He Xiaojia, Aker Winfred G, Huang Ming-Ju, Watts John D, Hwang Huey-Min
Department of Biology, Jackson State University, Jackson, Mississippi 39217, USA.
Curr Top Med Chem. 2015;15(18):1887-900. doi: 10.2174/1568026615666150506145251.
Metal oxide nanomaterials have exhibited excellent performance as nanomedicines in photodynamic therapy (PDT) for cancer and infection treatment. Their unique and tunable physicochemical properties advance them as promising alternatives in drug delivery, early diagnosis, imaging, and treatment against various tumors and infectious diseases. Moreover, the implementation of nanophototherapy in deep tissue sites is enhanced by advancements in photosensitization technology. Notwithstanding the progress made in emerging metal oxide nanomaterials-derived PDT, the potential toxicity towards adjunct tissues associated with this approach remains challenging. Regulation and legislation have also been recommended and subsequently enacted in response to public concerns related to large-scale production, transportation, use, and disposal of those nanomaterials. Consequently, a quantitative structure-activity relationship (QSAR) paradigm has been adopted and is widely used in evaluating and predicting the side effects of nanomedicines, thus influencing their design and fabrication. This article briefly reviews the application of metal oxide nanomaterials in PDT and their associated adverse impacts as reported in recent publications. The future trends and implications of this platform in nanomedicine are also highlighted. However, more studies and efforts have to be carried out for developing novel nano-therapeutics with high selectivity, sensitivity, biocompatibility, and minimal side effects in PDT.
金属氧化物纳米材料在用于癌症和感染治疗的光动力疗法(PDT)中已展现出作为纳米药物的优异性能。其独特且可调节的物理化学性质使其成为药物递送、早期诊断、成像以及针对各种肿瘤和传染病治疗的有前景的替代物。此外,光敏化技术的进步增强了纳米光疗在深部组织部位的应用。尽管源自新兴金属氧化物纳米材料的光动力疗法取得了进展,但该方法对附属组织的潜在毒性仍然具有挑战性。针对公众对这些纳米材料大规模生产、运输、使用和处置的担忧,也已提出并随后颁布了相关法规。因此,定量构效关系(QSAR)范式已被采用并广泛用于评估和预测纳米药物的副作用,从而影响其设计和制造。本文简要回顾了金属氧化物纳米材料在光动力疗法中的应用以及近期出版物中报道的相关不利影响。还强调了该平台在纳米医学中的未来趋势和意义。然而,为了在光动力疗法中开发具有高选择性、高灵敏度、生物相容性且副作用最小的新型纳米疗法,还需要开展更多的研究和努力。