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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Synthesis, characterization and applications of calcium carbonate/fructose 1,6-bisphosphate composite nanospheres and carbonated hydroxyapatite porous nanospheres
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Synthesis, characterization and applications of calcium carbonate/fructose 1,6-bisphosphate composite nanospheres and carbonated hydroxyapatite porous nanospheres

机译:碳酸钙/果糖1,6-双磷酸复合纳米球和碳酸羟基磷灰石多孔纳米球的合成,表征和应用

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摘要

In this work, we first investigated the effect of fructose 1,6-bisphosphate, which is fructose sugar phosphorylated on carbons 1 and 6, on the biomineralization of calcium carbonate, and prepared calcium carbonate/fructose 1,6-bisphosphate (CC/FBP) composite nanospheres. Then, we investigated the transformation of CC/FBP composite nanospheres under microwave-assisted hydrothermal conditions and prepared carbonated hydroxyapatite (CHA) porous nanospheres. We found that FBP has a unique effect on the morphology and crystallization of calcium carbonate. FBP can control the morphology of calcium carbonate and provide the phosphorus source for the formation of CHA. The morphology and size of CC/FBP composite nanospheres can be preserved after transformation to CHA porous nanospheres under microwave-assisted hydrothermal conditions. The CC/FBP composite nanospheres and CHA porous nanospheres are efficient for anticancer drug (docetaxel) loading and release, and the drug delivery system shows a high ability to damage tumor cells, and thus is promising for application in drug delivery. The as-prepared CC/FBP composite nanospheres and CHA porous nanospheres have excellent biocompatibility and high protein adsorption capacity, as well as high efficiency for gene transfection.
机译:在这项工作中,我们首先研究了果糖1,6-二磷酸(果糖被碳1和6磷酸化)对碳酸钙生物矿化的影响,并制备了碳酸钙/果糖1,6-二磷酸(CC / FBP) )复合纳米球。然后,我们研究了CC / FBP复合纳米球在微波辅助水热条件下的转变,并制备了碳酸羟基磷灰石(CHA)多孔纳米球。我们发现FBP对碳酸钙的形态和结晶具有独特的影响。 FBP可以控制碳酸钙的形态,并为形成CHA提供磷源。在微波辅助水热条件下转化为CHA多孔纳米球后,可以保留CC / FBP复合纳米球的形态和尺寸。 CC / FBP复合纳米球和CHA多孔纳米球对于抗癌药物(多西他赛)的加载和释放是有效的,并且药物递送系统显示出高的破坏肿瘤细胞的能力,因此有望在药物递送中应用。所制备的CC / FBP复合纳米球和CHA多孔纳米球具有优异的生物相容性和高蛋白吸附能力,以及高效的基因转染。

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