» Articles » PMID: 24463520

Citrullination Regulates Pluripotency and Histone H1 Binding to Chromatin

Abstract

Citrullination is the post-translational conversion of an arginine residue within a protein to the non-coded amino acid citrulline. This modification leads to the loss of a positive charge and reduction in hydrogen-bonding ability. It is carried out by a small family of tissue-specific vertebrate enzymes called peptidylarginine deiminases (PADIs) and is associated with the development of diverse pathological states such as autoimmunity, cancer, neurodegenerative disorders, prion diseases and thrombosis. Nevertheless, the physiological functions of citrullination remain ill-defined, although citrullination of core histones has been linked to transcriptional regulation and the DNA damage response. PADI4 (also called PAD4 or PADV), the only PADI with a nuclear localization signal, was previously shown to act in myeloid cells where it mediates profound chromatin decondensation during the innate immune response to infection. Here we show that the expression and enzymatic activity of Padi4 are also induced under conditions of ground-state pluripotency and during reprogramming in mouse. Padi4 is part of the pluripotency transcriptional network, binding to regulatory elements of key stem-cell genes and activating their expression. Its inhibition lowers the percentage of pluripotent cells in the early mouse embryo and significantly reduces reprogramming efficiency. Using an unbiased proteomic approach we identify linker histone H1 variants, which are involved in the generation of compact chromatin, as novel PADI4 substrates. Citrullination of a single arginine residue within the DNA-binding site of H1 results in its displacement from chromatin and global chromatin decondensation. Together, these results uncover a role for citrullination in the regulation of pluripotency and provide new mechanistic insights into how citrullination regulates chromatin compaction.

Citing Articles

Metabolomic Biomarkers in Bovine Embryo Culture Media and Their Relationship with the Developmental Potential of In Vitro-Produced Embryos.

Tsopp E, Kilk K, Gambini A, Kavak A, Nahkur E, Viljaste-Seera A Int J Mol Sci. 2025; 26(5).

PMID: 40076981 PMC: 11900063. DOI: 10.3390/ijms26052362.


Molecular insight into histone methylation as a novel target for oral squamous cell carcinoma: future hope in personalised medicine.

Rajendran P, Prasad M, Ali E, Sekar R, Alzahrani A, Karobari M J Cancer. 2025; 16(5):1575-1590.

PMID: 39991574 PMC: 11843246. DOI: 10.7150/jca.103243.


Histone Modifications and DNA Methylation in Psoriasis: A Cellular Perspective.

Pan J, Chen S, Chen X, Song Y, Cheng H Clin Rev Allergy Immunol. 2025; 68(1):6.

PMID: 39871086 DOI: 10.1007/s12016-024-09014-1.


A cyclic peptide toolkit reveals mechanistic principles of peptidylarginine deiminase IV regulation.

Bertran M, Walmsley R, Cummings T, Aramburu I, Benton D, Mora Molina R Nat Commun. 2024; 15(1):9746.

PMID: 39528459 PMC: 11555231. DOI: 10.1038/s41467-024-53554-1.


Deciphering the potential role of post-translational modifications of histones in gastrointestinal cancers: a proteomics-based review with therapeutic challenges and opportunities.

Farrokhi Yekta R, Farahani M, Koushki M, Amiri-Dashatan N Front Oncol. 2024; 14:1481426.

PMID: 39497715 PMC: 11532047. DOI: 10.3389/fonc.2024.1481426.


References
1.
Darrah E, Rosen A, Giles J, Andrade F . Peptidylarginine deiminase 2, 3 and 4 have distinct specificities against cellular substrates: novel insights into autoantigen selection in rheumatoid arthritis. Ann Rheum Dis. 2011; 71(1):92-8. PMC: 3302156. DOI: 10.1136/ard.2011.151712. View

2.
Fan Y, Nikitina T, Zhao J, Fleury T, Bhattacharyya R, Bouhassira E . Histone H1 depletion in mammals alters global chromatin structure but causes specific changes in gene regulation. Cell. 2005; 123(7):1199-212. DOI: 10.1016/j.cell.2005.10.028. View

3.
Theunissen T, van Oosten A, Castelo-Branco G, Hall J, Smith A, Silva J . Nanog overcomes reprogramming barriers and induces pluripotency in minimal conditions. Curr Biol. 2011; 21(1):65-71. PMC: 3025321. DOI: 10.1016/j.cub.2010.11.074. View

4.
Brown D, Izard T, Misteli T . Mapping the interaction surface of linker histone H1(0) with the nucleosome of native chromatin in vivo. Nat Struct Mol Biol. 2006; 13(3):250-5. PMC: 1868459. DOI: 10.1038/nsmb1050. View

5.
Goytisolo F, Gerchman S, Yu X, Rees C, Graziano V, Ramakrishnan V . Identification of two DNA-binding sites on the globular domain of histone H5. EMBO J. 1996; 15(13):3421-9. PMC: 451906. View