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机械超材料的兴起:用于皮肤伤口愈合的负泊松比结构

The rise of mechanical metamaterials: Auxetic constructs for skin wound healing.

作者信息

Lecina-Tejero Óscar, Pérez María Ángeles, García-Gareta Elena, Borau Carlos

机构信息

Multiscale in Mechanical and Biological Engineering, Aragon Institute of Engineering Research (I3A), University of Zaragoza, Zaragoza, Aragon, Spain.

Aragon Institute for Health Research (IIS Aragon), Miguel Servet University Hospital, 50009 Zaragoza, Aragon, Spain.

出版信息

J Tissue Eng. 2023 Jun 13;14:20417314231177838. doi: 10.1177/20417314231177838. eCollection 2023 Jan-Dec.

Abstract

Auxetic materials are known for their unique ability to expand/contract in multiple directions when stretched/compressed. In other words, they exhibit a negative Poisson's ratio, which is usually positive for most of materials. This behavior appears in some biological tissues such as human skin, where it promotes wound healing by providing an enhanced mechanical support and facilitating cell migration. Skin tissue engineering has been a growing research topic in recent years, largely thanks to the rapid development of 3D printing techniques and technologies. The combination of computational studies with rapid manufacturing and tailored designs presents a huge potential for the future of personalized medicine. Overall, this review article provides a comprehensive overview of the current state of research on auxetic constructs for skin healing applications, highlighting the potential of auxetics as a promising treatment option for skin wounds. The article also identifies gaps in the current knowledge and suggests areas for future research. In particular, we discuss the designs, materials, manufacturing techniques, and also the computational and experimental studies on this topic.

摘要

拉胀材料以其在拉伸/压缩时能够在多个方向上膨胀/收缩的独特能力而闻名。换句话说,它们表现出负泊松比,而大多数材料的泊松比通常是正的。这种行为出现在一些生物组织中,如人体皮肤,在那里它通过提供增强的机械支撑和促进细胞迁移来促进伤口愈合。近年来,皮肤组织工程一直是一个不断发展的研究课题,这在很大程度上要归功于3D打印技术的快速发展。计算研究与快速制造和定制设计的结合为个性化医学的未来带来了巨大潜力。总的来说,这篇综述文章全面概述了用于皮肤愈合应用的拉胀结构的当前研究状况,强调了拉胀材料作为皮肤伤口有前景的治疗选择的潜力。文章还指出了当前知识中的差距,并提出了未来研究的领域。特别是,我们讨论了关于这个主题的设计、材料、制造技术,以及计算和实验研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b3f/10285607/4c1c8a64c438/10.1177_20417314231177838-fig1.jpg

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