Please use this identifier to cite or link to this item: https://doi.org/10.1038/nprot.2017.051
Title: Quantifying transcription factor-DNA binding in single cells in vivo with photoactivatable fluorescence correlation spectroscopy
Authors: Zhao, Ziqing Winston 
White, Melanie D
Alvarez, Yanina D
Zenker, Jennifer
Bissiere, Stephanie
Plachta, Nicolas 
Keywords: Science & Technology
Life Sciences & Biomedicine
Biochemical Research Methods
Biochemistry & Molecular Biology
CROSS-CORRELATION SPECTROSCOPY
LIVE CELLS
LIVING CELLS
MAMMALIAN EMBRYO
DYNAMICS
DIFFUSION
PROTEINS
CHROMATIN
PROBES
SITES
Issue Date: 1-Jul-2017
Publisher: NATURE PUBLISHING GROUP
Citation: Zhao, Ziqing Winston, White, Melanie D, Alvarez, Yanina D, Zenker, Jennifer, Bissiere, Stephanie, Plachta, Nicolas (2017-07-01). Quantifying transcription factor-DNA binding in single cells in vivo with photoactivatable fluorescence correlation spectroscopy. NATURE PROTOCOLS 12 (7) : 1458-1471. ScholarBank@NUS Repository. https://doi.org/10.1038/nprot.2017.051
Abstract: Probing transcription factor (TF)-DNA interactions remains challenging in complex in vivo systems such as mammalian embryos, especially when TF copy numbers and fluorescence background are high. To address this difficulty, fluorescence correlation spectroscopy (FCS) can be combined with the use of photoactivatable fluorescent proteins to achieve selective photoactivation of a subset of tagged TF molecules. This approach, termed paFCS, enables FCS measurements within single cell nuclei inside live embryos, and obtains autocorrelation data of a quality previously only attainable in simpler in vitro cell culture systems. Here, we present a protocol demonstrating the applicability of paFCS in developing mouse embryos by outlining its implementation on a commercial laser-scanning microscope. We also provide procedures for optimizing the photoactivation and acquisition parameters and determining key parameters describing TF-DNA binding. The entire procedure can be performed within ∼2 d (excluding embryo culture time), although the acquisition of each paFCS data set takes only ∼10 min. This protocol can be used to noninvasively reveal cell-to-cell variation in TF dynamics, as well as critical, fate-predicting changes over the course of early embryonic development.
Source Title: NATURE PROTOCOLS
URI: https://scholarbank.nus.edu.sg/handle/10635/173131
ISSN: 17542189
17502799
DOI: 10.1038/nprot.2017.051
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