Vangijzegem Thomas, Lecomte Valentin, Ternad Indiana, Van Leuven Levy, Muller Robert N, Stanicki Dimitri, Laurent Sophie
General, Organic and Biomedical Chemistry Unit, NMR and Molecular Imaging Laboratory, University of Mons, 7000 Mons, Belgium.
Center for Microscopy and Molecular Imaging (CMMI), Non-Ionizing Molecular Imaging Unit, 6041 Gosselies, Belgium.
Pharmaceutics. 2023 Jan 10;15(1):236. doi: 10.3390/pharmaceutics15010236.
Despite significant advances in cancer therapy over the years, its complex pathological process still represents a major health challenge when seeking effective treatment and improved healthcare. With the advent of nanotechnologies, nanomedicine-based cancer therapy has been widely explored as a promising technology able to handle the requirements of the clinical sector. Superparamagnetic iron oxide nanoparticles (SPION) have been at the forefront of nanotechnology development since the mid-1990s, thanks to their former role as contrast agents for magnetic resonance imaging. Though their use as MRI probes has been discontinued due to an unfavorable cost/benefit ratio, several innovative applications as therapeutic tools have prompted a renewal of interest. The unique characteristics of SPION, i.e., their magnetic properties enabling specific response when submitted to high frequency (magnetic hyperthermia) or low frequency (magneto-mechanical therapy) alternating magnetic field, and their ability to generate reactive oxygen species (either intrinsically or when activated using various stimuli), make them particularly adapted for cancer therapy. This review provides a comprehensive description of the fundamental aspects of SPION formulation and highlights various recent approaches regarding in vivo applications in the field of cancer therapy.
尽管多年来癌症治疗取得了重大进展,但其复杂的病理过程在寻求有效治疗和改善医疗保健方面仍然是一项重大的健康挑战。随着纳米技术的出现,基于纳米医学的癌症治疗作为一种有望满足临床需求的技术得到了广泛探索。自20世纪90年代中期以来,超顺磁性氧化铁纳米颗粒(SPION)一直处于纳米技术发展的前沿,这得益于它们曾作为磁共振成像造影剂的作用。尽管由于成本效益比不佳,它们作为MRI探针的用途已被停用,但作为治疗工具的一些创新应用引发了人们新的兴趣。SPION的独特特性,即它们的磁性使其在受到高频(磁热疗)或低频(磁机械疗法)交变磁场时能够产生特定反应,以及它们产生活性氧的能力(内在地或在使用各种刺激激活时),使其特别适用于癌症治疗。本文综述全面描述了SPION制剂的基本方面,并重点介绍了癌症治疗领域中体内应用的各种最新方法。