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Serine ADP-ribosylation marks nucleosomes for ALC1-dependent chromatin remodeling

Serine ADP-ribosylation (ADPr) is a DNA damage-induced post-translational modification catalyzed by the PARP1/2:HPF1 complex. As the list of PARP1/2:HPF1 substrates continues to expand, there is a need for technologies to prepare mono- and poly-ADP-ribosylated proteins for biochemical interrogation....

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Autores principales: Mohapatra, Jugal, Tashiro, Kyuto, Beckner, Ryan L, Sierra, Jorge, Kilgore, Jessica A, Williams, Noelle S, Liszczak, Glen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8683085/
https://www.ncbi.nlm.nih.gov/pubmed/34874266
http://dx.doi.org/10.7554/eLife.71502
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author Mohapatra, Jugal
Tashiro, Kyuto
Beckner, Ryan L
Sierra, Jorge
Kilgore, Jessica A
Williams, Noelle S
Liszczak, Glen
author_facet Mohapatra, Jugal
Tashiro, Kyuto
Beckner, Ryan L
Sierra, Jorge
Kilgore, Jessica A
Williams, Noelle S
Liszczak, Glen
author_sort Mohapatra, Jugal
collection PubMed
description Serine ADP-ribosylation (ADPr) is a DNA damage-induced post-translational modification catalyzed by the PARP1/2:HPF1 complex. As the list of PARP1/2:HPF1 substrates continues to expand, there is a need for technologies to prepare mono- and poly-ADP-ribosylated proteins for biochemical interrogation. Here, we investigate the unique peptide ADPr activities catalyzed by PARP1 in the absence and presence of HPF1. We then exploit these activities to develop a method that facilitates installation of ADP-ribose polymers onto peptides with precise control over chain length and modification site. Importantly, the enzymatically mono- and poly-ADP-ribosylated peptides are fully compatible with protein ligation technologies. This chemoenzymatic protein synthesis strategy was employed to assemble a series of full-length, ADP-ribosylated histones and show that ADPr at histone H2B serine 6 or histone H3 serine 10 converts nucleosomes into robust substrates for the chromatin remodeler ALC1. We found ALC1 preferentially remodels ‘activated’ substrates within heterogeneous mononucleosome populations and asymmetrically ADP-ribosylated dinucleosome substrates, and that nucleosome serine ADPr is sufficient to stimulate ALC1 activity in nuclear extracts. Our study identifies a biochemical function for nucleosome serine ADPr and describes a new, highly modular approach to explore the impact that site-specific serine mono- and poly-ADPr have on protein function.
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spelling pubmed-86830852021-12-20 Serine ADP-ribosylation marks nucleosomes for ALC1-dependent chromatin remodeling Mohapatra, Jugal Tashiro, Kyuto Beckner, Ryan L Sierra, Jorge Kilgore, Jessica A Williams, Noelle S Liszczak, Glen eLife Biochemistry and Chemical Biology Serine ADP-ribosylation (ADPr) is a DNA damage-induced post-translational modification catalyzed by the PARP1/2:HPF1 complex. As the list of PARP1/2:HPF1 substrates continues to expand, there is a need for technologies to prepare mono- and poly-ADP-ribosylated proteins for biochemical interrogation. Here, we investigate the unique peptide ADPr activities catalyzed by PARP1 in the absence and presence of HPF1. We then exploit these activities to develop a method that facilitates installation of ADP-ribose polymers onto peptides with precise control over chain length and modification site. Importantly, the enzymatically mono- and poly-ADP-ribosylated peptides are fully compatible with protein ligation technologies. This chemoenzymatic protein synthesis strategy was employed to assemble a series of full-length, ADP-ribosylated histones and show that ADPr at histone H2B serine 6 or histone H3 serine 10 converts nucleosomes into robust substrates for the chromatin remodeler ALC1. We found ALC1 preferentially remodels ‘activated’ substrates within heterogeneous mononucleosome populations and asymmetrically ADP-ribosylated dinucleosome substrates, and that nucleosome serine ADPr is sufficient to stimulate ALC1 activity in nuclear extracts. Our study identifies a biochemical function for nucleosome serine ADPr and describes a new, highly modular approach to explore the impact that site-specific serine mono- and poly-ADPr have on protein function. eLife Sciences Publications, Ltd 2021-12-07 /pmc/articles/PMC8683085/ /pubmed/34874266 http://dx.doi.org/10.7554/eLife.71502 Text en © 2021, Mohapatra et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Biochemistry and Chemical Biology
Mohapatra, Jugal
Tashiro, Kyuto
Beckner, Ryan L
Sierra, Jorge
Kilgore, Jessica A
Williams, Noelle S
Liszczak, Glen
Serine ADP-ribosylation marks nucleosomes for ALC1-dependent chromatin remodeling
title Serine ADP-ribosylation marks nucleosomes for ALC1-dependent chromatin remodeling
title_full Serine ADP-ribosylation marks nucleosomes for ALC1-dependent chromatin remodeling
title_fullStr Serine ADP-ribosylation marks nucleosomes for ALC1-dependent chromatin remodeling
title_full_unstemmed Serine ADP-ribosylation marks nucleosomes for ALC1-dependent chromatin remodeling
title_short Serine ADP-ribosylation marks nucleosomes for ALC1-dependent chromatin remodeling
title_sort serine adp-ribosylation marks nucleosomes for alc1-dependent chromatin remodeling
topic Biochemistry and Chemical Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8683085/
https://www.ncbi.nlm.nih.gov/pubmed/34874266
http://dx.doi.org/10.7554/eLife.71502
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