Yoshida Yasuyuki, Takata Kazuyuki, Takai Hiroki, Kawahara Keisuke, Kuzuya Akinori, Ohya Yuichi
a Faculty of Chemistry, Materials and Bioengineering, Department of Chemistry and Materials Engineering , Kansai University , Suita , Japan.
b Research Fellow of Japan Society for the Promotion of Science , Chiyoda, Tokyo , Japan.
J Biomater Sci Polym Ed. 2017 Oct;28(14):1427-1443. doi: 10.1080/09205063.2017.1330114. Epub 2017 May 23.
On clinical application of biodegradable injectable polymer (IP) systems, quick extemporaneous preparation of IP formulations and longer duration time gel state after injection into the body are the important targets to be developed. Previously, we had reported temperature-responsive covalent gelation systems via bio-orthogonal thiol-ene reaction by 'mixing strategy' of amphiphilic biodegradable tri-block copolymer (tri-PCG) attaching acryloyl groups on both termini (tri-PCG-Acryl) with reactive polythiol. In other previous works, we found 'freeze-dry with PEG/dispersion' method as quick extemporaneous preparation method of biodegradable IP formulations. In this study, we applied this quick preparative method to the temperature-triggered covalent gelation system. The instant formulation (D-sample) could be prepared by 'freeze-dry with PEG/dispersion' just mixing of tri-PCG-Acryl micelle dispersion and tri-PCG/DPMP micelle dispersion with PEG, that can be prepared in 30 s from the dried samples. The obtained D-sample showed irreversible gelation and long duration time of gel state, which was basically the same as the formulations prepared by the usual heating dissolution method (S-sample). Interestingly, the D-sample could maintain its sol state for a longer time (24 h) after preparing the formulation at r.t. compared with the S-sample, which became a gel in 3 h after preparing. The IP system showed good biocompatibility and long duration time of the gel state after subcutaneous implantation. These characteristics of D-samples, quick extemporaneous preparation and high stability in the sol state before injection, would be very convenient in a clinical setting.
关于可生物降解注射用聚合物(IP)系统的临床应用,快速临时制备IP制剂以及注射入体内后较长时间的凝胶状态是有待开发的重要目标。此前,我们曾报道过通过两亲性可生物降解三嵌段共聚物(tri-PCG)在两端连接丙烯酰基(tri-PCG-Acryl)与反应性多硫醇的“混合策略”实现的基于生物正交硫醇-烯反应的温度响应性共价凝胶化系统。在之前的其他工作中,我们发现“PEG/分散冻干”法是可生物降解IP制剂的快速临时制备方法。在本研究中,我们将这种快速制备方法应用于温度触发的共价凝胶化系统。即时制剂(D样品)可通过“PEG/分散冻干”法,将tri-PCG-Acryl胶束分散体与tri-PCG/DPMP胶束分散体与PEG简单混合制备而成,从干燥样品开始30秒内即可制备完成。所得D样品显示出不可逆的凝胶化以及较长的凝胶状态持续时间,这与通过常规加热溶解法制备的制剂(S样品)基本相同。有趣的是,与制备后3小时即变为凝胶的S样品相比,D样品在室温下制备制剂后能在较长时间(24小时)内保持溶胶状态。该IP系统在皮下植入后显示出良好的生物相容性以及较长的凝胶状态持续时间。D样品的这些特性,即快速临时制备以及注射前在溶胶状态下的高稳定性,在临床环境中将会非常方便。