Literature DB >> 35634775

Time Resolved-Fluorescence Resonance Energy Transfer platform for quantitative nucleosome binding and footprinting.

Nathaniel A Wesley1, Aleksandra Skrajna2,3, Holly C Simmons2, Gabrielle R Budziszewski1, Dalal N Azzam2, Andrew P Cesmat2, Robert K McGinty1,2,3.   

Abstract

Quantitative analysis of chromatin protein-nucleosome interactions is essential to understand regulation of genome-templated processes. However, current methods to measure nucleosome interactions are limited by low throughput, low signal-to-noise, and/or the requirement for specialized instrumentation. Here, we report a Lanthanide Chelate Excite Time-Resolved Fluorescence Resonance Energy Transfer (LANCE TR-FRET) assay to efficiently quantify chromatin protein-nucleosome interactions. The system makes use of commercially available reagents, offers robust signal-to-noise with minimal sample requirements, uses a conventional fluorescence microplate reader, and can be adapted for high-throughput workflows. We determined the nucleosome-binding affinities of several chromatin proteins and complexes, which are consistent with measurements obtained through orthogonal biophysical methods. We also developed a TR-FRET competition assay for high-resolution footprinting of chromatin protein-nucleosome interactions. Finally, we set up a TR-FRET competition assay using the LANA peptide to quantitate nucleosome acidic patch binding. We applied this assay to establish a proof-of-principle for regulation of nucleosome acidic patch binding by methylation of chromatin protein arginine anchors. Overall, our TR-FRET assays allow facile, high-throughput quantification of chromatin interactions and are poised to complement mechanistic chromatin biochemistry, structural biology, and drug discovery programs.
© 2022 The Protein Society.

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Keywords:  LANA peptide; TR-FRET; affinity; arginine anchor; chromatin; competition; interaction; lanthanide chelate excite time-resolved fluorescence nucleosome; resonance energy transfer

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Year:  2022        PMID: 35634775      PMCID: PMC9134878          DOI: 10.1002/pro.4339

Source DB:  PubMed          Journal:  Protein Sci        ISSN: 0961-8368            Impact factor:   6.993


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  2 in total

1.  Time Resolved-Fluorescence Resonance Energy Transfer platform for quantitative nucleosome binding and footprinting.

Authors:  Nathaniel A Wesley; Aleksandra Skrajna; Holly C Simmons; Gabrielle R Budziszewski; Dalal N Azzam; Andrew P Cesmat; Robert K McGinty
Journal:  Protein Sci       Date:  2022-06       Impact factor: 6.993

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