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葡萄糖响应型自调节丝素蛋白水凝胶用于控制胰岛素递释。

Glucose-Responsive Self-Regulated Injectable Silk Fibroin Hydrogel for Controlled Insulin Delivery.

机构信息

Bioorganic Chemistry Laboratory, New Chemistry Unit, and School of Advanced Materials (SAMat), Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR), Jakkur P.O., Bengaluru 560064, Karnataka, India.

出版信息

ACS Appl Mater Interfaces. 2023 Nov 1;15(43):49953-49963. doi: 10.1021/acsami.3c07060. Epub 2023 Oct 17.

Abstract

Stimuli-responsive drug delivery systems are gaining importance in personalized medicine to deliver therapeutic doses in response to disease-specific stimulation. Pancreas-mimicking glucose-responsive insulin delivery systems offer improved therapeutic outcomes in the treatment of type 1 and advanced stage of type 2 diabetic conditions. Herein, we present a glucose-responsive smart hydrogel platform based on phenylboronic acid-functionalized natural silk fibroin protein for regulated insulin delivery. The modified protein was synergistically self-assembled and cross-linked through β-sheet and phenylboronate ester formation. The dynamic nature of the bonding confers smooth injectability through the needle. The cross-linked hydrogel structures firmly hold the glucose-sensing element and insulin in its pores and contribute to long-term sensing and drug storage. Under hyperglycemic conditions, the hydrogen peroxide generated from the sensing element induces hydrogel matrix degradation by oxidative cleavage, enabling insulin release. studies in a type 1 diabetic Wistar rat model revealed that the controlled insulin release from the hydrogel restored diabetic glucose level to physiological conditions for 36 h. This work establishes the functional modification of silk fibroin into a glucose-responsive hydrogel platform for regulated and functional insulin delivery application.

摘要

刺激响应型药物输送系统在个性化医学中变得越来越重要,可根据疾病特异性刺激来输送治疗剂量。模拟胰腺的葡萄糖响应型胰岛素输送系统为治疗 1 型和 2 型糖尿病晚期提供了更好的治疗效果。在此,我们提出了一种基于苯硼酸功能化天然丝素蛋白的葡萄糖响应型智能水凝胶平台,用于调节胰岛素输送。修饰后的蛋白质通过β-折叠和苯硼酸酯形成协同自组装和交联。动态键合特性通过针具实现了顺畅的可注射性。交联水凝胶结构将葡萄糖传感元件和胰岛素牢固地固定在其孔中,并有助于长期传感和药物储存。在高血糖条件下,传感元件产生的过氧化氢通过氧化裂解诱导水凝胶基质降解,从而实现胰岛素释放。在 1 型糖尿病 Wistar 大鼠模型中的研究表明,水凝胶中胰岛素的控制释放将糖尿病患者的血糖水平恢复到生理状态 36 小时。这项工作将丝素蛋白的功能修饰成葡萄糖响应型水凝胶平台,用于调节和功能性胰岛素输送应用。

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