Literature DB >> 35654456

Multiomics analysis of the NAD+-PARP1 axis reveals a role for site-specific ADP-ribosylation in splicing in embryonic stem cells.

Aarin Jones1,2,3, W Lee Kraus1,2,3.   

Abstract

The differentiation of embryonic stem cells (ESCs) into a lineage-committed state is a dynamic process involving changes in cellular metabolism, epigenetic modifications, post-translational modifications, gene expression, and RNA processing. Here we integrated data from metabolomic, proteomic, and transcriptomic assays to characterize how alterations in NAD+ metabolism during the differentiation of mouse ESCs lead to alteration of the PARP1-mediated ADP-ribosylated (ADPRylated) proteome and mRNA isoform specialization. Our metabolomic analyses indicate that mESCs use distinct NAD+ biosynthetic pathways in different cell states: the de novo pathway in the pluripotent state, and the salvage and Preiss-Handler pathways as differentiation progresses. We observed a dramatic induction of PARP1 catalytic activity driven by enhanced nuclear NAD+ biosynthesis during the early stages of mESC differentiation (e.g., within 12 h of LIF removal). PARP1-modified proteins in mESCs are enriched for biological processes related to stem cell maintenance, transcriptional regulation, and RNA processing. The PARP1 substrates include core spliceosome components, such as U2AF35 and U2AF65, whose splicing functions are modulated by PARP1-mediated site-specific ADP-ribosylation. Finally, we observed that splicing is dysregulated genome-wide in Parp1 knockout mESCs. Together, these results demonstrate a role for the NAD+-PARP1 axis in the maintenance of mESC state, specifically in the splicing program during differentiation.
© 2022 Jones and Kraus; Published by Cold Spring Harbor Laboratory Press.

Entities:  

Keywords:  ADP-ribosylation; NAD+ biosynthesis; PARP1; Preiss–Handler pathway; U2AF35; U2AF65; de novo pathway; embryonic stem cells (ESCs); metabolomics; nicotinamide adenine dinucleotide (NAD+); proteomics; salvage pathway; spliceosome; splicing

Mesh:

Substances:

Year:  2022        PMID: 35654456      PMCID: PMC9186393          DOI: 10.1101/gad.349335.121

Source DB:  PubMed          Journal:  Genes Dev        ISSN: 0890-9369            Impact factor:   12.890


  70 in total

1.  Alternative splicing regulates mouse embryonic stem cell pluripotency and differentiation.

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Journal:  Proc Natl Acad Sci U S A       Date:  2010-05-24       Impact factor: 11.205

2.  A role for exon sequences and splice-site proximity in splice-site selection.

Authors:  R Reed; T Maniatis
Journal:  Cell       Date:  1986-08-29       Impact factor: 41.582

3.  High-throughput illumina strand-specific RNA sequencing library preparation.

Authors:  Silin Zhong; Je-Gun Joung; Yi Zheng; Yun-ru Chen; Bao Liu; Ying Shao; Jenny Z Xiang; Zhangjun Fei; James J Giovannoni
Journal:  Cold Spring Harb Protoc       Date:  2011-08-01

4.  Macrophage de novo NAD+ synthesis specifies immune function in aging and inflammation.

Authors:  Paras S Minhas; Ling Liu; Peter K Moon; Amit U Joshi; Christopher Dove; Siddhita Mhatre; Kevin Contrepois; Qian Wang; Brittany A Lee; Michael Coronado; Daniel Bernstein; Michael P Snyder; Marie Migaud; Ravindra Majeti; Daria Mochly-Rosen; Joshua D Rabinowitz; Katrin I Andreasson
Journal:  Nat Immunol       Date:  2018-11-26       Impact factor: 25.606

5.  Analysis and design of RNA sequencing experiments for identifying isoform regulation.

Authors:  Yarden Katz; Eric T Wang; Edoardo M Airoldi; Christopher B Burge
Journal:  Nat Methods       Date:  2010-11-07       Impact factor: 28.547

6.  An Advanced Strategy for Comprehensive Profiling of ADP-ribosylation Sites Using Mass Spectrometry-based Proteomics.

Authors:  Ivo A Hendriks; Sara C Larsen; Michael L Nielsen
Journal:  Mol Cell Proteomics       Date:  2019-02-23       Impact factor: 5.911

Review 7.  NAD+ metabolism: pathophysiologic mechanisms and therapeutic potential.

Authors:  Na Xie; Lu Zhang; Wei Gao; Canhua Huang; Peter Ernst Huber; Xiaobo Zhou; Changlong Li; Guobo Shen; Bingwen Zou
Journal:  Signal Transduct Target Ther       Date:  2020-10-07

8.  Metabolic regulation of transcription through compartmentalized NAD+ biosynthesis.

Authors:  Keun Woo Ryu; Tulip Nandu; Jiyeon Kim; Sridevi Challa; Ralph J DeBerardinis; W Lee Kraus
Journal:  Science       Date:  2018-05-11       Impact factor: 47.728

9.  Nicotinamide mononucleotide adenylyltransferase 2 (Nmnat2) regulates axon integrity in the mouse embryo.

Authors:  Amy N Hicks; Diego Lorenzetti; Jonathan Gilley; Baisong Lu; Karl-Erik Andersson; Carol Miligan; Paul A Overbeek; Ronald Oppenheim; Colin E Bishop
Journal:  PLoS One       Date:  2012-10-17       Impact factor: 3.240

10.  The metabolome regulates the epigenetic landscape during naive-to-primed human embryonic stem cell transition.

Authors:  Henrik Sperber; Julie Mathieu; Yuliang Wang; Amy Ferreccio; Jennifer Hesson; Zhuojin Xu; Karin A Fischer; Arikketh Devi; Damien Detraux; Haiwei Gu; Stephanie L Battle; Megan Showalter; Cristina Valensisi; Jason H Bielas; Nolan G Ericson; Lilyana Margaretha; Aaron M Robitaille; Daciana Margineantu; Oliver Fiehn; David Hockenbery; C Anthony Blau; Daniel Raftery; Adam A Margolin; R David Hawkins; Randall T Moon; Carol B Ware; Hannele Ruohola-Baker
Journal:  Nat Cell Biol       Date:  2015-11-16       Impact factor: 28.824

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