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硼酸频哪醇酯在调节葡萄糖响应性聚合物水凝胶粘弹性性质方面的新用途:对胰岛素释放动力学的影响

Repurposing pinacol esters of boronic acids for tuning viscoelastic properties of glucose-responsive polymer hydrogels: effects on insulin release kinetics.

作者信息

Ali Akbar, Nouseen Shaista, Saroj Saroj, Shegane Meenakshi, Majumder Priyankar, Puri Aarti, Rakshit Tatini, Manna Debasish, Pal Suchetan

机构信息

Department of Chemistry, Indian Institute of Technology, Bhilai, Raipur 492015, India.

Department of Chemistry, Shiv Nadar University, Greater Noida, 201314, UP, India.

出版信息

J Mater Chem B. 2022 Sep 28;10(37):7591-7599. doi: 10.1039/d2tb00603k.

Abstract

In the era of the diabetes pandemic, injectable hydrogels (HGs) capable of releasing the desired amount of insulin under hyperglycemic conditions will significantly advance smart insulin development. Several smart boronic acid-based polymer HGs release insulin under high-glucose conditions. However, the correlation of insulin release characteristics with rheological properties is not well understood yet. Herein, we report a generalized and facile fabrication strategy of a new class of glucose-responsive hydrogels by crosslinking a biocompatible polymer, poly(vinyl alcohol) with pinacol esters of bisboronic acids transesterification reactions. We show the versatility of the method by fabricating four hydrogels with diverse rheological properties. The HGs embody more than 70% water amenable for hosting insulin in the matrix. HG with high storage modulus, derived from 1,4-benzenediboronic acid bis(pinacol) ester releases ∼3 fold less insulin compared to softer HGs derived from acetylene-1,2-diyl bis(boronic acid pinacol ester) and bis[(pinacolato)boryl]methane under hyperglycemic conditions. We find that HG derived from the bis[(pinacolato)boryl]methane crosslinker exhibits superior insulin release properties due to the softness of the hydrogel matrix. We further show that the newly formulated gel is injectable without any structural change in the released insulin molecules and does not cause cytotoxicity. We believe that glucose-responsive hydrogels with tunable viscoelastic properties will pave the way for developing a variety of hydrogels with programmable insulin release properties.

摘要

在糖尿病大流行的时代,能够在高血糖条件下释放所需量胰岛素的可注射水凝胶(HG)将显著推动智能胰岛素的发展。几种基于硼酸的智能聚合物水凝胶在高血糖条件下会释放胰岛素。然而,胰岛素释放特性与流变学性质之间的相关性尚未得到很好的理解。在此,我们报告了一种通用且简便的新型葡萄糖响应性水凝胶的制备策略,即通过双硼酸频哪醇酯的酯交换反应将生物相容性聚合物聚乙烯醇交联。我们通过制备四种具有不同流变学性质的水凝胶展示了该方法的通用性。这些水凝胶含有超过70%的水,适合在基质中容纳胰岛素。与由乙炔 - 1,2 - 二基双(硼酸频哪醇酯)和双[(频哪醇硼酸酯基)]甲烷衍生的较软水凝胶相比,由1,4 - 苯二硼酸双(频哪醇)酯衍生的具有高储能模量的水凝胶在高血糖条件下释放的胰岛素减少约3倍。我们发现,由双[(频哪醇硼酸酯基)]甲烷交联剂衍生的水凝胶由于其水凝胶基质的柔软性而表现出优异的胰岛素释放性能。我们进一步表明,新配制的凝胶可注射,释放的胰岛素分子结构无任何变化,且不会引起细胞毒性。我们相信,具有可调粘弹性的葡萄糖响应性水凝胶将为开发具有可编程胰岛素释放特性的各种水凝胶铺平道路。

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