4D 水凝胶:制造策略、刺激机制和生物医学应用

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Amit Nain, Srishti Chakraborty, Nipun Jain, Saswat Choudhury, Suravi Chattopadhyay, Kaushik Chatterjee and Souvik Debnath
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引用次数: 0

摘要

形状变形水凝胶由于局部溶胀行为的不同而产生面外和面内梯度,能够模拟各向异性的组织成分,因此已成为一种前景广阔的生物材料。由于内应力分布不均匀、溶胀不对称以及同一水凝胶不同部位的收缩,会导致形状变形。本文讨论了制备形状变形水凝胶的四维(4D)制造技术(挤出印刷、动态光处理和溶剂浇注)。文章指出了单组分和双组分水凝胶系统之间的重要区别、三维构建物进行单向和双向形状变化的能力,以及复合水凝胶相对于原始水凝胶的优势。此外,还讨论了各种类型的致动器,如湿度、光、温度、pH 值和磁场,以及它们在实现理想和预定形状方面的作用。这种 4D 凝胶作为一种动态组织支架,在再生工程和药物输送应用方面显示出了非凡的潜力。综述文章最后深入探讨了如何整合压电生物聚合物和传感器,从形状转换过程中的运动中获取机械能,从而开发出自供电的生物设备。数据科学在人工智能和深度学习算法的基础上创造出富有想象力的工具的能力可以拓宽生物机器人学的领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

4D hydrogels: fabrication strategies, stimulation mechanisms, and biomedical applications

4D hydrogels: fabrication strategies, stimulation mechanisms, and biomedical applications

Shape-morphing hydrogels have emerged as a promising biomaterial due to their ability to mimic the anisotropic tissue composition by creating a gradient in local swelling behavior. In this case, shape deformations occur due to the non-uniform distribution of internal stresses, asymmetrical swelling, and shrinking of different parts of the same hydrogel. Herein, we discuss the four-dimensional (4D) fabrication techniques (extrusion-based printing, dynamic light processing, and solvent casting) employed to prepare shape-shifting hydrogels. The important distinction between mono- and dual-component hydrogel systems, the capabilities of 3D constructs to undergo uni- and bi-directional shape changes, and the advantages of composite hydrogels compared to their pristine counterparts are presented. Subsequently, various types of actuators such as moisture, light, temperature, pH, and magnetic field and their role in achieving the desired and pre-determined shapes are discussed. These 4D gels have shown remarkable potential as programmable scaffolds for tissue regeneration and drug-delivery systems. Finally, we present futuristic insights into integrating piezoelectric biopolymers and sensors to harvest mechanical energy from motions during shape transformations to develop self-powered biodevices.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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