Negut Irina, Bita Bogdan
National Institute for Laser, Plasma and Radiation Physics, 409 Atomistilor Street, Magurele, 077125 Bucharest, Romania.
Faculty of Physics, University of Bucharest, 077125 Măgurele, Romania.
Pharmaceutics. 2023 Mar 17;15(3):976. doi: 10.3390/pharmaceutics15030976.
Concurrent developments in anticancer nanotechnological treatments have been observed as the burden of cancer increases every year. The 21st century has seen a transformation in the study of medicine thanks to the advancement in the field of material science and nanomedicine. Improved drug delivery systems with proven efficacy and fewer side effects have been made possible. Nanoformulations with varied functions are being created using lipids, polymers, and inorganic and peptide-based nanomedicines. Therefore, thorough knowledge of these intelligent nanomedicines is crucial for developing very promising drug delivery systems. Polymeric micelles are often simple to make and have high solubilization characteristics; as a result, they seem to be a promising alternative to other nanosystems. Even though recent studies have provided an overview of polymeric micelles, here we included a discussion on the "intelligent" drug delivery from these systems. We also summarized the state-of-the-art and the most recent developments of polymeric micellar systems with respect to cancer treatments. Additionally, we gave significant attention to the clinical translation potential of polymeric micellar systems in the treatment of various cancers.
随着每年癌症负担的增加,人们观察到抗癌纳米技术治疗也在同步发展。由于材料科学和纳米医学领域的进步,21世纪见证了医学研究的变革。已开发出具有已证实疗效且副作用较少的改进型药物递送系统。正在使用脂质、聚合物以及无机和基于肽的纳米药物创建具有多种功能的纳米制剂。因此,深入了解这些智能纳米药物对于开发非常有前景的药物递送系统至关重要。聚合物胶束通常易于制备且具有高增溶特性;因此,它们似乎是其他纳米系统的一个有前途的替代方案。尽管最近的研究已经对聚合物胶束进行了概述,但在此我们纳入了关于这些系统的“智能”药物递送的讨论。我们还总结了聚合物胶束系统在癌症治疗方面的最新技术水平和最新进展。此外,我们高度关注聚合物胶束系统在治疗各种癌症方面的临床转化潜力。