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Recent advancements in manganite perovskites and spinel ferrite-based magnetic nanoparticles for biomedical theranostic applications

机译:用于生物医学治疗应用的锰矿钙酯和尖晶石铁氧体基磁性纳米粒子的最新进展

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Recently, magnetic nanoparticles (MNPs) based on manganite perovskites (La1-xSrxMnO3 or LSMO) and/or spinel ferrites (i.e. SPFs with the formula MFe2O4; M=Co, Mg, Mn, Ni and Zn and mixed SPFs (e.g. Co-Zn, Mg-Mn, Mn-Zn and/or Ni-Zn)) have garnered great interest in magnetic hyperthermia therapy (MHT) as heat-inducing agents due to their tuneable magnetic properties including Curie temperature (T-c) to generate controllable therapeutic temperatures (i.e. 42 degrees C-45 degrees C)-under the application of an alternating magnetic field (AMF)-for the treatment of cancer. In addition, these nanoparticles are also utilized in magnetic resonance imaging (MRI) as contrast-enhancing agents. However, the employment of the LSMO/SPF-based MNPs in these MHT/MRI applications is majorly influenced by their inherent properties, which are mainly tuned by the synthesis factors. Therefore, in this review article, we have systematically discussed the significant chemical methods used to synthesize the LSMO/SPF-based MNPs and their corresponding intrinsic physicochemical properties (size/shape/crystallinity/dispersibility) and/or magnetic properties (including saturation magnetization (M-s)/T-c). Then, we have analyzed the usage of these MNPs for the effective imaging of cancerous tumors via MRI. Finally, we have reviewed in detail the heating capability (in terms of specific absorption rate) of the LSMO/SPF-based MNPs under calorimetric/biological conditions for efficient cancer treatment via MHT. Herein, we have mainly considered the significant parameters-such as size, surface coating (nature and amount), stoichiometry, concentration and the applied AMFs (including amplitude (H) and frequency (f))-that influence the heat induction ability of these MNPs.
机译:最近,磁性纳米颗粒(MNP)基于锰岩钙酸盐(La1-xsrxmnO3或Lsmo)和/或尖晶石铁氧体(即与式MFE2O4的SPFS; M = CO,Mg,Mn,Ni和Zn和混合SPF(例如Co-Zn Mg-Mn,Mn-Zn和/或Ni-Zn))由于其可调谐磁性(Tc)包括可控制的治疗温度,因此对磁体热疗治疗(MHT)的磁性热热性治疗(MHT)施加了极大的兴趣,以产生可控治疗温度( IE 42度C-45摄氏度C) - 在施加交替磁场(AMF)的施加时 - 对于癌症的治疗。此外,这些纳米颗粒也用于磁共振成像(MRI)作为对比增强剂。然而,这些MHT / MRI应用中的LSMO / SPF的MNP的就业主要受其固有性质的影响,主要由合成因子调整。因此,在该综述文章中,我们系统地讨论了用于合成基于LSMO / SPF的MNP的重要化学方法及其相应的内在物理化学性质(尺寸/形状/结晶度/分散性)和/或磁性(包括饱和磁化强度)( MS)/ TC)。然后,我们分析了这些MNP的用法通过MRI对癌性肿瘤的有效成像进行了有效的成像。最后,我们详细审查了基于LSMO / SPF的MNP的加热能力(在基于LSMO / SPF的MNP的比例下进行了热量/生物条件,以通过MHT高效癌症治疗。在此,我们主要考虑了显着的参数 - 例如尺寸,表面涂层(性质和量),化学计量,浓度和施加的AMF(包括幅度(H)和频率(F)) - 影响这些的热感应能力mnps。

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