appl Biomater. 2022 Aug;110(8):1757-1770. doi: 10.1002/jbm.b.35032. Epub 2022 Feb 9.

DOI:10.1002/jbm.b.35032
PMID:35138034
Abstract

The objective of the study was to assess the biological and mechanical characteristics of chitosan-based scaffolds enriched by mineral phases and biomineralized in simulated body fluid (SBF) as a possible biomaterial for dentin regeneration. Thus, porous chitosan scaffolds were prepared by the mineral-induced bubbling-effect technique and subjected to biomineralization to create biomimetic scaffolds for dentin tissue engineering. Suspensions containing calcium hydroxide, nanohydroxyapatite, or β-tricalcium phosphate were added to the chitosan (CH) solution and subjected to gradual freezing and freeze-drying to obtain CHCa, CHnHA, and CHβTCP porous scaffolds, respectively, by the bubbling effect. Then, scaffolds were incubated in SBF for 5 days at 37°C, under constant stirring, to promote calcium-phosphate (CaP) biomineralization. Scanning electron microscopy revealed increased pore size and porosity degree on mineral-containing scaffolds, with CHCa and CHnHA presenting as round, well-distributed, and with an interconnected pore network. Nevertheless, incubation in SBF disrupted the porous architecture, except for CHCa , leading to the deposition of CaP coverage, confirmed by Fourier Transform Infrared Spectroscopy analyses. All mineral-containing and SBF-treated formulations presented controlled degradation profiles and released calcium throughout 28 days. When human dental pulp cells (HDPCs) were seeded onto scaffold structures, the porous and interconnected architecture of CHCa, CHnHA, and CHCa allowed cells to infiltrate and spread throughout the scaffold structure, whereas in other formulations cells were dispersed or agglomerated. It was possible to determine a positive effect on cell proliferation and odontogenic differentiation for mineral-containing formulations, intensely improved by biomineralization. A significant increase in mineralized matrix deposition (by 8.4 to 18.9 times) was observed for CHCa , CHnHA , and CHβTCP in comparison with plain CH. The bioactive effect on odontoblastic marker expression (ALP activity and mineralized matrix) was also observed for HDPCs continuously cultivated with conditioned medium obtained from scaffolds. Therefore, biomineralization of chitosan scaffolds containing different mineral phases was responsible for increasing the capacity for mineralized matrix deposition by pulpal cells, with potential for use in dentin tissue engineering.

摘要

本研究的目的是评估富含矿相并在模拟体液(SBF)中进行生物矿化的壳聚糖基支架的生物学和力学特性,作为牙本质再生的一种可能的生物材料。因此,采用矿物诱导气泡效应技术制备了多孔壳聚糖支架,并进行生物矿化以创建用于牙本质组织工程的仿生支架。将含有氢氧化钙、纳米羟基磷灰石或β-磷酸三钙的悬浮液加入壳聚糖(CH)溶液中,经过逐步冷冻和冻干,通过气泡效应分别获得CHCa、CHnHA和CHβTCP多孔支架。然后,将支架在37°C的SBF中于持续搅拌下孵育5天,以促进磷酸钙(CaP)生物矿化。扫描电子显微镜显示含矿支架的孔径和孔隙率增加,CHCa和CHnHA呈现圆形、分布良好且具有相互连接的孔网络。然而,在SBF中孵育会破坏多孔结构,但CHCa除外,傅里叶变换红外光谱分析证实了CaP覆盖层的沉积。所有含矿和经SBF处理的制剂均呈现可控的降解曲线,并在28天内持续释放钙。当将人牙髓细胞(HDPCs)接种到支架结构上时,CHCa、CHnHA和CHCa的多孔且相互连接的结构使细胞能够渗透并在整个支架结构中扩散,而在其他制剂中细胞则分散或聚集。可以确定含矿制剂对细胞增殖和牙源性分化有积极作用,生物矿化可显著增强这种作用。与纯CH相比,CHCa、CHnHA和CHβTCP的矿化基质沉积显著增加(增加8.4至18.9倍)。在用从支架获得的条件培养基连续培养的HDPCs中,也观察到对成牙本质细胞标志物表达(碱性磷酸酶活性和矿化基质)的生物活性作用。因此,含不同矿相的壳聚糖支架的生物矿化有助于提高牙髓细胞矿化基质沉积的能力,具有用于牙本质组织工程的潜力。

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