Vervald Alexey M, Burikov Sergey A, Scherbakov Alexander M, Kudryavtsev Oleg S, Kalyagina Nina A, Vlasov Igor I, Ekimov Evgeny A, Dolenko Tatiana A
Faculty of Physics, M. V. Lomonosov Moscow State University, Leninskie Gory, Moscow 119991, Russia.
N. N. Blokhin National Medical Research Center of Oncology, Kashirskoye sh. 24, Moscow 115522, Russia.
ACS Biomater Sci Eng. 2020 Aug 10;6(8):4446-4453. doi: 10.1021/acsbiomaterials.0c00505. Epub 2020 Jul 20.
Local targeted "inside-out" hyperthermia of tumors via nanoparticles is able to sensitize tumor cells to chemotherapy, radiation therapy, gene therapy, immunotherapy, or other effects, significantly reducing the duration and intensity of treatment. In this article, new nanomaterials are proposed to be used as anticancer agents: boron-doped nanodiamonds with sizes of about 10 nm synthesized for the first time by the high-temperature high-pressure (HTHP) method. The heating ability of boron-doped nanodiamonds was investigated under different heating conditions in different environments: water, chicken egg white, and MCF-7 breast cancer cells. It was discovered that, with the same conversion of the absorbed energy into heat, the ability to heat the environment when excited at a wavelength of 808 nm of boron-doped nanodiamonds is much higher than that of detonation nanodiamonds. It was established that boron-doped nanodiamonds are extremely promising for carrying out hyperthermia and thermoablation of tumors.
通过纳米颗粒对肿瘤进行局部靶向的“由内向外”热疗能够使肿瘤细胞对化疗、放疗、基因治疗、免疫治疗或其他效应敏感,显著缩短治疗时间并降低治疗强度。在本文中,提出了将新型纳米材料用作抗癌剂:首次通过高温高压(HTHP)法合成的尺寸约为10 nm的硼掺杂纳米金刚石。研究了硼掺杂纳米金刚石在不同环境(水、鸡蛋白和MCF-7乳腺癌细胞)中的不同加热条件下的加热能力。结果发现,在相同的吸收能量转化为热的情况下,硼掺杂纳米金刚石在808 nm波长激发时加热环境的能力远高于爆轰纳米金刚石。已确定硼掺杂纳米金刚石在进行肿瘤热疗和热消融方面极具前景。
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