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Degradation in vitro and in vivo of beta-TCP/MCPM-based premixed calcium phosphate cement

机译:β-TCP / MCPM基磷酸钙水泥体外和体内降解

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Premixed calcium phosphate cements (CPCs) have been developed to shorten the surgical time of conventional CPCs. However, there is lack of investigation on degradation behavior of premixed CPCs in vitro and in vivo. In this study, the premixed CPCs are prepared by mixing glycerol or polyethylene glycol (PEG) with the CPC power (beta-tricalcium phosphate (beta-TCP) and monocalcium phosphate monohydrate (MCPM)), and their degradation performances including the microstructure, chemical composition and mechanical properties are systematically evaluated both in vitro and in vivo (subcutaneous implantations in rabbits). When the premixed CPCs aged in PBS or FBS, results show weight loss of the specimens, decreased pH value and increased calcium ion concentration of aging media. Meanwhile, the setting products convert from dicalcium phosphate dihydrate (DCPD) to di-calcium phosphate anhydrous (DCPA), and no hydroxyapatite deposit. The specimen size and the molecular weight of non-aqueous solvent can modulate the setting product of premixed CPCs. For the larger specimens, DCPA is the main setting product, for the smaller ones, the composite contained DCPD and DCPA. With the decrease of the molecular weight of the non-aqueous solvent PEG, the setting product change from both DCPD and DCPA to DCPA due to the quicker exchange rate of PEG with water. After a period of subcutaneous implantation, the surface of the grafts obviously disintegrated with the formation of porous structures, but their internal morphology do not obviously change.
机译:已经开发出预混合的磷酸钙水泥(CPC)以缩短常规CPC的手术时间。然而,缺乏对体外和体内预混合CPC的降解行为的调查。在该研究中,通过将甘油或聚乙二醇(PEG)与CPC功率(β-三钙(β-TCP)和磷酸二钙一水合物(MCPM)混合来制备预混合的CPC,以及它们的降解性能,包括微观结构,化学物质在体外和体内(兔子中的皮下植入)系统地评估组成和机械性能。当PBS或FBS中的预混合的CPC时,结果显示出试样的重量损失,降低pH值和衰老介质的钙离子浓度增加。同时,设定产物从磷酸二水合物(DCPD)转化为磷酸二钙无水(DCPA),没有羟基磷灰石沉积物。非水溶剂的样品尺寸和分子量可以调节预混合CPC的设定产物。对于较大的标本,DCPA是主要设定产品,对于较小的标本,较小的主要设定产品,复合物包含DCPD和DCPA。随着非水溶剂PEG的分子量的降低,由于PEG与水的更快汇率,将产品从DCPD和DCPA变为DCPA。经过一段时间的皮下植入后,移植物的表面明显崩解,形成多孔结构的形成,但它们的内部形态学并不明显改变。

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