Salama Lavinia, Pastor Elizabeth R, Stone Tyler, Mousa Shaker A
The Pharmaceutical Research Institute, Albany College of Pharmacy and Health Sciences, Rensselaer, NY 12144, USA.
Biomedicines. 2020 Sep 12;8(9):347. doi: 10.3390/biomedicines8090347.
Nanotechnology is the science of nanoscale, which is the scale of nanometers or one billionth of a meter. Nanotechnology encompasses a broad range of technologies, materials, and manufacturing processes that are used to design and/or enhance many products, including medicinal products. This technology has achieved considerable progress in the oncology field in recent years. Most chemotherapeutic agents are not specific to the cancer cells they are intended to treat, and they can harm healthy cells, leading to numerous adverse effects. Due to this non-specific targeting, it is not feasible to administer high doses that may harm healthy cells. Moreover, low doses can cause cancer cells to acquire resistance, thus making them hard to kill. A solution that could potentially enhance drug targeting and delivery lies in understanding the complexity of nanotechnology. Engineering pharmaceutical and natural products into nano-products can enhance the diagnosis and treatment of cancer. Novel nano-formulations such as liposomes, polymeric micelles, dendrimers, quantum dots, nano-suspensions, and gold nanoparticles have been shown to enhance the delivery of drugs. Improved delivery of chemotherapeutic agents targets cancer cells rather than healthy cells, thereby preventing undesirable side effects and decreasing chemotherapeutic drug resistance. Nanotechnology has also revolutionized cancer diagnosis by using nanotechnology-based imaging contrast agents that can specifically target and therefore enhance tumor detection. In addition to the delivery of drugs, nanotechnology can be used to deliver nutraceuticals like phytochemicals that have multiple properties, such as antioxidant activity, that protect cells from oxidative damage and reduce the risk of cancer. There have been multiple advancements and implications for the use of nanotechnology to enhance the delivery of both pharmaceutical and nutraceutical products in cancer prevention, diagnosis, and treatment.
纳米技术是关于纳米尺度的科学,纳米尺度即纳米或一米的十亿分之一的尺度。纳米技术涵盖了广泛的技术、材料和制造工艺,这些技术、材料和工艺被用于设计和/或改进许多产品,包括医药产品。近年来,这项技术在肿瘤学领域取得了显著进展。大多数化疗药物并非特异性地作用于它们旨在治疗的癌细胞,它们会损害健康细胞,导致许多不良影响。由于这种非特异性靶向作用,给予可能损害健康细胞的高剂量药物是不可行的。此外,低剂量会使癌细胞产生耐药性,从而使其难以被杀死。一种有可能增强药物靶向性和递送效果的解决方案在于理解纳米技术的复杂性。将药物和天然产物制成纳米产品可以提高癌症的诊断和治疗水平。新型纳米制剂,如脂质体、聚合物胶束、树枝状大分子、量子点、纳米混悬液和金纳米颗粒,已被证明可以增强药物递送。化疗药物递送的改善使药物靶向癌细胞而非健康细胞,从而预防不良副作用并降低化疗药物耐药性。纳米技术还通过使用基于纳米技术的成像造影剂彻底改变了癌症诊断,这些造影剂可以特异性地靶向并因此增强肿瘤检测。除了药物递送,纳米技术还可用于递送具有多种特性(如抗氧化活性)的营养保健品,如植物化学物质,这些特性可以保护细胞免受氧化损伤并降低患癌风险。在癌症预防、诊断和治疗中,利用纳米技术增强药物和营养保健品的递送方面已经取得了多项进展并产生了诸多影响。