This review summarizes the recent progress in iron-oxide-based heat generators. Cancer treatment using magnetic nanoparticles as a heat generator, termed magnetic fluid hyperthermia, is a promising noninvasive approach that has gained significant interest. Most previous studies on improving the hyperthermia effect have focused on the construction of dopant-containing iron oxides. However, their applications in a clinical application can be limited due to extra dopants, and pure iron oxide is the only inorganic material approved by the Food and Drug Administration (FDA). Several factors that influence the heat generation capability of iron-oxide-based nanoparticles are summarized by reviewing recent studies on hyperthermia agents. Thus, our paper will provide the guideline for developing pure iron oxide-based heat generators with high heat dissipation capabilities.
This study uses silicone monomer, DMA, crosslinking agent EGDMA, and initiator AIBN as a basic combination to prepare hydrogel lenses using fluorine-based perfluoro polyether and iron oxide and zinc oxide nanoparticles as additives. After manufacturing the lens using iron oxide nanoparticles and zinc oxide nanoparticles, the optical, physical properties, and polymerization stability are evaluated to investigate the possibility of application as a functional hydrogel lens material. As a result of this experiment, it is found that the addition of the wetting material containing fluorine changes the surface energy of the produced hydrogel lens, thereby improving the wettability. Also, the addition of iron oxide and zinc oxide nanoparticles satisfies the basic hydrogel ophthalmic lens properties and slightly increases the UV blocking performance; it also increases the tensile strength by improving the durability of the hydrogel lens. The polymerization stability of the nanoparticles evaluated through the eluate test is found to be excellent. Therefore, it is judged that these materials can be used in various conditions as high functional hydrogel lens material.
We describe the preparation of superparamagnetic nanoclusters (SNCs) by fine-tuning of the seed Fe3O4 nanoparticle sizes to enhance and their T2 relaxivity can be increased by > 4-fold. Therefore, with 11 nm seed core and PVA coating, SNC-11 exhibit a higher T2 relaxivity than other cluster condition. So fabricating the cluster, seed size is the most important influence the T2 relaxivity. As well as, in vitro cellular imaging results demonstrated the strong potential of SNCs for clinical applications by targeting affinity. According to the experiments, with 11 nm seed core and PVA coating, SNC-11 exhibited the highest T2 relaxivity of 454 mM-1s-1 due to the strong seed size effect on their magnetic sensitivity, indicating superior magnetic resonance (MR) contrast efficiency. Further in vitro cellular imaging results demonstrated the strong potential of SNCs for clinical applications.
The effects of reaction temperature and precursor concentration on the microstructure and magnetic properties of nanoparticles synthesized as final products of iron acetylacetonate in chemical vapor condensation (CVC) were investigated. Pure phase was obtained at temperature above and crystallite size of nanoparticles decreased with lowering precursor concentration. Also, the coercivity decreases with decreasing crystallite size of nanopowder. The lowest coercivity was 7.8 Oe, which was obtained from the nanopowder sample synthesized at precursor concentration of 0.3M. Then, the crystallite size of nanoparticles was 8.8 nm.
본 연구는 초상자성 산화철 나노입자 (SPIONs)의 세포독성평가 및 SPIONs를 uptake한 뇌신경교종 (glioblastoma multiforme, GBM) 세포의 방사선 세포생존곡선을 구하기 위해 수행되었으며, 본 연구의 결과는 양성자선과 SPIONs 이용한 GBM의 양성자선 치료선량 정보 등 양성자선 치료효과를 개선하기 위한 기초자료로 활용될 수 있을 것이다.SPIONs의 세포독성을 평가는 in vitro 실험 후 MTT 분석법을 이용하여 수행하였다. 독성평가 결과 1~100μg/ml의 농도에서는 세포생존율의 유의한 차이가 나타나지 않았다. 하지만 200μg/ml의 농도에서는 세포생존율이 74.2%로 감소하며 세포독성을 나타냈다. SPIONs가 uptake 된 U373MG세포와 uptake 되지 않은 U373MG세포에 0~5 Gy의 양성자선을 조사하여 각각에 대한 세포생존곡선을 측정한 결과를 분석하여 SPIONs가 uptake된 U373MG세포의 세포생존율이 더 급격히 감소함을 알 수 있었다. 결론적으로 SPIONs가 uptake 된 세포에서는 보다 적은 선량으로도 세포사멸을유도할 수 있음을 알 수 있었다. 따라서 GBM에 SPIONs를 타겟팅하면 양성자선을 이용한 뇌신경교종 치료효과를 개선할 수 있음을 보였다.