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Thiol-norbornene photo-click hydrogels for tissue engineering applications.

机译:硫醇-降冰片烯光点击水凝胶,用于组织工程应用。

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摘要

Thiol-norbornene (thiol-ene) photo-click hydrogels have emerged as a diverse material system for tissue engineering applications. These hydrogels are cross-linked through light mediated orthogonal reactions between multi-functional norbornene-modified macromers (e.g., poly(ethylene glycol), hyaluronic acid, gelatin) and sulfhydryl-containing linkers (e.g., dithiothreitol, PEG-dithiol, bis-cysteine peptides) using low concentration of photoinitiator. The gelation of thiol-norbornene hydrogels can be initiated by long-wave UV light or visible light without additional co-initiator or co-monomer. The cross-linking and degradation behaviors of thiol-norbornene hydrogels are controlled through material selections, whereas the biophysical and biochemical properties of the gels are easily and independently tuned owing to the orthogonal reactivity between norbornene and thiol moieties. Uniquely, the cross-linking of step-growth thiol-norbornene hydrogels is not oxygen-inhibited, therefore the gelation is much faster and highly cytocompatible compared with chain-growth polymerized hydrogels using similar gelation conditions. These hydrogels have been prepared as tunable substrates for 2D cell culture, as microgels or bulk gels for affinity-based or protease-sensitive drug delivery, and as scaffolds for 3D cell culture. Reports from different laboratories have demonstrated the broad utility of thiol-norbornene hydrogels in tissue engineering and regenerative medicine applications, including valvular and vascular tissue engineering, liver and pancreas-related tissue engineering, neural regeneration, musculoskeletal (bone and cartilage) tissue regeneration, stem cell culture and differentiation, as well as cancer cell biology. This article provides an up-to-date overview on thiol-norbornene hydrogel cross-linking and degradation mechanisms, tunable material properties, as well as the use of thiol-norbornene hydrogels in drug delivery and tissue engineering applications.
机译:硫醇-降冰片烯(硫醇-烯)光点击水凝胶已成为组织工程应用中的多种材料系统。这些水凝胶通过多功能降冰片烯修饰的大分子单体(例如,聚乙二醇,透明质酸,明胶)和含巯基的连接体(例如,二硫苏糖醇,PEG-二硫醇,双半胱氨酸)之间的光介导的正交反应进行交联。肽)使用低浓度的光引发剂。硫醇-降冰片烯水凝胶的凝胶化可通过长波紫外光或可见光来引发,而无需另外的共引发剂或共聚单体。硫醇-降冰片烯水凝胶的交联和降解行为通过材料选择来控制,而凝胶的生物物理和生化特性由于降冰片烯与硫醇部分之间的正交反应性而容易且独立地调节。独特的是,逐步生长的巯基降冰片烯水凝胶的交联不受氧的抑制,因此,与使用类似凝胶条件的链增长聚合水凝胶相比,凝胶化要快得多且具有高度的细胞相容性。这些水凝胶已制备为2D细胞培养的可调底物,微凝胶或块状凝胶(用于基于亲和力或蛋白酶敏感的药物递送)以及3D细胞培养的支架。来自不同实验室的报告表明,巯基降冰片烯水凝胶在组织工程和再生医学应用中具有广泛的用途,包括瓣膜和血管组织工程,肝脏和胰腺相关的组织工程,神经再生,肌肉骨骼(骨骼和软骨)组织再生,干细胞培养和分化以及癌细胞生物学。本文提供了有关硫醇-降冰片烯水凝胶的交联和降解机理,可调节的材料特性以及硫醇-降冰片烯水凝胶在药物递送和组织工程应用中的用途的最新概述。

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