Click here to close
Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly.
We suggest using a current version of Chrome,
FireFox, or Safari.
Histone H2A and H4 N-terminal tails are positioned by the MEP50 WD repeat protein for efficient methylation by the PRMT5 arginine methyltransferase.
Burgos ES, Wilczek C, Onikubo T, Bonanno JB, Jansong J, Reimer U, Shechter D.
???displayArticle.abstract???
The protein arginine methyltransferase PRMT5 is complexed with the WD repeat protein MEP50 (also known as Wdr77 or androgen coactivator p44) in vertebrates in a tetramer of heterodimers. MEP50 is hypothesized to be required for protein substrate recruitment to the catalytic domain of PRMT5. Here we demonstrate that the cross-dimer MEP50 is paired with its cognate PRMT5 molecule to promote histone methylation. We employed qualitative methylation assays and a novel ultrasensitive continuous assay to measure enzyme kinetics. We demonstrate that neither full-length human PRMT5 nor the Xenopus laevis PRMT5 catalytic domain has appreciable protein methyltransferase activity. We show that histones H4 and H3 bind PRMT5-MEP50 more efficiently compared with histone H2A(1-20) and H4(1-20) peptides. Histone binding is mediated through histone fold interactions as determined by competition experiments and by high density histone peptide array interaction studies. Nucleosomes are not a substrate for PRMT5-MEP50, consistent with the primary mode of interaction via the histone fold of H3-H4, obscured by DNA in the nucleosome. Mutation of a conserved arginine (Arg-42) on the MEP50 insertion loop impaired the PRMT5-MEP50 enzymatic efficiency by increasing its histone substrate Km, comparable with that of Caenorhabditis elegans PRMT5. We show that PRMT5-MEP50 prefers unmethylated substrates, consistent with a distributive model for dimethylation and suggesting discrete biological roles for mono- and dimethylarginine-modified proteins. We propose a model in which MEP50 and PRMT5 simultaneously engage the protein substrate, orienting its targeted arginine to the catalytic site.
Aggarwal,
Nuclear cyclin D1/CDK4 kinase regulates CUL4 expression and triggers neoplastic growth via activation of the PRMT5 methyltransferase.
2010, Pubmed
Aggarwal,
Nuclear cyclin D1/CDK4 kinase regulates CUL4 expression and triggers neoplastic growth via activation of the PRMT5 methyltransferase.
2010,
Pubmed Ancelin,
Blimp1 associates with Prmt5 and directs histone arginine methylation in mouse germ cells.
2006,
Pubmed Antonysamy,
Crystal structure of the human PRMT5:MEP50 complex.
2012,
Pubmed Bao,
Overexpression of PRMT5 promotes tumor cell growth and is associated with poor disease prognosis in epithelial ovarian cancer.
2013,
Pubmed Bezzi,
Regulation of constitutive and alternative splicing by PRMT5 reveals a role for Mdm4 pre-mRNA in sensing defects in the spliceosomal machinery.
2013,
Pubmed Comeau,
ClusPro: an automated docking and discrimination method for the prediction of protein complexes.
2004,
Pubmed Comeau,
ClusPro: a fully automated algorithm for protein-protein docking.
2004,
Pubmed Di Lorenzo,
Histone arginine methylation.
2011,
Pubmed Fabbrizio,
Negative regulation of transcription by the type II arginine methyltransferase PRMT5.
2002,
Pubmed
,
Xenbase Feng,
Histone H4 acetylation differentially modulates arginine methylation by an in Cis mechanism.
2011,
Pubmed Friesen,
A novel WD repeat protein component of the methylosome binds Sm proteins.
2002,
Pubmed Friesen,
The methylosome, a 20S complex containing JBP1 and pICln, produces dimethylarginine-modified Sm proteins.
2001,
Pubmed Furuno,
Association of Polycomb group SUZ12 with WD-repeat protein MEP50 that binds to histone H2A selectively in vitro.
2006,
Pubmed Gu,
Protein arginine methyltransferase 5 is essential for growth of lung cancer cells.
2012,
Pubmed Guderian,
RioK1, a new interactor of protein arginine methyltransferase 5 (PRMT5), competes with pICln for binding and modulates PRMT5 complex composition and substrate specificity.
2011,
Pubmed Gui,
A remodeled protein arginine methyltransferase 1 (PRMT1) generates symmetric dimethylarginine.
2014,
Pubmed Gurung,
Menin epigenetically represses Hedgehog signaling in MEN1 tumor syndrome.
