Mukha Iuliia, Chepurna Oksana, Vityuk Nadiia, Khodko Alina, Storozhuk Liudmyla, Dzhagan Volodymyr, Zahn Dietrich R T, Ntziachristos Vasilis, Chmyrov Andriy, Ohulchanskyy Tymish Y
Chuiko Institute of Surface Chemistry, National Academy of Sciences of Ukraine, 03164 Kyiv, Ukraine.
College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
Nanomaterials (Basel). 2021 Apr 25;11(5):1113. doi: 10.3390/nano11051113.
Magneto-plasmonic nanocomposites can possess properties inherent to both individual components (iron oxide and gold nanoparticles) and are reported to demonstrate high potential in targeted drug delivery and therapy. Herein, we report on FeO/Au magneto-plasmonic nanocomposites (MPNC) synthesized with the use of amino acid tryptophan via chemical and photochemical reduction of Au ions in the presence of nanosized magnetite. The magnetic field (MF) induced aggregation was accompanied by an increase in the absorption in the near-infrared (NIR) spectral region, which was demonstrated to provide an enhanced photothermal (PT) effect under NIR laser irradiation (at 808 nm). A possibility for therapeutic application of the MPNC was illustrated using cancer cells in vitro. Cultured HeLa cells were treated by MPNC in the presence of MF and without it, following laser irradiation and imaging using confocal laser scanning microscopy. After scanning laser irradiation of the MPNC/MF treated cells, a formation and rise of photothermally-induced microbubbles on the cell surfaces was observed, leading to a damage of the cell membrane and cell destruction. We conclude that the synthesized magneto-plasmonic FeO/Au nanosystems exhibit magnetic field-induced reversible aggregation accompanied by an increase in NIR absorption, allowing for an opportunity to magnetophoretically control and locally enhance a NIR light-induced thermal effect, which holds high promise for the application in photothermal therapy.
磁等离子体纳米复合材料可以具备两种单独成分(氧化铁和金纳米颗粒)所固有的特性,并且据报道在靶向药物递送和治疗方面具有很高的潜力。在此,我们报道了通过在纳米磁铁矿存在下对金离子进行化学和光化学还原,利用氨基酸色氨酸合成的FeO/Au磁等离子体纳米复合材料(MPNC)。磁场(MF)诱导的聚集伴随着近红外(NIR)光谱区域吸收的增加,这表明在近红外激光照射(808nm)下能提供增强的光热(PT)效应。使用癌细胞在体外说明了MPNC的治疗应用可能性。在有和没有MF的情况下,用MPNC处理培养的HeLa细胞,随后使用共聚焦激光扫描显微镜进行激光照射和成像。在对MPNC/MF处理的细胞进行扫描激光照射后,观察到细胞表面光热诱导微泡的形成和增加,导致细胞膜损伤和细胞破坏。我们得出结论,合成的磁等离子体FeO/Au纳米系统表现出磁场诱导的可逆聚集,同时伴随着近红外吸收的增加,这使得有机会通过磁泳控制并局部增强近红外光诱导的热效应,在光热治疗中的应用前景广阔。