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优化锌-组氨酸标签配位远程加载蛋白质于 PLGA 微球中。

Optimizing zinc-HisTag coordination remote loading of proteins in PLGA microspheres.

机构信息

Department of Pharmaceutical Sciences and the Biointerfaces Institute, University of Michigan, 2800 Plymouth Rd, Ann Arbor, MI 48109, USA.

Department of Pharmaceutical Sciences and the Biointerfaces Institute, University of Michigan, 2800 Plymouth Rd, Ann Arbor, MI 48109, USA; Department of Biomedical Engineering, University of Michigan, 2800 Plymouth Rd, Ann Arbor, MI 48109, USA.

出版信息

Int J Pharm. 2022 Jul 25;623:121889. doi: 10.1016/j.ijpharm.2022.121889. Epub 2022 Jun 4.

Abstract

Metal-HisTag coordination remote loading (MHCRL) of proteins in PLGA microspheres was previously developed to provide a useful tool for discovery and preclinical development of controlled release protein formulations. Here we describe optimization of MHCRL, including (1) reducing thermal stress, (2) decreasing the complexity and duration of the procedure, (3) increasing loading capacity, (4) increasing the penetration depth of protein, and (5) improving the release profile. Directly encapsulating ZnCOas a Znsource for HisTag coordination, rather than remotely loading Zn, increased the Zn content ∼6-fold. Microspheres with directly encapsulated ZnCOmore deeply encapsulated green fluorescent protein and more efficiently encapsulated human serum albumin at protein loading solutions concentrations ≥100 μg/mL than remotely loaded Znmicrospheres. Tributyl acetylcitrate plasticized microspheres in terms of decreasingT, but led to a decrease in protein encapsulation efficiency. As such, the plasticizer was not deemed useful. The loading/healing cycles were reduced in time and temperature from 48 h/42 h at 43 °C to 2 h/6h at 37 °C while maintaining strong encapsulation efficiency, resulting in significantly improved protein stability. Immunoreactive protein was slowly released for months following a modest burst release. The improved microspheres and shorter, low-temperature encapsulation could be a valuable asset to drug discovery scientists interested in controlled release of delicate and/or costly biologic candidates.

摘要

金属-组氨酸标签配位远程加载(MHCRL)蛋白在 PLGA 微球中的应用,此前已被开发用于发现和临床前开发控释蛋白配方的有用工具。在此,我们描述了 MHCRL 的优化,包括(1)降低热应力,(2)降低程序的复杂性和持续时间,(3)增加载药量,(4)增加蛋白渗透深度,以及(5)改善释放曲线。直接包埋 ZnCO₃作为 HisTag 配位的 Zn 源,而不是远程加载 Zn,使 Zn 含量增加了约 6 倍。与远程加载 ZN 的微球相比,直接包埋 ZnCO₃的微球能更深地包埋绿色荧光蛋白(GFP)和人血清白蛋白(HSA),且在蛋白载液浓度≥100μg/ml 时载药量更高。三丁酸乙酰柠檬酸酯(Tributyl acetylcitrate)可降低 T,但会降低蛋白包封效率。因此,该塑化剂不被认为是有用的。通过降低温度和时间,加载/愈合循环的时间和温度从 43°C 下的 48h/42h 缩短至 37°C 下的 2h/6h,同时保持较强的包封效率,从而显著提高蛋白稳定性。在适度爆发释放后,免疫反应性蛋白可在数月内缓慢释放。改进的微球和更短、低温包封可能是对控释脆弱和/或昂贵生物候选物感兴趣的药物发现科学家的宝贵资产。

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