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It considers the effects of magnetic nanoparticle (mnp) (different sizes and materials), alternating magnetic field (amf) characteristics (frequency and strength magnetic field), mfh duration, and injection number, using a realistic brain phantom, considering its blood circulation system, tumor, and healthy tissue properties. The various challenges of translating mfh into routine clinical applications include determining the optimum magnetic field strength, frequency and exposure time for the targeted region Nanotherm ® deposits are easily seen on ct, allowing confirmation of the therapy prior to treatment

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Uniquely, as implanted particles move with the tumor within the broad magnetic field, the heating area remains unaffected Magnetic hyperthermia therapy (mht), which utilizes magnetic nanoparticles (mnps) to convert alternating magnetic field (amf) energy into localized heat, has emerged as a minimally invasive and spatially precise strategy for tumor ablation. With other external treatments, patient motion makes treatment challenging.

Magnetic hyperthermia therapy (mht) is a promising treatment modality for brain tumors using magnetic nanoparticles (mnps) locally delivered to the tumor and activated with an external alternating magnetic field (amf) to generate antitumor effects through localized heating

It is advisable that future preclinical studies on biologically targeted magnetic hyperthermia focus on the application of clinically relevant magnetic field strength and frequency of 18 ka/m and 100 khz currently available on the magforce system. Magnetic induction hyperthermia (mih), is a technique that has developed rapidly in recent years in the field of tumor thermotherapy

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