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打破教条:实时高通量活细胞成像与 Hoechst 33342。

Breaking a Dogma: High-Throughput Live-Cell Imaging in Real-Time with Hoechst 33342.

机构信息

Institute of Ophthalmology, University Eye Hospital, Hannover Medical School, Carl-Neuberg Strasse 1, 30625, Hannover, Germany.

Department of Psychiatry, Social Psychiatry and Psychotherapy, Hannover Medical School, Carl-Neuberg Strasse 1, 30625, Hannover, Germany.

出版信息

Adv Healthc Mater. 2023 Aug;12(20):e2300230. doi: 10.1002/adhm.202300230. Epub 2023 Mar 31.

Abstract

Automated high-throughput live cell imaging (LCI) enables investigation of substance effects on cells in vitro. Usually, cell number is analyzed by phase-contrast imaging, which is reliable only for a few cell types. Therefore, an accurate cell counting method, such as staining the nuclei with Hoechst 33342 before LCI, will be desirable. However, since the mid-1980s, the dogma exists that Hoechst can only be used for endpoint analyses because of its cytotoxic properties and the potentially phototoxic effects of the excitation light. Since microscopic camera sensitivity has significantly improved, this study investigates whether this dogma is still justified. Therefore, exposure parameters are optimized using a 4× objective, and the minimum required Hoechst concentration is evaluated, allowing LCI at 30-min intervals over 5 days. Remarkably, a Hoechst concentration of only 57 × 10 m significantly inhibits proliferation and thus impairs cell viability. However, Hoechst concentrations between 7 × 10  and 28 × 10 m can be determined, which are neither cytotoxic nor impacting cell viability, proliferation, or signaling pathways. The method can be adapted to regular inverted fluorescence microscopes and allows, for example, to determine the cytotoxicity of a substance or the transduction efficiency, with the advantage that the analysis can be repeated at any desired time point.

摘要

自动化高通量活细胞成像(LCI)可用于研究体外细胞的物质效应。通常,细胞数量通过相差成像进行分析,但这种方法仅适用于少数几种细胞类型。因此,需要一种准确的细胞计数方法,例如在 LCI 之前用 Hoechst 33342 染色细胞核。然而,自 20 世纪 80 年代中期以来,存在一种教条,即由于 Hoechst 的细胞毒性和激发光的潜在光毒性效应,Hoechst 只能用于终点分析。由于显微镜相机的灵敏度有了显著提高,本研究调查了这种教条是否仍然合理。因此,使用 4×物镜优化了曝光参数,并评估了最小需要的 Hoechst 浓度,允许在 5 天内每隔 30 分钟进行一次 LCI。值得注意的是,Hoechst 的浓度仅为 57×10 m 就可以显著抑制增殖,从而损害细胞活力。然而,可以确定在 7×10 和 28×10 m 之间的 Hoechst 浓度,这些浓度既没有细胞毒性也不会影响细胞活力、增殖或信号通路。该方法可以适应常规的倒置荧光显微镜,并允许例如确定物质的细胞毒性或转导效率,其优点是可以在任何所需的时间点重复分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ed90/11468280/ea082c6e6d2f/ADHM-12-2300230-g001.jpg

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