Piktel Ewelina, Niemirowicz Katarzyna, Wątek Marzena, Wollny Tomasz, Deptuła Piotr, Bucki Robert
Department of Microbiological and Nanobiomedical Engineering, Medical University of Bialystok, Mickiewicza 2c, 15-222, Bialystok, Poland.
Holy Cross Oncology Center of Kielce, Artwińskiego 3, 25-317, Kielce, Poland.
J Nanobiotechnology. 2016 May 26;14(1):39. doi: 10.1186/s12951-016-0193-x.
The rapid development of nanotechnology provides alternative approaches to overcome several limitations of conventional anti-cancer therapy. Drug targeting using functionalized nanoparticles to advance their transport to the dedicated site, became a new standard in novel anti-cancer methods. In effect, the employment of nanoparticles during design of antineoplastic drugs helps to improve pharmacokinetic properties, with subsequent development of high specific, non-toxic and biocompatible anti-cancer agents. However, the physicochemical and biological diversity of nanomaterials and a broad spectrum of unique features influencing their biological action requires continuous research to assess their activity. Among numerous nanosystems designed to eradicate cancer cells, only a limited number of them entered the clinical trials. It is anticipated that progress in development of nanotechnology-based anti-cancer materials will provide modern, individualized anti-cancer therapies assuring decrease in morbidity and mortality from cancer diseases. In this review we discussed the implication of nanomaterials in design of new drugs for effective antineoplastic therapy and describe a variety of mechanisms and challenges for selective tumor targeting. We emphasized the recent advantages in the field of nanotechnology-based strategies to fight cancer and discussed their part in effective anti-cancer therapy and successful drug delivery.
纳米技术的迅速发展为克服传统抗癌疗法的若干局限性提供了替代方法。利用功能化纳米颗粒进行药物靶向,以促进其向特定部位的转运,已成为新型抗癌方法的新标准。实际上,在抗肿瘤药物设计过程中使用纳米颗粒有助于改善药代动力学性质,随后开发出高特异性、无毒且生物相容性良好的抗癌药物。然而,纳米材料的物理化学和生物学多样性以及影响其生物学作用的广泛独特特征需要持续研究以评估其活性。在众多旨在根除癌细胞的纳米系统中,只有少数进入了临床试验。预计基于纳米技术的抗癌材料的开发进展将提供现代的个体化抗癌疗法,确保降低癌症疾病的发病率和死亡率。在本综述中,我们讨论了纳米材料在设计有效抗肿瘤治疗新药中的意义,并描述了选择性肿瘤靶向的多种机制和挑战。我们强调了基于纳米技术的抗癌策略领域的最新优势,并讨论了它们在有效抗癌治疗和成功药物递送中的作用。