Acta Biochimica et Biophysica Sinica · 2011 · 45 citations · 26 references
NanoparticlesNanomedicineNanotherapeuticsMagnetic NanoparticlesGliomaNanomaterialsNanotechnologyEngineeringSilver NanoparticlesMedicineMetal NanoparticlesMagnetic Nanoparticles HyperthermiaNano-drug DeliveryTumor TargetingBiomedical EngineeringSilver NanocrystalsRadiation OncologyTumor Microenvironment
Magnetic nanoparticles (MNPs) can heat up tumor tissues and induce killing of cancer cells under external AC magnetic field. However, magnetic nanoparticles hyperthermia (MNPH) requires high concentration of MNPs that are injected into the tumor in order to obtain clinically needed thermal dose because of the complicated heat transfer in vivo and the limited heat quality of MNPs. To cut down the dose of MNPs and enhance the effect of this Nanotherapy, we prepared silver nanoparticles (AgNPs) with different sizes and investigated the effects of these AgNPs on cancer cells in MNPH treatment. It was found that AgNPs could enhance thermo-sensitivity of glioma cells and this effect was size dependent. AgNPs could induce cell cycles arrested in G(2)/M phase and enhanced the apoptosis rate of cancer cells after hyperthermia. In glioma bearing rats model, MNPH combined with AgNPs could enhance Bax expression in cancer cells. Our results suggested that AgNPs could be a potential thermo-sensitizer and could be further developed for the design of Ag nanostructure-based thermal seeds for MNPH therapy.
26
Radiotherapy plus Concomitant and Adjuvant Temozolomide for Glioblastoma
Roger Stupp, Warren Mason, Martin J. van den Bent et al. · New England Journal of Medicine · 2005 · 21K citations · Full text
Cytotoxicity and Genotoxicity of Silver Nanoparticles in Human Cells
P. V. Asharani, Grace Low Kah Mun, M. Prakash Hande et al. · ACS Nano · 2008 · 3.6K citations
Interaction of silver nanoparticles with HIV-1
Jose Luis Elechiguerra, Justin L. Burt, José Rubén Morones‐Ramírez et al. · Journal of Nanobiotechnology · 2005 · 1.7K citations · Full text