Wlodkowic Donald, Czerw Aleksandra, Karakiewicz Beata, Deptała Andrzej
The Neurotox Lab, School of Science, RMIT University, Melbourne, Victoria, Australia.
Department of Health Economics and Medical Law, Faculty of Health Sciences, Medical University of Warsaw, Warsaw, Poland.
Cytometry A. 2022 Mar;101(3):203-219. doi: 10.1002/cyto.a.24508. Epub 2021 Oct 15.
Environmental toxicology focuses on identifying and predicting impact of potentially toxic anthropogenic chemicals on biosphere at various levels of biological organization. Presently there is a significant drive to gain deeper understanding of cellular and sub-cellular mechanisms of ecotoxicity. Most notable is increased focus on elucidation of cellular-response networks, interactomes, and greater implementation of cell-based biotests using high-throughput procedures, while at the same time decreasing the reliance on standard animal models used in ecotoxicity testing. This is aimed at discovery and interpretation of molecular pathways of ecotoxicity at large scale. In this regard, the applications of cytometry are perhaps one of the most fundamental prospective analytical tools for the next generation and high-throughput ecotoxicology research. The diversity of this modern technology spans flow, laser-scanning, imaging, and more recently, Raman as well as mass cytometry. The cornerstone advantages of cytometry include the possibility of multi-parameter measurements, gating and rapid analysis. Cytometry overcomes, thus, limitations of traditional bulk techniques such as spectrophotometry or gel-based techniques that average the results from pooled cell populations or small model organisms. Novel technologies such as cell imaging in flow, laser scanning cytometry, as well as mass cytometry provide innovative and tremendously powerful capabilities to analyze cells, tissues as well as to perform in situ analysis of small model organisms. In this review, we outline cytometry as a tremendously diverse field that is still vastly underutilized and often largely unknown in environmental sciences. The main motivation of this work is to highlight the potential and wide-reaching applications of cytometry in ecotoxicology, guide environmental scientists in the technological aspects as well as popularize its broader adoption in environmental risk assessment.
环境毒理学专注于识别和预测潜在有毒的人为化学物质在生物组织的各个层面上对生物圈的影响。目前,人们正大力推动对生态毒性的细胞和亚细胞机制有更深入的了解。最显著的是,人们越来越关注细胞反应网络、相互作用组的阐释,以及更多地采用高通量程序进行基于细胞的生物测试,同时减少对生态毒性测试中使用的标准动物模型的依赖。这旨在大规模发现和解释生态毒性的分子途径。在这方面,细胞术的应用可能是下一代高通量生态毒理学研究最基本的前瞻性分析工具之一。这项现代技术的多样性涵盖了流式、激光扫描、成像,以及最近的拉曼和质谱细胞术。细胞术的核心优势包括多参数测量、设门和快速分析的可能性。因此,细胞术克服了传统整体技术(如分光光度法或基于凝胶的技术)的局限性,这些技术对汇集的细胞群体或小型模式生物的结果进行平均。诸如流式细胞成像、激光扫描细胞术以及质谱细胞术等新技术提供了创新且极其强大的能力来分析细胞、组织以及对小型模式生物进行原位分析。在这篇综述中,我们概述了细胞术是一个极其多样化的领域,在环境科学中仍未得到充分利用且往往很大程度上不为人知。这项工作的主要动机是突出细胞术在生态毒理学中的潜力和广泛应用,在技术方面指导环境科学家,并推广其在环境风险评估中的更广泛应用。