Physico-chemical characterization and in vitro biological study of manganese doped β-tricalcium phosphate-based ceramics for bone regeneration applications

IF 1.9 4区 材料科学 Q3 Materials Science
Mehmet Can Arpak, Sibel Daglilar, Cevriye Kalkandelen, Liliana-Marinela Balescu, Hilal Turkoglu Sasmazel, Iuliana Pasuk, George E. Stan, Kagan Durukan, Oguzhan Gunduz
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引用次数: 1

Abstract

This work evaluates the effects of manganese (Mn) doping on the morpho-structural features, mechanical performance, and in vitro biological response of beta-tricalcium phosphate (β-TCP) derived bioceramics for bone tissue engineering applications. Five different Mn doping levels (i.e., 0.01%, 0.05%, 0.1%, 0.5%, and 1 wt.%) were investigated, with the β-TCP-based bioceramics being sintered at four temperatures (i.e., 1000, 1100, 1200, and 1300 °C). A densification improvement was induced when using Mn in excess of 0.05 wt.%; the densification remained stationary in the sintering temperature range of 1200 − 1300 °C. The structural analyses evidenced that all samples sintered at 1000 and 1100 °C were composed of β-TCP as major phase and hydroxyapatite (HA) as a minor constituent (~ 4–6 wt.%). At the higher temperatures (1200 and 1300 °C), the formation of α-TCP was signalled at the expense of both β-TCP and HA. The Mn doping was evidenced by lattice parameters changes. The evolution of the phase weights is linked to a complex inter-play between the capacity of the compounds to incorporate Mn and the thermal decomposition kinetics. The Mn doping induced a reduction in the mechanical performance (in terms of compressive strength, Vickers hardness and elastic modulus) of the β-TCP-based ceramics. The metabolic activity and viability of osteoblastic cells (MC3T3-E1) for the ceramics were studied in both powder and compacted pellet form. Ceramics with Mn doping levels lower than 0.1 wt.% yielded a more favorable microenvironment for the osteoblast cells with respect to the undoped β-TCP. No cytotoxic effects were recorded up to 21 days. The Mn-doped β-TCPs showed a significant increase (p < 0.01) in alkaline phosphatase activity with respect to pure β-TCP.

锰掺杂β-磷酸三钙基骨再生陶瓷的理化性质及体外生物学研究
本研究评估了锰(Mn)掺杂对用于骨组织工程的β-磷酸三钙(β-TCP)衍生生物陶瓷的形态结构特征、力学性能和体外生物学反应的影响。研究了5种不同Mn掺杂水平(0.01%、0.05%、0.1%、0.5%和1% wt.%),并在4种温度(1000、1100、1200和1300℃)下烧结β- tcp基生物陶瓷。当Mn含量超过0.05 wt.%时,致密性得到改善;在1200 ~ 1300℃的烧结温度范围内,致密化保持稳定。结构分析表明,在1000℃和1100℃下烧结的样品均以β-TCP为主要相,羟基磷灰石(HA)为次要组分(~ 4-6 wt.%)。在较高的温度下(1200和1300℃),α-TCP的形成以β-TCP和HA的损失为代价。晶格参数的变化证明了Mn的掺杂。相重量的演变与化合物吸收Mn的能力和热分解动力学之间的复杂相互作用有关。Mn掺杂导致β- tcp基陶瓷的力学性能(抗压强度、维氏硬度和弹性模量)降低。研究了成骨细胞(MC3T3-E1)在陶瓷中的代谢活性和活力。相对于未掺杂的β-TCP, Mn掺杂水平低于0.1 wt.%的陶瓷为成骨细胞提供了更有利的微环境。21天内未见细胞毒性作用。mn掺杂的β-TCP与纯β-TCP相比,碱性磷酸酶活性显著增加(p < 0.01)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of the Australian Ceramic Society
Journal of the Australian Ceramic Society MATERIALS SCIENCE, CERAMICS-
CiteScore
3.20
自引率
5.30%
发文量
1
审稿时长
>12 weeks
期刊介绍: Publishes high quality research and technical papers in all areas of ceramic and related materials Spans the broad and growing fields of ceramic technology, material science and bioceramics Chronicles new advances in ceramic materials, manufacturing processes and applications Journal of the Australian Ceramic Society since 1965 Professional language editing service is available through our affiliates Nature Research Editing Service and American Journal Experts at the author''s cost and does not guarantee that the manuscript will be reviewed or accepted
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