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设计用于控制药物释放的智能聚合物共轭物。

Designing Smart Polymer Conjugates for Controlled Release of Payloads.

作者信息

Seidi Farzad, Jenjob Ratchapol, Crespy Daniel

机构信息

Department of Materials Science and Engineering, School of Molecular Science and Engineering , Vidyasirimedhi Institute of Science and Technology , Rayong 21210 , Thailand.

出版信息

Chem Rev. 2018 Apr 11;118(7):3965-4036. doi: 10.1021/acs.chemrev.8b00006. Epub 2018 Mar 13.

Abstract

Incorporating labile bonds inside polymer backbone and side chains yields interesting polymer materials that are responsive to change of environmental stimuli. Drugs can be conjugated to various polymers through different conjugation linkages and spacers. One of the key factors influencing the release profile of conjugated drugs is the hydrolytic stability of the conjugated linkage. Generally, the hydrolysis of acid-labile linkages, including acetal, imine, hydrazone, and to some extent β-thiopropionate, are relatively fast and the conjugated drug can be completely released in the range of several hours to a few days. The cleavage of ester linkages are usually slow, which is beneficial for continuous and prolonged release. Another key structural factor is the water solubility of polymer-drug conjugates. Generally, the release rate from highly water-soluble prodrugs is fast. In prodrugs with large hydrophobic segments, the hydrophobic drugs are usually located in the hydrophobic core of micelles and nanoparticles, which limits the access to the water, hence lowering significantly the hydrolysis rate. Finally, self-immolative polymers are also an intriguing new class of materials. New synthetic pathways are needed to overcome the fact that much of the small molecules produced upon degradation are not active molecules useful for biomedical applications.

摘要

在聚合物主链和侧链中引入不稳定键可产生对环境刺激变化有响应的有趣聚合物材料。药物可通过不同的连接键和间隔基与各种聚合物缀合。影响缀合药物释放曲线的关键因素之一是缀合键的水解稳定性。一般来说,酸不稳定键的水解,包括缩醛、亚胺、腙,以及在一定程度上的β-硫代丙酸酯,相对较快,缀合药物可在数小时至数天内完全释放。酯键的断裂通常较慢,这有利于持续和延长释放。另一个关键结构因素是聚合物-药物缀合物的水溶性。一般来说,高水溶性前药的释放速率较快。在具有大疏水段的前药中,疏水药物通常位于胶束和纳米颗粒的疏水核心中,这限制了与水的接触,从而显著降低水解速率。最后,自牺牲聚合物也是一类有趣的新型材料。需要新的合成途径来克服降解产生的许多小分子不是用于生物医学应用的活性分子这一事实。

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