Suppr超能文献

仿生超韧水凝胶,具有快速恢复、自修复、可注射性和细胞相容性。

Bioinspired Ultratough Hydrogel with Fast Recovery, Self-Healing, Injectability and Cytocompatibility.

机构信息

3B's Research group - Biomaterials, Biodegradables and Biomimetics - Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, University of Minho, Avepark - Parque de Ciência e Tecnologia, Zona Industrial da Gandra, Barco, Guimarães, 4805-017, Portugal.

ICVS/3B's - PT Government Associate Laboratory, University of Minho, Braga/Guimarães, Portugal.

出版信息

Adv Mater. 2017 Jul;29(28). doi: 10.1002/adma.201700759. Epub 2017 May 19.

Abstract

Inspired by the mussel byssus adhesiveness, a highly hydrated polymeric structure is designed to combine, for the first time, a set of interesting features for load-bearing purposes. These characteristics include: i) a compressive strength and stiffness in the MPa range, ii) toughness and the ability to recover it upon successive cyclic loading, iii) the ability to quickly self-heal upon rupture, iv) the possibility of administration through minimally invasive techniques, such as by injection, v) the swelling ratio being adjusted to space-filling applications, and vi) cytocompatibility. Owing to these characteristics and the mild conditions employed, the encapsulation of very unstable and sensitive cargoes is possible, highlighting their potential to researchers in the biomedical field for the repair of load-bearing soft tissues, or to be used as an encapsulation platform for a variety of biological applications such as disease models for drug screening and therapies in a more realistic mechanical environment. Moreover, given the simplicity of this methodology and the enhanced mechanical performance, this strategy can be expanded to applications in other fields, such as agriculture and electronics. As such, it is anticipated that the proposed strategy will constitute a new, versatile, and cost-effective tool to produce engineered polymeric structures for both science and technology.

摘要

受贻贝足丝黏附性的启发,设计了一种高度水合的聚合结构,首次将一组用于承载目的的有趣特性结合在一起。这些特性包括:i)具有 MPa 级别的抗压强度和刚性,ii)韧性和在连续循环加载下恢复的能力,iii)在破裂时能够快速自我修复的能力,iv)可以通过微创技术(如注射)进行管理的可能性,v)可调节的溶胀比以适用于填充空间的应用,以及 vi)细胞相容性。由于这些特性和所采用的温和条件,有可能封装非常不稳定和敏感的货物,这突显了它们在生物医学领域的研究人员在修复承重软组织方面的潜力,或者可以用作各种生物应用的封装平台,例如用于药物筛选和更真实机械环境下治疗的疾病模型。此外,鉴于这种方法的简单性和增强的机械性能,该策略可以扩展到农业和电子等其他领域的应用。因此,可以预期,所提出的策略将成为用于科学和技术的工程聚合结构的一种新的、通用且具有成本效益的工具。

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