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一种可重构的促血管生成水凝胶贴片,实现微创给药。

A Reconfigurable Proangiogenic Hydrogel Patch Enabling Minimally Invasive Drug Delivery.

作者信息

Baek Kwanghyun, Park Junggeon, Kim Eunmi, Miller Ryan, Ballance William, Seo Yongbeom, Hong Yu-Tong, Jeong Jaehyun, Kong Hyunjoon

机构信息

Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.

Department of Chemical and Biomolecular Engineering, Institute of Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 4;16(35):46159-46166. doi: 10.1021/acsami.4c10688. Epub 2024 Aug 21.

Abstract

Hydrogel is widely used for the sustained delivery of bioactive molecules that can treat various injuries, diseases, and tissue defects. However, inserting hydrogel implants without disrupting their functionality and microstructure often requires a large incision, leading to potential complications, such as infection, scarring, and pain. The gel implant is often manually rolled and inserted through a catheter for a minimally invasive delivery. However, success heavily depends on the user's skills, which can inadvertently damage the implant. To address this issue, we developed a reconfigurable hydrogel patch that can self-fold into a small tube and unfold spontaneously after implantation through a catheter. The hydrogel path was assembled by layering a drug-releasing poly(ethylene glycol) diacrylate (PEGDA) hydrogel sheet onto a PEGDA and polyethylenimine (PEI) hydrogel sheet, which rapidly swells and degrades homogeneously at controlled rates. The dynamics of the self-folding and unfolding process could be controlled by differences in the expansion ratio and elastic modulus between the two gel layers according to a mathematical model that closely matched experimental results. The unfolding process triggered a sustained release of the protein cargo. Specifically, the reconfigurable gel loaded with angiopoietin 1 significantly enhanced neovascularization, nearly doubling the vascular density compared to the control group following implantation through a tube with 15% smaller diameter than the original shape of the gel patch. This gel biopatch will be broadly useful for the minimally invasive delivery of a wide array of therapeutic molecules, potentially enhancing therapeutic outcomes.

摘要

水凝胶被广泛用于生物活性分子的持续递送,这些生物活性分子可治疗各种损伤、疾病和组织缺损。然而,在不破坏其功能和微观结构的情况下插入水凝胶植入物通常需要大切口,这会导致潜在的并发症,如感染、瘢痕形成和疼痛。凝胶植入物通常是手动卷绕并通过导管插入以实现微创递送。然而,成功与否很大程度上取决于使用者的技能,这可能会无意中损坏植入物。为了解决这个问题,我们开发了一种可重构水凝胶贴片,它可以自折叠成小管,并在通过导管植入后自发展开。该水凝胶贴片是通过将药物释放聚(乙二醇)二丙烯酸酯(PEGDA)水凝胶片层叠在PEGDA和聚乙烯亚胺(PEI)水凝胶片上组装而成,后者以可控速率快速均匀地膨胀和降解。根据一个与实验结果紧密匹配的数学模型,自折叠和展开过程的动力学可以通过两个凝胶层之间膨胀率和弹性模量的差异来控制。展开过程触发了蛋白质载药的持续释放。具体而言,装载血管生成素1的可重构凝胶显著增强了新血管形成,与通过直径比凝胶贴片原始形状小15%的管子植入后的对照组相比,血管密度几乎增加了一倍。这种凝胶生物贴片对于多种治疗分子的微创递送将具有广泛的用途,可能会提高治疗效果。

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本文引用的文献

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Orchestral actions of angiopoietin-1 in vascular regeneration.血管生成素-1 在血管再生中的交响乐作用。
Trends Mol Med. 2013 Jan;19(1):31-9. doi: 10.1016/j.molmed.2012.10.010. Epub 2012 Nov 23.

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