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本文引用的文献

1
Experimental and computational framework for a dynamic protein atlas of human cell division.人类细胞分裂的动态蛋白质图谱的实验和计算框架。
Nature. 2018 Sep;561(7723):411-415. doi: 10.1038/s41586-018-0518-z. Epub 2018 Sep 10.
2
Generation and validation of homozygous fluorescent knock-in cells using CRISPR-Cas9 genome editing.利用 CRISPR-Cas9 基因组编辑技术生成和验证纯合荧光敲入细胞。
Nat Protoc. 2018 Jun;13(6):1465-1487. doi: 10.1038/nprot.2018.042. Epub 2018 May 24.
3
A quantitative map of human Condensins provides new insights into mitotic chromosome architecture.人类凝缩蛋白的定量图谱为有丝分裂染色体结构提供了新的见解。
J Cell Biol. 2018 Jul 2;217(7):2309-2328. doi: 10.1083/jcb.201801048. Epub 2018 Apr 9.
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Real-Time Imaging of a Single Gene Reveals Transcription-Initiated Local Confinement.单个基因的实时成像揭示转录起始的局部受限
Biophys J. 2017 Oct 3;113(7):1383-1394. doi: 10.1016/j.bpj.2017.08.014.
5
mScarlet: a bright monomeric red fluorescent protein for cellular imaging.mScarlet:一种明亮的单体红色荧光蛋白,用于细胞成像。
Nat Methods. 2017 Jan;14(1):53-56. doi: 10.1038/nmeth.4074. Epub 2016 Nov 21.
6
Nuclear pore assembly proceeds by an inside-out extrusion of the nuclear envelope.核孔复合体的组装是通过核膜由内向外挤出的方式进行的。
Elife. 2016 Sep 15;5:e19071. doi: 10.7554/eLife.19071.
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Insights from biochemical reconstitution into the architecture of human kinetochores.从生化重建中洞察人类着丝粒的结构。
Nature. 2016 Sep 8;537(7619):249-253. doi: 10.1038/nature19333. Epub 2016 Aug 31.
8
Quantitative analysis of human centrosome architecture by targeted proteomics and fluorescence imaging.通过靶向蛋白质组学和荧光成像对人类中心体结构进行定量分析。
EMBO J. 2016 Oct 4;35(19):2152-2166. doi: 10.15252/embj.201694462. Epub 2016 Aug 18.
9
Ki-67 acts as a biological surfactant to disperse mitotic chromosomes.Ki-67作为一种生物表面活性剂来分散有丝分裂染色体。
Nature. 2016 Jul 14;535(7611):308-12. doi: 10.1038/nature18610. Epub 2016 Jun 29.
10
Quantitative assessment of fluorescent proteins.荧光蛋白的定量评估
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使用 FCS 校准的四维成像对荧光标记的细胞蛋白进行定量测绘。

Quantitative mapping of fluorescently tagged cellular proteins using FCS-calibrated four-dimensional imaging.

机构信息

EMBL, Heidelberg, Germany.

出版信息

Nat Protoc. 2018 Jun;13(6):1445-1464. doi: 10.1038/nprot.2018.040. Epub 2018 May 24.

DOI:10.1038/nprot.2018.040
PMID:29844523
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6609853/
Abstract

The ability to tag a protein at its endogenous locus with a fluorescent protein (FP) enables quantitative understanding of protein dynamics at the physiological level. Genome-editing technology has now made this powerful approach routinely applicable to mammalian cells and many other model systems, thereby opening up the possibility to systematically and quantitatively map the cellular proteome in four dimensions. 3D time-lapse confocal microscopy (4D imaging) is an essential tool for investigating spatial and temporal protein dynamics; however, it lacks the required quantitative power to make the kind of absolute and comparable measurements required for systems analysis. In contrast, fluorescence correlation spectroscopy (FCS) provides quantitative proteomic and biophysical parameters such as protein concentration, hydrodynamic radius, and oligomerization but lacks the capability for high-throughput application in 4D spatial and temporal imaging. Here we present an automated experimental and computational workflow that integrates both methods and delivers quantitative 4D imaging data in high throughput. These data are processed to yield a calibration curve relating the fluorescence intensities (FIs) of image voxels to the absolute protein abundance. The calibration curve allows the conversion of the arbitrary FIs to protein amounts for all voxels of 4D imaging stacks. Using our workflow, users can acquire and analyze hundreds of FCS-calibrated image series to map their proteins of interest in four dimensions. Compared with other protocols, the current protocol does not require additional calibration standards and provides an automated acquisition pipeline for FCS and imaging data. The protocol can be completed in 1 d.

摘要

在蛋白质的内源位置标记荧光蛋白(FP)的能力,使我们能够在生理水平上定量理解蛋白质的动态。基因组编辑技术现在已经使这种强大的方法常规适用于哺乳动物细胞和许多其他模型系统,从而为系统地和定量地在四个维度上绘制细胞蛋白质组图谱提供了可能性。三维延时共焦显微镜(4D 成像)是研究空间和时间蛋白质动态的重要工具;然而,它缺乏进行系统分析所需的定量能力,无法进行绝对和可比的测量。相比之下,荧光相关光谱(FCS)提供了定量蛋白质组学和生物物理参数,如蛋白质浓度、流体力学半径和寡聚化,但缺乏在 4D 时空成像中进行高通量应用的能力。在这里,我们提出了一种自动化的实验和计算工作流程,将这两种方法集成在一起,并以高通量提供定量的 4D 成像数据。这些数据经过处理,生成了一个将图像体素的荧光强度(FI)与绝对蛋白质丰度相关联的校准曲线。该校准曲线允许将任意 FI 转换为 4D 成像堆栈中所有体素的蛋白质含量。使用我们的工作流程,用户可以获取和分析数百个 FCS 校准的图像系列,以在四个维度上绘制他们感兴趣的蛋白质。与其他方案相比,该方案不需要额外的校准标准,并提供了一个用于 FCS 和成像数据的自动化采集管道。该方案可以在 1 天内完成。