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基于 MnFeO 纳米粒子的新型磁响应纳米平台,通过壳聚糖和海藻酸钠层层功能化,用于姜黄素的磁控释放。

Novel magneto-responsive nanoplatforms based on MnFeO nanoparticles layer-by-layer functionalized with chitosan and sodium alginate for magnetic controlled release of curcumin.

机构信息

Green Nanotechnology Group, Universidade de Brasília, Brasília, DF 72220-900, Brazil.

Instituto de Física - Benemérita Universidad Autónoma de Puebla, Puebla, Pue 72570, Mexico.

出版信息

Mater Sci Eng C Mater Biol Appl. 2018 Nov 1;92:184-195. doi: 10.1016/j.msec.2018.06.039. Epub 2018 Jun 19.

Abstract

Remotely assisted drug delivery by means of magnetic biopolymeric nanoplatforms has been utilized as an important tool to improve the delivery/release of hydrophobic drugs and to address their low cargo capacity. In this work, MnFeO magnetic nanoparticles (MNPs) were synthesized by thermal decomposition, coated with citrate and then functionalized with the layer-by-layer (LbL) assembly of polyelectrolyte multilayers, with chitosan as polycation and sodium alginate as polyanion. Simultaneous conductimetric and potentiometric titrations were employed to optimize the LbL deposition and to enhance the loading capacity of nanoplatforms for curcumin, a hydrophobic drug used in cancer treatment. 200 nm sized biopolymer platforms with ~12 nm homogeneously embedded MNPs were obtained and characterized by means of XRD, HRTEM, DLS, TGA, FTIR, XPS and fluorescence spectroscopy techniques to access structural, morphological and surface properties, to probe biopolymer functionalization and to quantify drug-loading. Charge reversals (±30 mV) after each deposition confirmed polyelectrolyte adsorption and a stable LbL assembly. Magnetic interparticle interaction was reduced in the biopolymeric structure, hinting at an optimized performance in magnetic hyperthermia for magneto-assisted drug release applications. Curcumin was encapsulated, resulting in an enhanced payload (100 μg/mg). Nanocytotoxicity assays showed that the biopolymer capping enhanced the biocompatibility of nanoplatforms, maintaining entrapped curcumin. Our results indicate the potential of synthesized nanoplatforms as an alternative way of remotely delivering/releasing curcumin for medical purposes, upon application of an alternating magnetic field, demonstrating improved efficiency and reduced toxicity.

摘要

通过磁生物聚合纳米平台远程辅助药物输送已被用作提高疏水性药物的输送/释放并解决其载药量低的重要工具。在这项工作中,通过热分解合成了 MnFeO 磁性纳米颗粒 (MNPs),用柠檬酸包覆,然后通过聚电解质层层(LbL)组装进行功能化,壳聚糖作为聚阳离子,海藻酸钠作为聚阴离子。同时进行电导滴定和电位滴定,以优化 LbL 沉积并提高纳米平台对姜黄素(一种用于癌症治疗的疏水性药物)的载药能力。通过 XRD、HRTEM、DLS、TGA、FTIR、XPS 和荧光光谱技术获得了尺寸约为 200nm 且均匀嵌入 MNPs 约 12nm 的生物聚合物平台,并对其进行了表征,以评估结构、形态和表面性质,探测生物聚合物的功能化并定量药物负载。每次沉积后的电荷反转(±30mV)证实了聚电解质的吸附和稳定的 LbL 组装。磁相互作用在生物聚合物结构中被削弱,暗示在磁热疗中优化了磁辅助药物释放应用的性能。姜黄素被包封,导致载药量增加(约 100μg/mg)。纳米细胞毒性试验表明,生物聚合物的封端增强了纳米平台的生物相容性,保持了包封的姜黄素。我们的结果表明,合成的纳米平台具有作为远程输送/释放姜黄素的替代方法的潜力,可用于医疗目的,在施加交变磁场时,可提高效率并降低毒性。

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