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受生物启发的水凝胶作为生命科学应用的平台:挑战与机遇

Bioinspired Hydrogels as Platforms for Life-Science Applications: Challenges and Opportunities.

作者信息

Bercea Maria

机构信息

"Petru Poni" Institute of Macromolecular Chemistry, 700487 Iasi, Romania.

出版信息

Polymers (Basel). 2022 Jun 11;14(12):2365. doi: 10.3390/polym14122365.

Abstract

Hydrogels, as interconnected networks (polymer mesh; physically, chemically, or dynamic crosslinked networks) incorporating a high amount of water, present structural characteristics similar to soft natural tissue. They enable the diffusion of different molecules (ions, drugs, and grow factors) and have the ability to take over the action of external factors. Their nature provides a wide variety of raw materials and inspiration for functional soft matter obtained by complex mechanisms and hierarchical self-assembly. Over the last decade, many studies focused on developing innovative and high-performance materials, with new or improved functions, by mimicking biological structures at different length scales. Hydrogels with natural or synthetic origin can be engineered as bulk materials, micro- or nanoparticles, patches, membranes, supramolecular pathways, bio-inks, etc. The specific features of hydrogels make them suitable for a wide variety of applications, including tissue engineering scaffolds (repair/regeneration), wound healing, drug delivery carriers, bio-inks, soft robotics, sensors, actuators, catalysis, food safety, and hygiene products. This review is focused on recent advances in the field of bioinspired hydrogels that can serve as platforms for life-science applications. A brief outlook on the actual trends and future directions is also presented.

摘要

水凝胶作为包含大量水的相互连接的网络(聚合物网络;物理、化学或动态交联网络),具有与柔软天然组织相似的结构特征。它们能够使不同分子(离子、药物和生长因子)扩散,并具有接收外部因素作用的能力。它们的性质为通过复杂机制和分级自组装获得的功能性软物质提供了各种各样的原材料和灵感。在过去十年中,许多研究致力于通过在不同长度尺度上模仿生物结构来开发具有新功能或改进功能的创新高性能材料。天然或合成来源的水凝胶可以被设计成块状材料、微米或纳米颗粒、贴片、膜、超分子途径、生物墨水等。水凝胶的特殊特性使其适用于广泛的应用,包括组织工程支架(修复/再生)、伤口愈合、药物递送载体、生物墨水、软机器人、传感器、致动器、催化、食品安全和卫生产品。本综述聚焦于可作为生命科学应用平台的仿生水凝胶领域的最新进展。还对当前趋势和未来方向进行了简要展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5805/9229923/4479f4a92999/polymers-14-02365-g001.jpg

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