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基于自牺牲胰岛素前药和葡萄糖氧化酶的完全溶解的葡萄糖响应性胰岛素递送系统。

Fully dissolved glucose-responsive insulin delivery system based on a self-immolative insulin prodrug and glucose oxidase.

作者信息

Kitaoka Satoshi, Kojima Minori, Koita Miho, Koyama Hiroki, Mori Chisato, Okabe Mako, Ando Ryusei, Kobayashi Kaede, Watanabe Ryo, Takano Yuki, James Tony D, Egawa Yuya

机构信息

Faculty of Pharmacy and Pharmaceutical Sciences, Josai University 1-1 Keyakidai, Sakado Saitama 350-0295 Japan

Department of Chemistry, University of Bath Bath BA2 7AY UK.

出版信息

Chem Sci. 2025 Aug 11. doi: 10.1039/d5sc02817e.

Abstract

Among various treatment options for diabetes, insulin therapy remains an important approach, but it inevitably carries the risk of hypoglycaemia, particularly due to dosing errors or unexpected glucose fluctuations. To address this challenge, glucose-responsive insulin delivery systems that release insulin based on blood glucose levels have emerged as a promising solution. In this study, we developed a fully dissolved glucose-responsive insulin delivery system using -borono-phenylmethoxycarbonyl-modified insulin aspart (BPmoc-Ins-Asp) and glucose oxidase (GOx). This system uses BPmoc-Ins-Asp as a prodrug that remains inactive until activated by hydrogen peroxide (HO), generated through GOx-mediated glucose oxidation. The BPmoc group undergoes a self-immolative reaction in response to HO, decomposing into boric acid, -quinone methide, and CO, thereby restoring the amino group to its original state. High-performance liquid chromatography (HPLC) confirmed the conversion of BPmoc-Ins-Asp into active Ins-Asp in the presence of GOx and glucose. Cell-based assays demonstrated that BPmoc-Ins-Asp effectively masks insulin activity until activation. Once activated, the released Ins-Asp promoted glucose transporter 4 (GLUT4) translocation, mimicking the physiological effects of insulin. studies further validated the system's glucose responsiveness, demonstrating glucose-lowering effects specifically under hyperglycaemic conditions, with no effect during normoglycaemic states. Unlike gel- or particle-based systems, this fully dissolved liquid formulation enables the use of thin needles for self-administration, simplifies manufacturing, and ensures consistent production quality, making it particularly suitable for clinical applications. These advantages underscore its potential for precise glucose control while minimizing the risk of hypoglycaemia.

摘要

在糖尿病的各种治疗方案中,胰岛素治疗仍然是一种重要的方法,但它不可避免地存在低血糖风险,尤其是由于剂量错误或意外的血糖波动。为应对这一挑战,基于血糖水平释放胰岛素的葡萄糖响应性胰岛素递送系统已成为一种有前景的解决方案。在本研究中,我们使用硼苯基甲氧基羰基修饰的门冬胰岛素(BPmoc-Ins-Asp)和葡萄糖氧化酶(GOx)开发了一种完全溶解的葡萄糖响应性胰岛素递送系统。该系统使用BPmoc-Ins-Asp作为前药,在通过GOx介导的葡萄糖氧化产生的过氧化氢(HO)激活之前保持无活性。BPmoc基团响应HO发生自毁反应,分解为硼酸、醌甲基化物和CO,从而使氨基恢复到原始状态。高效液相色谱(HPLC)证实了在GOx和葡萄糖存在的情况下BPmoc-Ins-Asp转化为活性Ins-Asp。基于细胞的实验表明,BPmoc-Ins-Asp在激活前有效地掩盖了胰岛素活性。一旦激活,释放的Ins-Asp促进葡萄糖转运蛋白4(GLUT4)易位,模拟胰岛素的生理作用。进一步的研究验证了该系统的葡萄糖响应性,证明其在高血糖条件下具有降糖作用,而在正常血糖状态下无作用。与基于凝胶或颗粒的系统不同,这种完全溶解的液体制剂能够使用细针进行自我给药,简化了制造过程,并确保了一致的生产质量,使其特别适合临床应用。这些优点突出了其在精确控制血糖同时将低血糖风险降至最低方面的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c5b/12358946/bf6650974e58/d5sc02817e-s1.jpg

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