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在基于三维胶原蛋白的水凝胶癌细胞培养物中模拟气体等离子体与组织的相互作用。

Modeling Gas Plasma-Tissue Interactions in 3D Collagen-Based Hydrogel Cancer Cell Cultures.

作者信息

Miebach Lea, Hagge Marten, Bekeschus Sander

机构信息

ZIK plasmatis, Leibniz Institute for Plasma Science and Technology (INP), Felix-Hausdorff-Str. 2, 17489 Greifswald, Germany.

Department of General, Visceral, Thoracic, and Vascular Surgery, Greifswald University Medical Center, Ferdinand-Sauerbruch-Str., 17475 Greifswald, Germany.

出版信息

Bioengineering (Basel). 2023 Mar 17;10(3):367. doi: 10.3390/bioengineering10030367.

Abstract

Gas plasma jet technology was recently identified as a potential adjuvant in the fight against cancer. Here, the partial ionization of gas yields the local formation of an exceptional variety of highly reactive oxygen (ROS) and nitrogen (RNS) species, which are considered the main actors of plasma-induced antitumor effects. Yet, fundamental knowledge in preclinical plasma research relies on the predominant use of two-dimensional cell culture systems, despite causing significant shifts in redox chemistries that largely limit translational relevance. So far, the intricacy of studying complex plasma-tissue interactions causes substantial knowledge gaps concerning the key mechanisms and therapeutical limitations of plasma treatment in a living organism. Identifying physiologically relevant yet simplified tissue models is vital to address such questions. In our study, a side-by-side comparison of conventional and pre-established hydrogel models emphasized this discrepancy, revealing a marked difference in plasma-induced toxicity related to species distribution dynamics. Chemically embedded, fluorescent reporters were further used to characterize reactive species' fingerprints in hydrogels compared to liquids. In addition, a thirteen cell-line screening outlined the widespread applicability of the approach while indicating the need to optimize growth conditions dependent on the cell line investigated. Overall, our study presents important implications for the implementation of clinically relevant tissue culture models in preclinical plasma medicine in the future.

摘要

气体等离子体射流技术最近被认为是对抗癌症的一种潜在辅助手段。在这里,气体的部分电离会在局部产生种类繁多的高活性氧(ROS)和氮(RNS)物质,它们被认为是等离子体诱导抗肿瘤效应的主要作用因素。然而,临床前等离子体研究的基础知识主要依赖于二维细胞培养系统的使用,尽管这会导致氧化还原化学发生显著变化,从而在很大程度上限制了转化相关性。到目前为止,研究复杂的等离子体 - 组织相互作用的复杂性导致了关于等离子体治疗在生物体中的关键机制和治疗局限性方面存在重大知识空白。识别生理相关但简化的组织模型对于解决此类问题至关重要。在我们的研究中,对传统水凝胶模型和预先建立的水凝胶模型进行的并排比较突出了这种差异,揭示了与物质分布动态相关的等离子体诱导毒性方面的显著差异。与液体相比,化学嵌入的荧光报告分子进一步用于表征水凝胶中活性物质的特征。此外,一项针对13种细胞系的筛选概述了该方法的广泛适用性,同时表明需要根据所研究的细胞系优化生长条件。总体而言,我们的研究对未来临床前等离子体医学中临床相关组织培养模型的实施具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/35ef/10045726/82fc35ed8250/bioengineering-10-00367-g0A1.jpg

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