2013,
Pubmed Hemeon,
Characterizing DNA methyltransferases with an ultrasensitive luciferase-linked continuous assay.
2011,
Pubmed Ho,
Structure of the arginine methyltransferase PRMT5-MEP50 reveals a mechanism for substrate specificity.
2013,
Pubmed
,
Xenbase Humphrey,
VMD: visual molecular dynamics.
1996,
Pubmed Karkhanis,
Versatility of PRMT5-induced methylation in growth control and development.
2011,
Pubmed Lacroix,
The histone-binding protein COPR5 is required for nuclear functions of the protein arginine methyltransferase PRMT5.
2008,
Pubmed Lee,
Minireview: protein arginine methylation of nonhistone proteins in transcriptional regulation.
2009,
Pubmed Le Guezennec,
MBD2/NuRD and MBD3/NuRD, two distinct complexes with different biochemical and functional properties.
2006,
Pubmed Majumder,
Methylation of histone H3 and H4 by PRMT5 regulates ribosomal RNA gene transcription.
2010,
Pubmed Morrison,
Kinetics of the reversible inhibition of enzyme-catalysed reactions by tight-binding inhibitors.
1969,
Pubmed Murzina,
Structural basis for the recognition of histone H4 by the histone-chaperone RbAp46.
2008,
Pubmed Nicklay,
Analysis of histones in Xenopus laevis. II. mass spectrometry reveals an index of cell type-specific modifications on H3 and H4.
2009,
Pubmed
,
Xenbase Pal,
Low levels of miR-92b/96 induce PRMT5 translation and H3R8/H4R3 methylation in mantle cell lymphoma.
2007,
Pubmed Pal,
Human SWI/SNF-associated PRMT5 methylates histone H3 arginine 8 and negatively regulates expression of ST7 and NM23 tumor suppressor genes.
2004,
Pubmed Porollo,
Prediction-based fingerprints of protein-protein interactions.
2007,
Pubmed Roberts,
MultiSeq: unifying sequence and structure data for evolutionary analysis.
2006,
Pubmed Russell,
Multiple protein sequence alignment from tertiary structure comparison: assignment of global and residue confidence levels.
1992,
Pubmed Ruthenburg,
Histone H3 recognition and presentation by the WDR5 module of the MLL1 complex.
2006,
Pubmed Scoumanne,
PRMT5 is required for cell-cycle progression and p53 tumor suppressor function.
2009,
Pubmed Shechter,
Extraction, purification and analysis of histones.
2007,
Pubmed
,
Xenbase Shechter,
Analysis of histones in Xenopus laevis. I. A distinct index of enriched variants and modifications exists in each cell type and is remodeled during developmental transitions.
2009,
Pubmed
,
Xenbase Sturm,
Detecting ricin: sensitive luminescent assay for ricin A-chain ribosome depurination kinetics.
2009,
Pubmed Tee,
Prmt5 is essential for early mouse development and acts in the cytoplasm to maintain ES cell pluripotency.
2010,
Pubmed Wang,
Protein arginine methyltransferase 5 catalyzes substrate dimethylation in a distributive fashion.
2014,
Pubmed Wang,
Phosphorylation and arginine methylation mark histone H2A prior to deposition during Xenopus laevis development.
2014,
Pubmed
,
Xenbase Wang,
Protein arginine methyltransferase 5 suppresses the transcription of the RB family of tumor suppressors in leukemia and lymphoma cells.
2008,
Pubmed Wang,
Substrate specificity, processivity, and kinetic mechanism of protein arginine methyltransferase 5.
2013,
Pubmed Wang,
Investigations of the partial reactions catalyzed by pyruvate phosphate dikinase.
1988,
Pubmed Wilczek,
Protein arginine methyltransferase Prmt5-Mep50 methylates histones H2A and H4 and the histone chaperone nucleoplasmin in Xenopus laevis eggs.
2011,
Pubmed
,
Xenbase Wolf,
The protein arginine methyltransferase family: an update about function, new perspectives and the physiological role in humans.
2009,
Pubmed Wysocka,
Histone arginine methylation and its dynamic regulation.
2006,
Pubmed Yan,
Genetic validation of the protein arginine methyltransferase PRMT5 as a candidate therapeutic target in glioblastoma.
2014,
Pubmed Zhang,
PredUs: a web server for predicting protein interfaces using structural neighbors.
2011,
Pubmed Zhao,
PRMT5-mediated methylation of histone H4R3 recruits DNMT3A, coupling histone and DNA methylation in gene silencing.
2009,
Pubmed