Literature DB >> 16931513

ART2, a T cell surface mono-ADP-ribosyltransferase, generates extracellular poly(ADP-ribose).

Alan R Morrison1, Joel Moss, Linda A Stevens, James E Evans, Caitlin Farrell, Eric Merithew, David G Lambright, Dale L Greiner, John P Mordes, Aldo A Rossini, Rita Bortell.   

Abstract

NAD functions in multiple aspects of cellular metabolism and signaling through enzymes that covalently transfer ADP-ribose from NAD to acceptor proteins, thereby altering their function. NAD is a substrate for two enzyme families, mono-ADP-ribosyltransferases (mARTs) and poly(ADP-ribose) polymerases (PARPs), that covalently transfer an ADP-ribose monomer or polymer, respectively, to acceptor proteins. ART2, a mART, is a phenotypic marker of immunoregulatory cells found on the surface of T lymphocytes, including intestinal intraepithelial lymphocytes (IELs). We have shown that the auto-ADP-ribosylation of the ART2.2 allelic protein is multimeric. Our backbone structural alignment of ART2 (two alleles of the rat art2 gene have been reported, for simplicity, the ART2.2 protein investigated in this study will be referred to as ART2) and PARP suggested that multimeric auto-ADP-ribosylation of ART2 may represent an ADP-ribose polymer, rather than multiple sites of mono-ADP-ribosylation. To investigate this, we used highly purified recombinant ART2 and demonstrated that ART2 catalyzes the formation of an ADP-ribose polymer by sequencing gel and by HPLC and MS/MS mass spectrometry identification of PR-AMP, a breakdown product specific to poly(ADP-ribose). Furthermore, we identified the site of ADP-ribose polymer attachment on ART2 as Arg-185, an arginine in a crucial loop of its catalytic core. We found that endogenous ART2 on IELs undergoes multimeric auto-ADP-ribosylation more efficiently than ART2 on peripheral T cells, suggesting that these distinct lymphocyte populations differ in their ART2 surface topology. Furthermore, ART2.2 IELs are more resistant to NAD-induced cell death than ART2.1 IELs that do not have multimeric auto-ADP-ribosylation activity. The data suggest that capability of polymerizing ADP-ribose may not be unique to PARPs and that poly(ADP-ribosylation), an established nuclear activity, may occur extracellularly and modulate cell function.

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Year:  2006        PMID: 16931513     DOI: 10.1074/jbc.M607259200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  9 in total

1.  Transcriptome resources for the white-footed mouse (Peromyscus leucopus): new genomic tools for investigating ecologically divergent urban and rural populations.

Authors:  Stephen E Harris; Rachel J O'Neill; Jason Munshi-South
Journal:  Mol Ecol Resour       Date:  2014-07-16       Impact factor: 7.090

2.  Extracellular poly(ADP-ribose) is a pro-inflammatory signal for macrophages.

Authors:  Kristin A Krukenberg; Sujeong Kim; Edwin S Tan; Zoltan Maliga; Timothy J Mitchison
Journal:  Chem Biol       Date:  2015-04-09

3.  Structure and mechanism of a canonical poly(ADP-ribose) glycohydrolase.

Authors:  Mark S Dunstan; Eva Barkauskaite; Pierre Lafite; Claire E Knezevic; Amy Brassington; Marijan Ahel; Paul J Hergenrother; David Leys; Ivan Ahel
Journal:  Nat Commun       Date:  2012-06-06       Impact factor: 14.919

Review 4.  Multiple Roles for Mono- and Poly(ADP-Ribose) in Regulating Stress Responses.

Authors:  Hongyun Qi; Brendan D Price; Tovah A Day
Journal:  Trends Genet       Date:  2018-12-27       Impact factor: 11.639

5.  VERO cells harbor a poly-ADP-ribose belt partnering their epithelial adhesion belt.

Authors:  Laura Lafon-Hughes; Salomé C Vilchez Larrea; Alejandra Kun; Silvia H Fernández Villamil
Journal:  PeerJ       Date:  2014-10-14       Impact factor: 2.984

6.  Structural and biochemical evidence supporting poly ADP-ribosylation in the bacterium Deinococcus radiodurans.

Authors:  Chao-Cheng Cho; Chia-Yu Chien; Yi-Chih Chiu; Meng-Hsuan Lin; Chun-Hua Hsu
Journal:  Nat Commun       Date:  2019-04-02       Impact factor: 14.919

Review 7.  Enzymology of extracellular NAD metabolism.

Authors:  Massimiliano Gasparrini; Leonardo Sorci; Nadia Raffaelli
Journal:  Cell Mol Life Sci       Date:  2021-03-23       Impact factor: 9.261

8.  Structure of mouse ADP-ribosylhydrolase 3 (mARH3).

Authors:  Christoph Mueller-Dieckmann; Stefan Kernstock; Jochen Mueller-Dieckmann; Manfred S Weiss; Friedrich Koch-Nolte
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2008-02-23

9.  Visualization of poly(ADP-ribose) bound to PARG reveals inherent balance between exo- and endo-glycohydrolase activities.

Authors:  Eva Barkauskaite; Amy Brassington; Edwin S Tan; Jim Warwicker; Mark S Dunstan; Benito Banos; Pierre Lafite; Marijan Ahel; Timothy J Mitchison; Ivan Ahel; David Leys
Journal:  Nat Commun       Date:  2013       Impact factor: 14.919

  9 in total

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