Advances in bioinspired polymer hydrogel systems with biomedical functionalities.

IF 7.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Science and Technology of Advanced Materials Pub Date : 2025-03-03 eCollection Date: 2025-01-01 DOI:10.1080/14686996.2025.2469490
Kazuhiko Ishihara
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Abstract

The concepts of bioinspiration and biomimetics that seek to elucidate the morphology and functions of living organisms and specific reactions within cells, and extraction of important elements from these concepts to design functional molecules and high-performance materials are becoming more and more widespread. This review summarizes the progress in research on hydrogels inspired by the stimuli-responsiveness of cell functions. For application to a self-regulated release system of insulin to regulate blood glucose levels, various polymer hydrogels have been designed using bioactive molecules such as enzymes and lectins to sense glucose concentrations. In addition, as a fully synthetic glucose-responsive hydrogel, a complex of a polymer having phenylboronic acid groups that form reversible bonds with sugars and a multivalent hydroxyl group polymer has been researched. This reversible hydrogel system can be further developed to act as an extracellular matrix in which cells can preferably reside. The proliferation and differentiation of encapsulated cells in hydrogels are controlled by reversible changes in the hydrogel properties in response to sugar. Another advantage is that cells can be safely retrieved by adding sugar to dissociate the hydrogel. These bioinspired polymer hydrogels can serve as important materials for the development of new medical technologies, such as the controlled release of bioactive molecules, regulated cell culture environmental matrices, and applications in layered and three-dimensional cell culture systems to create organized tissue structures.

具有生物医学功能的生物启发聚合物水凝胶体系的研究进展。
生物灵感和仿生学的概念越来越广泛,这些概念旨在阐明生物体的形态和功能以及细胞内的特定反应,并从这些概念中提取重要元素来设计功能分子和高性能材料。本文综述了受细胞功能刺激反应性启发的水凝胶的研究进展。为了应用于胰岛素的自我调节释放系统来调节血糖水平,各种聚合物水凝胶已经被设计成使用生物活性分子,如酶和凝集素来感知葡萄糖浓度。此外,作为一种完全合成的葡萄糖反应水凝胶,研究了一种具有苯硼酸基团的聚合物与糖和多价羟基聚合物形成可逆键的配合物。这种可逆的水凝胶系统可以进一步发展作为细胞外基质,其中细胞可以更好地驻留。水凝胶中被包被细胞的增殖和分化是由水凝胶特性响应糖的可逆变化控制的。另一个优点是,通过添加糖来分离水凝胶,可以安全地回收细胞。这些受生物启发的聚合物水凝胶可以作为开发新医疗技术的重要材料,例如生物活性分子的控制释放,调节细胞培养环境基质,以及在层状和三维细胞培养系统中的应用,以创建有组织的组织结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Science and Technology of Advanced Materials
Science and Technology of Advanced Materials 工程技术-材料科学:综合
CiteScore
10.60
自引率
3.60%
发文量
52
审稿时长
4.8 months
期刊介绍: Science and Technology of Advanced Materials (STAM) is a leading open access, international journal for outstanding research articles across all aspects of materials science. Our audience is the international community across the disciplines of materials science, physics, chemistry, biology as well as engineering. The journal covers a broad spectrum of topics including functional and structural materials, synthesis and processing, theoretical analyses, characterization and properties of materials. Emphasis is placed on the interdisciplinary nature of materials science and issues at the forefront of the field, such as energy and environmental issues, as well as medical and bioengineering applications. Of particular interest are research papers on the following topics: Materials informatics and materials genomics Materials for 3D printing and additive manufacturing Nanostructured/nanoscale materials and nanodevices Bio-inspired, biomedical, and biological materials; nanomedicine, and novel technologies for clinical and medical applications Materials for energy and environment, next-generation photovoltaics, and green technologies Advanced structural materials, materials for extreme conditions.
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