定制的三维琼脂糖孔与人体皮肤等效物集成,用于增强皮肤穿透性评估。

IF 5 3区 化学 Q1 POLYMER SCIENCE
Gels Pub Date : 2024-10-24 DOI:10.3390/gels10110691
Chaewon Woo, Jina Byun, Sung Gyu Shin, Heeseon Yoo, Sungwoo Cho, Donghun Lee, Taezoon Park, Jae Hyun Jeong
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引用次数: 0

摘要

我们开发了一种量身定制的三维琼脂糖孔系统,该系统集成了重建的人体皮肤等效物,可加强皮肤渗透评估。该系统通过在琼脂糖孔内缠结胶原纤维,解决了传统透孔重建中常见的局限性,如真皮层收缩和横向扩散受限。我们评估了三种肽(含或不含皮肤穿透肽(SPP)序列)与腺苷(一种已知的抗皱剂)的穿透行为。尽管一种 SPP 的分子量约为腺苷的四倍,但其动力学常数却相似,分别约为 39 和 34。此外,这种活体皮肤等效系统不仅能评估腺苷的渗透性,还能证明其生物效应,与对照组相比,腺苷能显著促进胶原蛋白合成约 23%。总之,这种新颖的策略具有定制三维琼脂糖孔和推进高性能凝胶开发的潜力,使其成为组织工程、医学科学、再生医学和化妆品领域的一种前景广阔的应用方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tailored 3D Agarose-Well Integrated with Human Skin Equivalents for Enhanced Skin Penetration Assessment.

We developed a tailored 3D Agarose-well system integrated with reconstructed human skin equivalents to enhance skin penetration assessments. This system addresses common limitations in traditional trans-well reconstructions, such as dermal layer contraction and limited lateral diffusion, by entangling collagen fibrils within the Agarose-well. We evaluated the penetration behavior of three peptides, with and without skin-penetrating peptide (SPP) sequences, alongside adenosine, a known anti-wrinkle agent. Despite a SPP having a molecular weight approximately four times greater than that of adenosine, its kinetic constant was similar, with values of about 39 and 34, respectively. Moreover, this living skin equivalent system not only allowed for the evaluation of adenosine penetration, but also demonstrated its biological effects, with adenosine significantly enhancing procollagen synthesis by approximately 23% compared to the control. Overall, this novel strategy holds the potential for tailoring 3D Agarose-wells and advancing high-performance gel development, making it a promising approach for applications in tissue engineering, medical science, regenerative medicine, and cosmetics.

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来源期刊
Gels
Gels POLYMER SCIENCE-
CiteScore
4.70
自引率
19.60%
发文量
707
审稿时长
11 weeks
期刊介绍: The journal Gels (ISSN 2310-2861) is an international, open access journal on physical (supramolecular) and chemical gel-based materials. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the maximum length of the papers, and full experimental details must be provided so that the results can be reproduced. Short communications, full research papers and review papers are accepted formats for the preparation of the manuscripts. Gels aims to serve as a reference journal with a focus on gel materials for researchers working in both academia and industry. Therefore, papers demonstrating practical applications of these materials are particularly welcome. Occasionally, invited contributions (i.e., original research and review articles) on emerging issues and high-tech applications of gels are published as special issues.
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