Biomaterials and Polymer Science, Department of Bio- and Chemical Engineering, TU Dortmund, Emil-Figge-Straße 66, 44227 Dortmund, Germany.
Biomaterials and Polymer Science, Department of Bio- and Chemical Engineering, TU Dortmund, Emil-Figge-Straße 66, 44227 Dortmund, Germany.
J Control Release. 2024 Apr;368:15-23. doi: 10.1016/j.jconrel.2024.02.013. Epub 2024 Feb 21.
Drugs that form self-assembled supramolecular structures to be most-active is a promising way of creating new highly specific and active pharmaceuticals. Controlling the activity of bioactive supramolecular structures such as drug-loaded micelles is possible by both core/shell and inter-assembly cross-linking. However, if the flexibility of the assembly is mandatory for the activity cross-linking is not feasible. Thus, such structures cannot be manipulated in their activity. The present study demonstrates a novel concept to control the activity of not drug-releasing, non-cross-linked bioactive superstructures. This is achieved by formation of nanostructured nanoparticles derived by non-covalent inter-assembly cross-linking of the superstructures. This is shown on the example of amphiphilic diblock-copolymers conjugated with the antibiotic ciprofloxacin (CIP). These polymer-antibiotic conjugates form worm micelles, which greatly activate the conjugated antibiotic without releasing it. Non-covalent inter-assembly cross-linking of these CIP-worm-micelles with amphiphilic triblock copolymers terminated with lipase-cleavable esters leads to nanostructured nanoparticles that resemble cross-linked worm micelles and show an up to 135-fold lower activity than the free worm micelles. The activity of the worm-micelles can be fully recovered by cleaving the end groups of the polymeric cross-linker with lipase.
形成自组装超分子结构以获得最活跃的药物是创造新的高度特异性和活性药物的一种有前途的方法。通过核/壳和组装间交联,可以控制载药胶束等生物活性超分子结构的活性。然而,如果组装的灵活性对于活性至关重要,则交联不可行。因此,这种结构不能在其活性方面进行操作。本研究提出了一种控制非释药、非交联生物超结构活性的新概念。这是通过超结构的非共价组装间交联形成纳米结构的纳米颗粒来实现的。以与抗生素环丙沙星(CIP)缀合的两亲性二嵌段共聚物为例进行了说明。这些聚合物-抗生素缀合物形成蠕虫胶束,可大大激活缀合的抗生素而不释放它。用末端带有脂肪酶可裂解酯的两亲性三嵌段共聚物对这些 CIP-蠕虫胶束进行非共价组装间交联,得到类似于交联蠕虫胶束的纳米结构颗粒,其活性比游离蠕虫胶束低 135 倍。通过用脂肪酶裂解聚合物交联剂的端基,可以完全恢复蠕虫胶束的活性。