Griaznova Olga Yu, Belyaev Iaroslav B, Sogomonyan Anna S, Zelepukin Ivan V, Tikhonowski Gleb V, Popov Anton A, Komlev Aleksei S, Nikitin Petr I, Gorin Dmitry A, Kabashin Andrei V, Deyev Sergey M
Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Moscow 117997, Russia.
Center for Photonic Science and Engineering, Skolkovo Institute of Science and Technology, 3 Nobel Str, Moscow 121205, Russia.
Pharmaceutics. 2022 May 5;14(5):994. doi: 10.3390/pharmaceutics14050994.
Hybrid multimodal nanoparticles, applicable simultaneously to the noninvasive imaging and therapeutic treatment, are highly demanded for clinical use. Here, Fe-Au core-satellite nanoparticles prepared by the method of pulsed laser ablation in liquids were evaluated as dual magnetic resonance imaging (MRI) and computed tomography (CT) contrast agents and as sensitizers for laser-induced hyperthermia of cancer cells. The biocompatibility of Fe-Au nanoparticles was improved by coating with polyacrylic acid, which provided excellent colloidal stability of nanoparticles with highly negative ζ-potential in water (-38 ± 7 mV) and retained hydrodynamic size (88 ± 20 nm) in a physiological environment. The ferromagnetic iron cores offered great contrast in MRI images with r = 11.8 ± 0.8 mM s (at 1 T), while Au satellites showed X-ray attenuation in CT. The intravenous injection of nanoparticles enabled clear tumor border visualization in mice. Plasmonic peak in the Fe-Au hybrids had a tail in the near-infrared region (NIR), allowing them to cause hyperthermia under 808 nm laser exposure. Under NIR irradiation Fe-Au particles provided 24.1 °C/W heating and an IC value below 32 µg/mL for three different cancer cell lines. Taken together, these results show that laser synthesized Fe-Au core-satellite nanoparticles are excellent theranostic agents with multimodal imaging and photothermal capabilities.
同时适用于无创成像和治疗的混合多模态纳米颗粒在临床应用中具有很高的需求。在此,通过液体脉冲激光烧蚀法制备的Fe-Au核壳卫星纳米颗粒被评估为双功能磁共振成像(MRI)和计算机断层扫描(CT)造影剂,以及癌细胞激光诱导热疗的敏化剂。通过用聚丙烯酸包覆提高了Fe-Au纳米颗粒的生物相容性,聚丙烯酸在水中为纳米颗粒提供了优异的胶体稳定性,其ζ电位高度为负(-38±7 mV),并在生理环境中保持流体动力学尺寸(88±20 nm)。铁磁铁芯在MRI图像中具有很大的对比度,r = 11.8±0.8 mM s(在1 T时),而金卫星在CT中显示出X射线衰减。纳米颗粒的静脉注射能够在小鼠体内清晰地显示肿瘤边界。Fe-Au杂化物中的等离子体峰在近红外区域(NIR)有一个尾巴,使其能够在808 nm激光照射下引起热疗。在近红外辐射下,Fe-Au颗粒提供24.1°C/W的加热,并且对于三种不同的癌细胞系,IC值低于32μg/mL。综上所述,这些结果表明激光合成的Fe-Au核壳卫星纳米颗粒是具有多模态成像和光热能力的优异诊疗剂。