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一种可编程抗炎纳米支架(PAIN)作为理解脑损伤反应的 3D 工具。

A Programmed Anti-Inflammatory Nanoscaffold (PAIN) as a 3D Tool to Understand the Brain Injury Response.

机构信息

Laboratory of Advanced Biomaterials, Research School of Engineering, The Australian National University, Canberra, 2601, Australia.

Florey Institute of Neuroscience and Mental Health, University of Melbourne, Parkville, 3052, Australia.

出版信息

Adv Mater. 2018 Dec;30(50):e1805209. doi: 10.1002/adma.201805209. Epub 2018 Oct 4.

Abstract

Immunology is the next frontier of nano/biomaterial science research, with the immune system determining the degree of tissue repair. However, the complexity of the inflammatory response represents a significant challenge that is essential to understand for the development of future therapies. Cell-instructive 3D culture environments are critical to improve our understanding of the link between the behavior and morphology of inflammatory cells and to remodel their response to injury. This study has taken two recent high-profile innovations-functional peptide-based hydrogels, and the inclusion of anti-inflammatory agents via coassembly-to make a programmed anti-inflammatory nanoscaffold (PAIN) with unusual and valuable properties that allows tissue-independent switching of the inflammatory cascade. Here, extraordinary durability of the anti-inflammatory agent allows, for the first time, the development of a 3D culture system that maintains the growth and cytoskeletal reorganization of brain tissue, while also facilitating the trophic behavior of brain cells for 22 d in vitro. Notably, this behavior was confirmed within an active scar site due to the unprecedented resilience to the presence of inflammatory cells and enzymes in the brain. Efficacy of the culture system is demonstrated via novel insights about inflammatory cell behavior, which would be impossible to obtain via in vivo experimentation.

摘要

免疫学是纳米/生物材料科学研究的下一个前沿领域,免疫系统决定了组织修复的程度。然而,炎症反应的复杂性是未来治疗发展的关键,需要深入理解。细胞指导性的 3D 培养环境对于改善我们对炎症细胞行为和形态之间的联系的理解至关重要,并且可以重塑它们对损伤的反应。本研究采用了最近两项备受瞩目的创新成果——基于功能肽的水凝胶和通过共组装加入抗炎剂——来制造一种具有独特而有价值特性的可编程抗炎纳米支架(PAIN),这种支架可以实现炎症级联的组织独立性切换。在这里,抗炎剂的非凡耐久性首次允许开发一种 3D 培养系统,该系统可以维持脑组织的生长和细胞骨架重组,同时促进脑细胞的营养行为,在体外持续 22 天。值得注意的是,由于对脑内炎症细胞和酶的存在具有前所未有的弹性,这种行为在活性瘢痕部位得到了证实。通过对炎症细胞行为的新见解证明了培养系统的功效,这是通过体内实验无法获得的。

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