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Is inflammatory micronucleation the key to a successful anti-mitotic cancer drug?炎症性微核化是否是抗癌有丝分裂药物成功的关键?
Open Biol. 2017 Nov;7(11). doi: 10.1098/rsob.170182.
2
DNA damage-induced immune response: Micronuclei provide key platform.DNA损伤诱导的免疫反应:微核提供关键平台。
J Cell Biol. 2017 Oct 2;216(10):2999-3001. doi: 10.1083/jcb.201708069. Epub 2017 Aug 31.
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A quantitative real-time approach for discriminating apoptosis and necrosis.一种区分细胞凋亡和坏死的定量实时方法。
Cell Death Discov. 2017 Jan 23;3:16101. doi: 10.1038/cddiscovery.2016.101. eCollection 2017.
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Challenges in long-term imaging and quantification of single-cell dynamics.单细胞动力学的长期成像和定量的挑战。
Nat Biotechnol. 2016 Nov 8;34(11):1137-1144. doi: 10.1038/nbt.3713.
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Fluorescent indicators for simultaneous reporting of all four cell cycle phases.用于同时报告所有四个细胞周期阶段的荧光指示剂。
Nat Methods. 2016 Dec;13(12):993-996. doi: 10.1038/nmeth.4045. Epub 2016 Oct 31.
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Comparison of Three Different Methods for Determining Cell Proliferation in Breast Cancer Cell Lines.三种不同方法测定乳腺癌细胞系细胞增殖的比较
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Live Cell Imaging: Assessing the Phototoxicity of 488 and 546 nm Light and Methods to Alleviate it.活细胞成像:评估488和546纳米光的光毒性及其缓解方法。
J Cell Physiol. 2017 Sep;232(9):2461-2468. doi: 10.1002/jcp.25588. Epub 2017 Apr 10.
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Software tools for single-cell tracking and quantification of cellular and molecular properties.用于单细胞追踪以及细胞和分子特性定量分析的软件工具。
Nat Biotechnol. 2016 Jul 12;34(7):703-6. doi: 10.1038/nbt.3626.
9
Through the Looking Glass: Time-lapse Microscopy and Longitudinal Tracking of Single Cells to Study Anti-cancer Therapeutics.透过显微镜观察:使用延时显微镜和单细胞纵向追踪技术研究抗癌疗法
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10
Generation and Purification of Tetraploid Cells.四倍体细胞的产生与纯化
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长期活细胞成像以评估细胞对紫杉醇的反应命运。

Long-term Live-cell Imaging to Assess Cell Fate in Response to Paclitaxel.

作者信息

Bolgioni Amanda F, Vittoria Marc A, Ganem Neil J

机构信息

Department of Pharmacology & Experimental Therapeutics, Boston University School of Medicine.

Department of Pharmacology & Experimental Therapeutics, Boston University School of Medicine; Department of Medicine, Section of Hematology and Oncology, Boston University School of Medicine;

出版信息

J Vis Exp. 2018 May 14(135):57383. doi: 10.3791/57383.

DOI:10.3791/57383
PMID:29806834
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6101178/
Abstract

Live-cell imaging is a powerful technique that can be used to directly visualize biological phenomena in single cells over extended periods of time. Over the past decade, new and innovative technologies have greatly enhanced the practicality of live-cell imaging. Cells can now be kept in focus and continuously imaged over several days while maintained under 37 °C and 5% CO2 cell culture conditions. Moreover, multiple fields of view representing different experimental conditions can be acquired simultaneously, thus providing high-throughput experimental data. Live-cell imaging provides a significant advantage over fixed-cell imaging by allowing for the direct visualization and temporal quantitation of dynamic cellular events. Live-cell imaging can also identify variation in the behavior of single cells that would otherwise have been missed using population-based assays. Here, we describe live-cell imaging protocols to assess cell fate decisions following treatment with the anti-mitotic drug paclitaxel. We demonstrate methods to visualize whether mitotically arrested cells die directly from mitosis or slip back into interphase. We also describe how the fluorescent ubiquitination-based cell cycle indicator (FUCCI) system can be used to assess the fraction of interphase cells born from mitotic slippage that are capable of re-entering the cell cycle. Finally, we describe a live-cell imaging method to identify nuclear envelope rupture events.

摘要

活细胞成像技术是一种强大的技术,可用于在较长时间内直接观察单个细胞中的生物学现象。在过去十年中,新的创新技术极大地提高了活细胞成像的实用性。现在可以将细胞保持在聚焦状态,并在37°C和5%二氧化碳的细胞培养条件下维持数天的同时进行连续成像。此外,可以同时获取代表不同实验条件的多个视野,从而提供高通量实验数据。与固定细胞成像相比,活细胞成像具有显著优势,它可以直接观察动态细胞事件并进行时间定量。活细胞成像还可以识别单细胞行为的差异,而这些差异在基于群体的分析中可能会被忽略。在这里,我们描述了活细胞成像方案,以评估用抗有丝分裂药物紫杉醇处理后的细胞命运决定。我们展示了可视化有丝分裂停滞细胞是直接死于有丝分裂还是滑回间期的方法。我们还描述了基于荧光泛素化的细胞周期指示剂(FUCCI)系统如何用于评估从有丝分裂滑脱产生的能够重新进入细胞周期的间期细胞的比例。最后,我们描述了一种活细胞成像方法来识别核膜破裂事件。