Injectable Dual Fenton/Enzymatically Cross-Linked Double-Network Hydrogels Based on Acrylic/Phenolic Polymers with Highly Reinforced and Tunable Mechanical Properties

IF 4.7 Q2 MATERIALS SCIENCE, BIOMATERIALS
Dong Hwan Oh, Phuong Le Thi and Ki Dong Park*, 
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引用次数: 0

Abstract

Injectable hydrogels have been extensively used as promising therapeutic scaffolds for a wide range of biomedical applications, such as tissue regeneration and drug delivery. However, their low fracture toughness and brittleness often limit their scope of application. Double-network (DN) hydrogel, which is composed of independently cross-linked rigid and ductile polymer networks, has been proposed as an alternative technique to compensate for the weak mechanical properties of hydrogels. Nevertheless, some challenges still remain, such as the complicated and time-consuming process for DN formation, and the difficulty in controlling the mechanical properties of DN hydrogels. In this study, we introduce a simple, rapid, and controllable method to prepare in situ cross-linkable injectable DN hydrogels composed of acrylamide (AAm) and 4-arm–PPO-PEO-tyramine (TTA) via dual Fenton- and enzyme-mediated reactions. By varying the concentration of Fenton’s reagent, the DN hydrogels were rapidly formed with controllable gelation rate. Importantly, the DN hydrogels showed a 13-fold increase in compressive strength and a 14-fold increase in tensile strength, compared to the single network hydrogels. The mechanical properties, elasticity, and plasticity of DN hydrogels could also be modulated by simply varying the preparation conditions, including the cross-linking density and reagent concentrations. At low cross-linker concentration (<0.05 wt %), the plastic DN hydrogel stretched to over 6,500%, whereas high cross-linker concentration (≥0.05 wt %) induced fully elastic hydrogels, without hysteresis. Besides, DN hydrogels were endowed with rapid self-recovery and highly enhanced adhesion, which can be further applied to wearable devices. Moreover, human dermal fibroblasts treated with DN hydrogels retained viability, demonstrating the biocompatibility of the cross-linking system. Therefore, we expect that the dual Fenton-/enzyme-mediated cross-linkable DN hydrogels offer great potential as advanced biomaterials applied for hard tissue regeneration and replacement.

Abstract Image

基于丙烯酸/酚醛聚合物的可注射双芬顿/酶交联双网水凝胶,具有高度增强和可调节的机械特性
可注射的水凝胶已被广泛用作有前景的治疗支架,用于组织再生和药物输送等多种生物医学应用。然而,它们的低断裂韧性和脆性往往限制了其应用范围。双网络(DN)水凝胶由独立交联的刚性和韧性聚合物网络组成,已被提出作为一种替代技术来弥补水凝胶较弱的机械性能。然而,目前仍存在一些挑战,如 DN 的形成过程复杂耗时,DN 水凝胶的机械性能难以控制等。在本研究中,我们介绍了一种简单、快速、可控的方法,通过芬顿和酶介导的双重反应制备由丙烯酰胺(AAm)和 4-臂-PPO-PEO-酪胺(TTA)组成的原位交联可注射 DN 水凝胶。通过改变 Fenton 试剂的浓度,DN 水凝胶迅速形成,凝胶速率可控。重要的是,与单一网络水凝胶相比,DN 水凝胶的抗压强度提高了 13 倍,抗拉强度提高了 14 倍。只需改变制备条件,包括交联密度和试剂浓度,就能调节 DN 水凝胶的机械性能、弹性和可塑性。在低交联剂浓度(0.05 wt %)条件下,可塑性 DN 水凝胶的拉伸度超过 6500%,而高交联剂浓度(≥0.05 wt %)条件下,DN 水凝胶具有完全弹性,且无滞后现象。此外,DN 水凝胶还具有快速的自我恢复能力和极强的粘附性,可进一步应用于可穿戴设备。此外,用 DN 水凝胶处理的人类真皮成纤维细胞仍能保持活力,这证明了交联系统的生物相容性。因此,我们预计芬顿/酶介导的双交联 DN 水凝胶有望成为硬组织再生和替代的先进生物材料。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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