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利用器官芯片技术和多组学分析研究化学战剂暴露影响的新方法。

A novel approach to interrogating the effects of chemical warfare agent exposure using organ-on-a-chip technology and multiomic analysis.

机构信息

U.S. Army Combat Capabilities Development Command (DEVCOM) Chemical Biological Center (CBC), Gunpowder, MD, United States of America.

Oak Ridge Institute for Science and Education (ORISE), Oak Ridge, TN, United States of America.

出版信息

PLoS One. 2023 Feb 13;18(2):e0280883. doi: 10.1371/journal.pone.0280883. eCollection 2023.

Abstract

Organ-on-a-chip platforms are utilized in global bioanalytical and toxicological studies as a way to reduce materials and increase throughput as compared to in vivo based experiments. These platforms bridge the infrastructure and regulatory gaps between in vivo animal work and human systems, with models that exemplify active biological pathways. In conjunction with the advent of increased capabilities associated with next generation sequencing and mass spectrometry based '-omic' technologies, organ-on-a-chip platforms provide an excellent opportunity to investigate the global changes at multiple biological levels, including the transcriptome, proteome and metabolome. When investigated concurrently, a complete profile of cellular and regulatory perturbations can be characterized following treatment with specific agonists. In this study, global effects were observed and analyzed following liver chip exposure to the chemical warfare agent, VX. Even though the primary mechanism of action of VX (i.e. acetylcholinesterase inhibition) is well characterized, recent in vivo studies suggest additional protein binding partners that are implicated in metabolism and cellular energetic pathways. In addition, secondary toxicity associated with peripheral organ systems, especially in human tissues, is not well defined. Our results demonstrate the potential of utilizing an organ-on-a-chip platform as a surrogate system to traditional in vivo studies. This is realized by specifically indicating significant dysregulation of several cellular processes in response to VX exposure including but not limited to amino acid synthesis, drug metabolism, and energetics pathways.

摘要

器官芯片平台被用于全球生物分析和毒理学研究,作为一种与基于体内的实验相比减少材料和提高通量的方法。这些平台弥合了体内动物实验和人类系统之间的基础设施和监管差距,其模型体现了活跃的生物途径。随着下一代测序和基于质谱的“组学”技术相关能力的提高,器官芯片平台提供了一个极好的机会,可以在多个生物学水平上研究全局变化,包括转录组、蛋白质组和代谢组。当同时进行研究时,可以在使用特定激动剂处理后,对细胞和调节扰动的完整概况进行特征描述。在这项研究中,观察并分析了肝脏芯片暴露于化学战剂 VX 后的全局效应。尽管 VX 的主要作用机制(即乙酰胆碱酯酶抑制)已得到很好的描述,但最近的体内研究表明,存在与代谢和细胞能量途径相关的额外蛋白质结合伴侣。此外,与外周器官系统相关的继发性毒性,特别是在人体组织中,尚未得到很好的定义。我们的研究结果表明,利用器官芯片平台作为传统体内研究的替代系统具有潜力。这是通过特别表明在 VX 暴露下,几个细胞过程出现显著失调来实现的,包括但不限于氨基酸合成、药物代谢和能量途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ace/9925079/00398de512db/pone.0280883.g001.jpg

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