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利用聚合物机械化学二硫键断裂实现药物释放。

Toward Drug Release Using Polymer Mechanochemical Disulfide Scission.

机构信息

DWI - Leibniz Institute for Interactive Materials, Forckenbeckstr. 50, 52056 Aachen, Germany.

Institute of Technical and Macromolecular Chemistry, RWTH Aachen University, Worringerweg 1, 52074 Aachen, Germany.

出版信息

J Am Chem Soc. 2020 Aug 26;142(34):14725-14732. doi: 10.1021/jacs.0c07077. Epub 2020 Aug 17.

Abstract

Traditional pharmacotherapy suffers from multiple drawbacks that hamper patient treatment, such as the buildup of antibiotic resistances or low drug selectivity and toxicity during systemic application. To overcome these challenges, drug activity can be controlled by employing delivery, targeting, or release solutions that mostly rely on the response to external physicochemical stimuli. Due to various technical limitations, mechanical force as a stimulus in the context of polymer mechanochemistry has so far not been used for this purpose, yet it has been proven to be a convenient and robust method to site-selectively rearrange or cleave bonds with submolecular precision in the realm of materials chemistry. Here, we present an unprecedented mechanochemically responsive system capable of successively releasing small furan-containing molecules, including the furylated fluorophore dansyl and the drugs furosemide as well as furylated doxorubicin, by ultrasound-induced selective scission of disulfide-centered polymers in solution. We show that mechanochemically generated thiol-terminated polymers undergo a Michael-type addition to Diels-Alder (DA) adducts of furylated drugs and acetylenedicarboxylate derivatives, initiating the downstream release of the small molecule drug by a retro DA reaction. We believe that this method can serve as a blueprint for the activation of many other small molecules.

摘要

传统的药物疗法存在多种缺点,这些缺点会妨碍患者的治疗,例如抗生素耐药性的积累或全身性应用时药物选择性和毒性低。为了克服这些挑战,可以通过采用输送、靶向或释放解决方案来控制药物活性,这些解决方案主要依赖于对外界物理化学刺激的响应。由于各种技术限制,机械力作为聚合物机械化学中的一种刺激因素,迄今为止尚未用于此目的,但事实证明,它是一种在材料化学领域中以亚分子精度进行位点选择性重排或键断裂的方便且强大的方法。在这里,我们提出了一个前所未有的机械化学响应系统,该系统能够通过超声诱导选择性切割溶液中的基于二硫键的聚合物,连续释放包含呋喃的小分子,包括呋喃化荧光团丹磺酰和药物呋塞米以及呋喃化阿霉素。我们表明,机械化学生成的巯基封端聚合物经历迈克尔型加成到呋喃化药物和乙酰基二羧酸酯衍生物的 Diels-Alder (DA) 加合物,通过反 DA 反应引发小分子药物的下游释放。我们相信,这种方法可以作为许多其他小分子的激活蓝图。

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