peg基巯基降冰片烯水凝胶的水解降解使多模态控制释放成为可能。

IF 5.7
Nathan H Dimmitt, Chien-Chi Lin
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引用次数: 0

摘要

聚乙二醇(PEG)水凝胶通过正交巯基-降冰片烯键化学交联,由于其快速的交联动力学和优异的生物相容性,已成为组织工程和药物输送应用的理想平台。降冰片烯功能化聚乙二醇(PEGNB)通常是通过5-降冰片烯-2-羧酸与端羟基聚乙二醇的Steglich酯化反应合成的。当与含硫醇的大分子交联时,由于连接PEG主链和NB部分的酯键的水解,PEGNB水凝胶经历缓慢的水解降解。在之前的工作中,我们用无味的碳酸酐(CA)取代了刺激性和恶心的5-降冰片烯-2-羧酸,合成了peg -降冰片烯-羧酸酯(PEGNBCA),这是一种新的大分子,可以很容易地光交联成巯基降冰片烯水凝胶,水解降解速度比PEGNB更快。在这篇文章中,我们采用了模块化的方法来调整PEGNBCA水凝胶在几天到几个月的水解降解。我们首先证明了PEGNBCA水凝胶的不同交联使用光聚合或酶交联。我们表征了这些水凝胶在不同溶液pH值和温度下的水解降解。通过调节交联剂功能和快速降解PEGNBCA与慢速降解PEGNB的比例,实现了PEGNBCA水凝胶从2天到3个月的可调节水解降解。最后,我们设计了高度可调的PEGNBCA水凝胶,具有不同的网孔大小、降解率和可降解连接物的共价系结,以提供模型药物的长期控制释放。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrolytic degradation of PEG-based thiol-norbornene hydrogels enables multi-modal controlled release.

Poly(ethylene glycol) (PEG) hydrogels crosslinked by orthogonal thiol-norbornene click chemistry have emerged as an ideal platform for tissue engineering and drug delivery applications due to their rapid crosslinking kinetics and excellent biocompatibility. Norbornene-functionalized PEG (PEGNB) is routinely synthesized through the Steglich esterification of 5-norbornene-2-carboxylic acid with hydroxyl-terminated PEG. When crosslinked with thiol-bearing macromers, PEGNB hydrogels undergo slow hydrolytic degradation due to hydrolysis of ester bonds connecting a PEG backbone and a NB moiety. In prior work, we replaced the pungent and nauseous 5-norbornene-2-carboxylic acid with odorless carbic anhydride (CA) for synthesizing PEG-norbornene-carboxylate (PEGNBCA), a new macromer that could be readily photo-crosslinked into thiol-norbornene hydrogels with faster hydrolytic degradation than the PEGNB counterparts. In this contribution, we employed a modular approach to tune the hydrolytic degradation of PEGNBCA hydrogels over days to months. We first demonstrated the diverse crosslinking of PEGNBCA hydrogels using either photopolymerization or enzymatic crosslinking. We characterized the hydrolytic degradation of these hydrogels under different solution pH values and temperatures. Via adjusting crosslinker functionality and the ratio of fast-degrading PEGNBCA to slow-degrading PEGNB, tunable hydrolytic degradation of PEGNBCA hydrogels was achieved from under 2 days to over 3 months. Finally, we designed the highly tunable PEGNBCA hydrogels with varying mesh sizes, degradation rates, and covalent tethering of degradable linkers to afford long-term controlled release of model drugs.

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来源期刊
Journal of materials chemistry. B
Journal of materials chemistry. B 化学科学, 工程与材料, 生命科学, 分析化学, 高分子组装与超分子结构, 高分子科学, 免疫生物学, 免疫学, 生化分析及生物传感, 组织工程学, 生物力学与组织工程学, 资源循环科学, 冶金与矿业, 生物医用高分子材料, 有机高分子材料, 金属材料的制备科学与跨学科应用基础, 金属材料, 样品前处理方法与技术, 有机分子功能材料化学, 有机化学
CiteScore
12.00
自引率
0.00%
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0
审稿时长
1 months
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