Fakayode Olayemi J, Tsolekile Ncediwe, Songca Sandile P, Oluwafemi Oluwatobi S
Department of Applied Chemistry, University of Johannesburg, P.O. Box 17011, Doornfontein, Johannesburg, 2028, South Africa.
Centre for Nanomaterials Science Research, University of Johannesburg, Johannesburg, South Africa.
Biophys Rev. 2018 Feb;10(1):49-67. doi: 10.1007/s12551-017-0383-2. Epub 2018 Jan 2.
Specially designed functionalized nanomaterials such as superparamagnetic iron oxide, gold, quantum dots and up- and down-conversion lanthanide series nanoparticles have consistently and completely revolutionized the biomedical environment over the past few years due to their specially inferring properties, such as specific drug delivery, plasmonic effect, optical and imaging properties, therapeutic thermal energy productionand excellent irresistible cellular penetration. These properties have been used to improve many existing disease treatment modalities and have led to the development of better therapeutic approaches for the advancement of the treatment of critical human diseases, such as cancers and related malaise. In photodynamic therapy, for example, where the delivery of therapeutic agents should ideally avoid toxicity on nearby healthy cells, superparamagnetic iron oxide nanoparticles have been shown to be capable of making photodynamic therapy (PDT) prodrugs and their associative targeting moieties tumor-specific via their unique response to an external magnetic fields. In this review, the nanomaterials commonly employed for the enhancement of photodynamic therapy are discussed. The review further describes the various methods of synthesis and characterization of these nanomaterials and highlights challenges for improving the efficacy of PDT in the future.
在过去几年中,诸如超顺磁性氧化铁、金、量子点以及上转换和下转换镧系纳米粒子等经过特殊设计的功能化纳米材料,凭借其独特的内在特性,如特定的药物递送、等离子体效应、光学和成像特性、产生治疗热能以及出色的不可阻挡的细胞穿透能力,持续且彻底地变革了生物医学环境。这些特性已被用于改进许多现有的疾病治疗方式,并促使开发出更好的治疗方法,以推动对诸如癌症及相关不适等重大人类疾病的治疗。例如,在光动力疗法中,理想情况下治疗剂的递送应避免对附近健康细胞产生毒性,超顺磁性氧化铁纳米粒子已被证明能够通过其对外部磁场的独特响应,使光动力疗法(PDT)前药及其相关靶向部分具有肿瘤特异性。在本综述中,讨论了常用于增强光动力疗法的纳米材料。该综述进一步描述了这些纳米材料的各种合成和表征方法,并强调了未来提高光动力疗法疗效所面临的挑战。