首页> 外文期刊>Journal of Cancer Research and Clinical Oncology >Iron oxide-gold core-shell nano-theranostic for magnetically targeted photothermal therapy under magnetic resonance imaging guidance
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Iron oxide-gold core-shell nano-theranostic for magnetically targeted photothermal therapy under magnetic resonance imaging guidance

机译:磁共振成像引导下磁性靶向光热疗法的氧化铁 - 金芯 - 壳纳米酮

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Recent efforts in the area of photothermal therapy (PTT) follow two important aims: (i) selective targeting of plasmonic nanoparticles to the tumor and (ii) real-time guidance of PTT operation through employing multimodal imaging modalities. In the present study, we utilized a multifunctional theranostic nanoplatform constructed from iron (III) oxide-gold (Fe2O3@Au) core-shell nanoparticles to fulfill these aims. The Au shell exhibits surface plasmon resonance, a property that is exploited to realize PTT. The magnetic core enables Fe2O3@Au to be employed as a magnetic resonance imaging (MRI) contrast agent. Furthermore, the magnetic core has the potential to establish a magnetic drug targeting strategy through which Fe2O3@Au can be directed to the tumor site by means of magnetic field. To test these potentials, Balb/c mice bearing CT26 colorectal tumor model were intravenously injected with Fe2O3@Au. Immediately after injection, a magnet was placed on the tumor site for 3h to concentrate nanoparticles, followed by the near infrared (NIR) laser irradiation. MRI study confirmed the accumulation of nanoparticles within the tumor due to T2 enhancement capability of Fe2O3@Au. The in vivo thermometry results demonstrated that the tumors in magnetic targeting group had a significantly higher temperature elevation rate upon NIR irradiation than non-targeted group (similar to 12 degrees C vs. 8.5 degrees C). The in vivo antitumor assessment revealed that systemic injection of Fe2O3@Au in combination with magnetic targeting and NIR irradiation resulted in complete remission of tumor growth. Therefore, Fe2O3@Au can establish a targeted PTT strategy for efficient eradication of tumor cells under the guidance of MRI.
机译:最近在光热疗地区(PTT)领域的努力遵循两个重要的目的:(i)通过采用多峰成像模型的PTT操作的实时引导,选择性靶向靶向靶向肿瘤和(ii)的实时引导。在本研究中,我们利用由铁(III)氧化物 - 金(Fe2O3 Au)核 - 壳纳米粒子构成的多功能治疗纳米型纳米粒子,以满足这些目的。 Au壳展示表面等离子体共振,该性质被利用以实现PTT。磁芯使得Fe2O3 @ Au能够用作磁共振成像(MRI)造影剂。此外,磁芯具有建立磁性药物靶向策略的可能性,可以通过该磁性药物靶向策略通过该磁性药物靶向策略通过磁场引导到肿瘤部位。为了测试这些电位,携带CT26结直肠肿瘤模型的Balb / C小鼠静脉内注射了Fe2O3 @ Au。注射后立即,将磁铁放置在肿瘤部位3小时以浓缩纳米颗粒,然后近红外(NIR)激光照射。 MRI研究证实,由于Fe2O3 @ Au的T2增强能力,肿瘤内纳米颗粒的积累。体内温度结果表明,磁性靶向组中的肿瘤在NIR照射时比非靶向基团(类似于12摄氏度,8.5℃)。体内抗肿瘤评估表明,与磁靶向和NIR辐射相结合的Fe2O3 @ Au的全身注射,导致完全缓解肿瘤生长。因此,Fe2O3 @ Au可以建立目标PTT策略,以便在MRI的指导下有效地消除肿瘤细胞。

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