Manescu Paltanea Veronica, Paltanea Gheorghe, Antoniac Iulian, Vasilescu Marius
Faculty of Material Science and Engineering, University Politehnica of Bucharest, 313 Splaiul Independentei, District 6, RO-060042 Bucharest, Romania.
Faculty of Electrical Engineering, University Politehnica of Bucharest, 313 Splaiul Independentei, District 6, RO-060042 Bucharest, Romania.
Materials (Basel). 2021 Oct 10;14(20):5948. doi: 10.3390/ma14205948.
Recently, magnetic nanoparticles (MNPs) have more and more often been used in experimental studies on cancer treatments, which have become one of the biggest challenges in medical research. The main goal of this research is to treat and to cure advanced or metastatic cancer with minimal side effects through nanotechnology. Drug delivery approaches take into account the fact that MNPs can be bonded to chemotherapeutical drugs, nucleic acids, synthetized antibodies or radionuclide substances. MNPs can be guided, and different treatment therapies can be applied, under the influence of an external magnetic field. This paper reviews the main MNPs' synthesis methods, functionalization with different materials and highlight the applications in cancer therapy. In this review, we describe cancer cell monitorization based on different types of magnetic nanoparticles, chemotherapy, immunotherapy, magnetic hyperthermia, gene therapy and ferroptosis. Examples of applied treatments on murine models or humans are analyzed, and glioblastoma cancer therapy is detailed in the review. MNPs have an important contribution to diagnostics, investigation, and therapy in the so called theranostics domain. The main conclusion of this paper is that MNPs are very useful in different cancer therapies, with limited side effects, and they can increase the life expectancy of patients with cancer drug resistance.
最近,磁性纳米颗粒(MNPs)越来越频繁地用于癌症治疗的实验研究中,癌症治疗已成为医学研究中最大的挑战之一。这项研究的主要目标是通过纳米技术以最小的副作用治疗和治愈晚期或转移性癌症。药物递送方法考虑到MNPs可以与化疗药物、核酸、合成抗体或放射性核素物质结合。在外部磁场的影响下,MNPs可以被引导,并可以应用不同的治疗方法。本文综述了MNPs的主要合成方法、用不同材料进行功能化,并重点介绍了其在癌症治疗中的应用。在这篇综述中,我们描述了基于不同类型磁性纳米颗粒的癌细胞监测、化疗、免疫疗法、磁热疗法、基因疗法和铁死亡。分析了在小鼠模型或人类身上应用治疗的实例,并在综述中详细介绍了胶质母细胞瘤癌症治疗。MNPs在所谓的治疗诊断领域的诊断、研究和治疗中有着重要贡献。本文的主要结论是,MNPs在不同的癌症治疗中非常有用,副作用有限,并且可以提高对癌症耐药患者的预期寿命。