Institute of Applied Synthetic Chemistry and Institute of Chemical Technologies and Analytics, Faculty of Technical Chemistry, Vienna University of Technology, Getreidemarkt 9/163-164, 1060 Vienna, Austria.
Austrian Cluster for Tissue Regeneration, Vienna, Austria.
Lab Chip. 2021 Oct 26;21(21):4237-4248. doi: 10.1039/d1lc00528f.
Translation of advanced cell-based assays exhibiting a higher degree of automation, miniaturization, and integration of complementary sensing functions is mainly limited by the development of industrial-relevant prototypes that can be readily produced in larger volumes. Despite the increasing number of academic publications in recent years, the manufacturability of these microfluidic cell cultures systems is largely ignored, thus severely restricting their implementation in routine toxicological applications. We have developed a dual-sensor integrated microfluidic cell analysis platform using industrial specifications, materials, and fabrication methods to conduct risk assessment studies of engineered nanoparticles to overcome this academic-industrial gap. Non-invasive and time-resolved monitoring of cellular oxygen uptake and metabolic activity (pH) in the absence and presence of nanoparticle exposure is accomplished by integrating optical sensor spots into a cyclic olefin copolymer (COC)-based microfluidic platform. Results of our nanotoxicological study, including two physiological cell barriers that are essential in the protection from exogenous factors, the intestine (Caco-2) and the vasculature (HUVECs) showed that the assessment of the cells' total energy metabolism is ideally suited to rapidly detect cytotoxicities. Additional viability assay verification using state-of-the-art dye exclusion assays for nanotoxicology demonstrated the similarity and comparability of our results, thus highlighting the benefits of employing a compact and cost-efficient microfluidic dual-sensor platform as a pre-screening tool in nanomaterial risk assessment and as a rapid quality control measure in medium to high-throughput settings.
翻译高度自动化、微型化和互补传感功能集成的先进基于细胞的测定法主要受到能够大规模生产的相关工业原型的开发限制。尽管近年来学术出版物的数量不断增加,但这些微流控细胞培养系统的可制造性在很大程度上被忽视了,从而严重限制了它们在常规毒理学应用中的实施。我们使用工业规格、材料和制造方法开发了一种双传感器集成微流控细胞分析平台,用于进行工程纳米颗粒的风险评估研究,以克服这一学术-工业差距。通过将光学传感器点集成到环状烯烃共聚物 (COC) 基微流控平台中,实现了在不存在和存在纳米颗粒暴露的情况下对细胞耗氧和代谢活性 (pH) 的非侵入性和时间分辨监测。我们的纳米毒理学研究结果包括两个在保护免受外源因素方面至关重要的生理细胞屏障,即肠 (Caco-2) 和脉管系统 (HUVECs),表明评估细胞的总能量代谢非常适合快速检测细胞毒性。使用最新的纳米毒理学染料排除测定法进行的额外生存力测定验证证明了我们的结果具有相似性和可比性,从而突出了使用紧凑且具有成本效益的微流控双传感器平台作为纳米材料风险评估的预筛选工具以及在中高通量设置中的快速质量控制措施的优势。