Department of Chemistry, The College of Staten Island, and The Graduate Center, The City University of New York, Staten Island, NY 10314, USA.
Nanoscale. 2015 May 7;7(17):7885-95. doi: 10.1039/c4nr07335e.
This paper reports a type of multifunctional hybrid nanoparticle (NP) composed of gold nanocrystals coated on and/or embedded in a magnetite-fluorescent porous carbon core-shell NP template (Fe3O4@PC-CDs-Au) for biomedical applications, including magnetic/NIR-responsive drug release, multicolor cell imaging, and enhanced photothermal therapy. The synthesis of the Fe3O4@PC-CDs-Au NPs firstly involves the preparation of core-shell template NPs with magnetite nanocrystals clustered in the cores and fluorescent carbon dots (CDs) embedded in a porous carbon shell, followed by an in situ reduction of silver ions (Ag(+)) loaded in the porous carbon shell and a subsequent replacement of Ag NPs with Au NPs through a galvanic replacement reaction using HAuCl4 as a precursor. The Fe3O4@PC-CDs-Au NPs can enter the intracellular region and light up mouse melanoma B16F10 cells in multicolor mode. The porous carbon shell, anchored with hydrophilic hydroxyl/carboxyl groups, endows the Fe3O4@PC-CDs-Au NPs with excellent stability in the aqueous phase and a high loading capacity (719 mg g(-1)) for the anti-cancer drug doxorubicin (DOX). The superparamagnetic Fe3O4@PC-CDs-Au NPs with a saturation magnetization of 23.26 emu g(-1) produce localized heat under an alternating magnetic field, which triggers the release of the loaded drug. The combined photothermal effects of the Au nanocrystals and the CDs on/in the carbon shell can not only regulate the release rate of the loaded drug, but also efficiently kill tumor cells under NIR irradiation. Benefitting from their excellent optical properties, their magnetic field and NIR light-responsive drug release capabilities and their enhanced photothermal effect, such nanostructured Fe3O4@PC-CDs-Au hybrid NPs are very promising for simultaneous imaging diagnostics and high efficacy therapy.
本文报道了一种多功能杂化纳米粒子(NP),由金纳米晶体涂覆和/或嵌入在磁铁矿-荧光多孔碳核壳 NP 模板(Fe3O4@PC-CDs-Au)中制成,可用于生物医学应用,包括磁/NIR 响应药物释放、多色细胞成像和增强光热治疗。Fe3O4@PC-CDs-Au NPs 的合成首先涉及制备具有磁晶核聚集在核中的核壳模板 NPs 和嵌入在多孔碳壳中的荧光碳点(CDs),然后在多孔碳壳中负载的银离子(Ag(+)原位还原,以及通过使用 HAuCl4 作为前体的电置换反应用 Au NPs 取代 Ag NPs。Fe3O4@PC-CDs-Au NPs 可以进入细胞内区域并以多色模式点亮小鼠黑色素瘤 B16F10 细胞。多孔碳壳,锚定亲水的羟基/羧基基团,使 Fe3O4@PC-CDs-Au NPs 在水相中有极好的稳定性和对阿霉素(DOX)的高负载能力(719 mg g(-1))。具有饱和磁化强度为 23.26 emu g(-1)的超顺磁 Fe3O4@PC-CDs-Au NPs 在交变磁场下产生局部热量,从而触发负载药物的释放。Au 纳米晶体和 CDs 在碳壳中的光热效应不仅可以调节负载药物的释放速率,而且可以在近红外辐射下有效地杀死肿瘤细胞。受益于其优异的光学性能、磁场和 NIR 光响应药物释放能力以及增强的光热效应,这种结构的 Fe3O4@PC-CDs-Au 杂化 NPs 非常有希望用于同时进行成像诊断和高效治疗。
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