class='kwd-title'>Method Name: Quantifying intra'/> Detecting intracellular thiol redox state in leukaemia and heterogeneous immune cell populations: An optimised protocol for digital flow cytometers
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Detecting intracellular thiol redox state in leukaemia and heterogeneous immune cell populations: An optimised protocol for digital flow cytometers

机译:在白血病和异种免疫细胞群体中检测细胞内硫醇氧化还原状态:数字流式细胞仪的优化方案

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摘要

class="kwd-title">Method Name: Quantifying intracellular thiols by flow cytometry class="kwd-title">Keywords: Flow cytometry, Reactive oxygen species, Oxidative stress, Fluorescein-5 maleimide, Reductive stress class="head no_bottom_margin" id="abs0010title">AbstractFlow cytometric methods for detecting and quantifying reduced intracellular thiol content using fluorescein-5-maleimide (F5M) in viable eukaryotic cells date back to 1983 (Durand and Olive [1]). There has been little development in these methodologies since that time, a period that has witnessed huge technological advances, particularly with the emergence of digital multi-parameter flow cytometric systems. Concurrent advancement in our understanding of redox regulation within eukaryotic cellular systems has also followed, whereby it is now accepted that cysteine thiols partake in redox reactions, which regulate protein activity and function (Groitl and Jakob (2014), Won et al. (2012)). Moreover, we are at the dawn of a new era in redox biology whereby the importance of ‘reductive stress’ in eukaryotic cellular systems is gathering momentum (Wadley et al. (2018) []). It is therefore critical that methods be continually advanced to better understand these concepts in more detail at the cellular level. Flow cytometry is a powerful technique that may be used for this purpose. Henceforth we have rejuvenated these methods to address modern scientific questions. In this paper, essential detail is provided on: class="first-line-outdent" id="lis0005">
  • • The adaption of a protocol initially described by Durand and Olive [1] for use with modern digital flow cytometer configurations. Here we provide optimal conditions for labelling intracellular thiols with F5M for detection using digital flow cytometers. Our modifications avoid the use of methanol fixation thus preserving cell viability in single cell suspension cultures.
  • • Demonstration that flow cytometry can detect the gain and loss of reduced intracellular thiols in cells exposed to physiological doses of hydrogen peroxide mediated by glucose oxidase (Hole et al. (2013) []).
  • • Validation of F5M protein labelling by coupling method to confocal microscopy and downstream proteomics, thus permitting a powerful experimental platform for potential use with next generation flow cytometry e.g. CyTOF (Lin and Maecker (2018) []).
  • 机译:<!-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>方法名称:通过流式细胞术定量细胞内硫醇 class =“ kwd-title”>关键字:流式细胞术,活性氧,氧化应激,荧光素-5马来酰亚胺,还原性应激 class =“ head no_bottom_margin” id =“ abs0010title”>摘要流式细胞术用于检测和量化减少的细胞内硫醇含量活的真核细胞中的荧光素5-马来酰亚胺(F5M)可以追溯到1983年(Durand和Olive [1])。自那时以来,这些方法几乎没有发展,这一时期见证了巨大的技术进步,特别是随着数字多参数流式细胞仪系统的出现。随之而来的是我们对真核细胞系统内氧化还原调节的理解的同时发展,据此,半胱氨酸硫醇参与氧化还原反应,从而调节蛋白质的活性和功能(Groitl and Jakob(2014),Won et al。(2012))。 )。此外,我们正处于氧化还原生物学新纪元的曙光中,“还原应激”在真核细胞系统中的重要性正在增强(Wadley等人(2018)[])。因此,至关重要的是,不断改进方法以更好地在蜂窝级别上更好地理解这些概念。流式细胞仪是可用于此目的的强大技术。从今以后,我们已经使这些方法重新焕发活力,以解决现代科学问题。在本文中,提供了以下基本细节: class =“ first-line-outdent” id =“ lis0005”> <!-list-behavior =简单前缀-word = mark-type = none最大标签大小= 9->
  • •Durand和Olive [1]最初描述的协议的改编,用于现代数字流式细胞仪配置。在这里,我们提供了使用F5M标记细胞内硫醇以使用数字流式细胞仪进行检测的最佳条件。我们的修改避免了使用甲醇固定,从而在单细胞悬浮培养中保留了细胞活力。
  • •演示了流式细胞术可以检测暴露于生理状态的细胞中还原的细胞内硫醇的得失。剂量的葡萄糖氧化酶介导的过氧化氢剂量(Hole等人(2013)[])。
  • •通过共聚焦显微镜和下游蛋白质组学偶联方法验证F5M蛋白标记,从而可以一个强大的实验平台,可与下一代流式细胞术一起使用CyTOF(Lin and Maecker(2018)[])。
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