Electric-field assisted cascade reactions to create alginate/carboxymethyl chitosan composite hydrogels with gradient architecture and reconfigurable mechanical properties

IF 10.7 1区 化学 Q1 CHEMISTRY, APPLIED Carbohydrate Polymers Pub Date : 2024-08-12 DOI:10.1016/j.carbpol.2024.122609
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Abstract

Rational designs of polysaccharide-based hydrogels with organ-like three-dimensional architecture provide a great possibility for addressing the shortages of allograft tissues and organs. However, spatial-temporal control over structure in bulk hydrogel and acquire satisfied mechanical properties remain an intrinsic challenge to achieve. Here, we show how electric-field assisted molecular self-assembly can be coupled to a directional reaction-diffusion (RD) process to produce macroscopic hydrogel in a controllable manner. The electrical energy input was not only to generate complex molecule gradients and initiate the molecular self-assembly, but also to guide/facilitate the RD processes for the gel rapid growth via a cascade construction interaction. The hydrogel mechanical properties can be tuned and enhanced by using an interpenetrating biopolymer network and multiple ionic crosslinkers, leading to a wide-range of mechanical modulus to match with biological organs or tissues. We demonstrate diverse 3D macroscopic hydrogels can be easily prepared via field-assisted directional reaction-diffusion and specific joint interactions. The humility-triggered dissipation of functional gradients and antibacterial performance confirm that the hydrogels can serve as an optically variable soft device for wound management. Therefore, this work provides a general approach toward the rational fabrication of soft hydrogels with controlled architectures and functionality for advanced biomedical systems.

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利用电场辅助级联反应制造具有梯度结构和可重构机械特性的海藻酸盐/羧甲基壳聚糖复合水凝胶
合理设计具有器官样三维结构的多糖基水凝胶为解决异体移植组织和器官短缺问题提供了极大的可能性。然而,对大块水凝胶中的结构进行时空控制并获得满意的机械性能仍然是一个难以实现的内在挑战。在这里,我们展示了如何将电场辅助分子自组装与定向反应-扩散(RD)过程结合起来,以可控的方式生产宏观水凝胶。电能输入不仅能产生复杂的分子梯度并启动分子自组装,还能通过级联构造相互作用引导/促进 RD 过程,使凝胶快速生长。通过使用相互渗透的生物聚合物网络和多种离子交联剂,可以调整和增强水凝胶的机械性能,从而获得与生物器官或组织相匹配的各种机械模量。我们证明,通过场辅助定向反应扩散和特定的联合作用,可以轻松制备出多样化的三维宏观水凝胶。湿度触发的功能梯度消散和抗菌性能证实,水凝胶可作为光学可变软装置用于伤口管理。因此,这项研究为合理制造具有可控结构和功能的软水凝胶提供了一种通用方法,可用于先进的生物医学系统。
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来源期刊
Carbohydrate Polymers
Carbohydrate Polymers 化学-高分子科学
CiteScore
22.40
自引率
8.00%
发文量
1286
审稿时长
47 days
期刊介绍: Carbohydrate Polymers stands as a prominent journal in the glycoscience field, dedicated to exploring and harnessing the potential of polysaccharides with applications spanning bioenergy, bioplastics, biomaterials, biorefining, chemistry, drug delivery, food, health, nanotechnology, packaging, paper, pharmaceuticals, medicine, oil recovery, textiles, tissue engineering, wood, and various aspects of glycoscience. The journal emphasizes the central role of well-characterized carbohydrate polymers, highlighting their significance as the primary focus rather than a peripheral topic. Each paper must prominently feature at least one named carbohydrate polymer, evident in both citation and title, with a commitment to innovative research that advances scientific knowledge.
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