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Magnetosomes Extracted from Magnetospirillum gryphiswaldense as Theranostic Agents in an Experimental Model of Glioblastoma

机译:在胶质母细胞瘤实验模型中从磁螺旋藻提取的磁小体作为治疗剂

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摘要

Magnetic fluid hyperthermia (MFH) with chemically synthesized nanoparticles is currently used in clinical trials as it destroys tumor cells with an extremely localized deposition of thermal energy. In this paper, we investigated an MFH protocol based on magnetic nanoparticles naturally produced by magnetotactic bacteria: magnetosomes. The efficacy of such protocol is tested in a xenograft model of glioblastoma. Mice receive a single intratumoral injection of magnetosomes, and they are exposed three times in a week to an alternating magnetic field with concurrent temperature measurements. MRI is used to visualize the nanoparticles and to monitor tumor size before and after the treatment. Statistically significant inhibition of the tumor growth is detected in subjects exposed to the alternating magnetic field compared to control groups. Moreover, thanks to magnetosomes high transversal relaxivity, their effective delivery to the tumor tissue is monitored by MRI. It is apparent that the efficacy of this protocol is limited by inhomogeneous delivery of magnetosomes to tumor tissue. These results suggest that naturally synthesized magnetosomes could be effectively considered as theranostic agent candidates for hyperthermia based on iron oxide nanoparticles.
机译:具有化学合成纳米粒子的磁流体热疗(MFH)当前用于临床试验,因为它以极局部的热能沉积破坏肿瘤细胞。在本文中,我们研究了基于趋磁细菌自然产生的磁性纳米粒子MFH协议:磁小体。在胶质母细胞瘤的异种移植模型中测试了该方案的功效。小鼠接受一次瘤内注射的磁小体,并且一周内将它们暴露于交变磁场并同时进行温度测量,每周暴露三次。 MRI用于观察纳米颗粒并监测治疗前后的肿瘤大小。与对照组相比,在暴露于交变磁场的受试者中检测到统计学上显着的肿瘤生长抑制作用。此外,由于磁小体具有高的横向弛豫性,因此可以通过MRI监测它们向肿瘤组织的有效传递。显然,该方案的功效受到磁小体向肿瘤组织的不均匀递送的限制。这些结果表明,基于氧化铁纳米粒子,天然合成的磁小体可以有效地视为热疗的治疗剂。

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