Department of Micro and Nanoelectronics, Saint Petersburg Electrotechnical University "LETI", 197022 Saint Petersburg, Russia.
Laboratory of Biomedical Nanotechnologies, Institute of Cytology of the Russian Academy of Sciences, 194064 Saint Petersburg, Russia.
Biosensors (Basel). 2022 Sep 25;12(10):789. doi: 10.3390/bios12100789.
Magnetic nanocarriers have attracted attention in translational oncology due to their ability to be employed both for tumor diagnostics and therapy. This review summarizes data on applications of synthetic and biogenic magnetic nanoparticles (MNPs) in oncological theranostics and related areas. The basics of both types of MNPs including synthesis approaches, structure, and physicochemical properties are discussed. The properties of synthetic MNPs and biogenic MNPs are compared with regard to their antitumor therapeutic efficiency, diagnostic potential, biocompatibility, and cellular toxicity. The comparative analysis demonstrates that both synthetic and biogenic MNPs could be efficiently used for cancer theranostics, including biosensorics and drug delivery. At the same time, reduced toxicity of biogenic particles was noted, which makes them advantageous for in vivo applications, such as drug delivery, or MRI imaging of tumors. Adaptability to surface modification based on natural biochemical processes is also noted, as well as good compatibility with tumor cells and proliferation in them. Advances in the bionanotechnology field should lead to the implementation of MNPs in clinical trials.
磁性纳米载体由于能够用于肿瘤诊断和治疗而在转化肿瘤学中受到关注。本综述总结了关于合成和生物磁性纳米颗粒(MNPs)在肿瘤治疗学和相关领域中的应用的数据。讨论了这两种类型的 MNPs 的基本原理,包括合成方法、结构和物理化学性质。比较了合成 MNPs 和生物 MNPs 的特性,包括抗肿瘤治疗效率、诊断潜力、生物相容性和细胞毒性。比较分析表明,合成和生物 MNPs 都可以有效地用于癌症治疗学,包括生物传感器和药物输送。同时,注意到生物颗粒的毒性降低,这使得它们有利于体内应用,如药物输送或肿瘤的 MRI 成像。还注意到基于天然生化过程的表面改性的适应性,以及与肿瘤细胞的良好相容性和在肿瘤细胞中的增殖。生物纳米技术领域的进步应该会导致 MNPs 在临床试验中的应用。