Literature DB >> 23382240

Arginine ADP-ribosylation mechanism based on structural snapshots of iota-toxin and actin complex.

Toshiharu Tsurumura1, Yayoi Tsumori, Hao Qiu, Masataka Oda, Jun Sakurai, Masahiro Nagahama, Hideaki Tsuge.   

Abstract

Clostridium perfringens iota-toxin (Ia) mono-ADP ribosylates Arg177 of actin, leading to cytoskeletal disorganization and cell death. To fully understand the reaction mechanism of arginine-specific mono-ADP ribosyl transferase, the structure of the toxin-substrate protein complex must be characterized. Recently, we solved the crystal structure of Ia in complex with actin and the nonhydrolyzable NAD(+) analog βTAD (thiazole-4-carboxamide adenine dinucleotide); however, the structures of the NAD(+)-bound form (NAD(+)-Ia-actin) and the ADP ribosylated form [Ia-ADP ribosylated (ADPR)-actin] remain unclear. Accidentally, we found that ethylene glycol as cryo-protectant inhibits ADP ribosylation and crystallized the NAD(+)-Ia-actin complex. Here we report high-resolution structures of NAD(+)-Ia-actin and Ia-ADPR-actin obtained by soaking apo-Ia-actin crystal with NAD(+) under different conditions. The structures of NAD(+)-Ia-actin and Ia-ADPR-actin represent the pre- and postreaction states, respectively. By assigning the βTAD-Ia-actin structure to the transition state, the strain-alleviation model of ADP ribosylation, which we proposed previously, is experimentally confirmed and improved. Moreover, this reaction mechanism appears to be applicable not only to Ia but also to other ADP ribosyltransferases.

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Year:  2013        PMID: 23382240      PMCID: PMC3600452          DOI: 10.1073/pnas.1217227110

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  38 in total

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2.  Structure of the ecto-ADP-ribosyl transferase ART2.2 from rat.

Authors:  Christoph Mueller-Dieckmann; Holger Ritter; Friedrich Haag; Friedrich Koch-Nolte; Georg E Schulz
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Review 3.  Mono-ADP-ribosylation: a tool for modulating immune response and cell signaling.

Authors:  Daniela Corda; Maria Di Girolamo
Journal:  Sci STKE       Date:  2002-12-17

Review 4.  Actin as target for modification by bacterial protein toxins.

Authors:  Klaus Aktories; Alexander E Lang; Carsten Schwan; Hans G Mannherz
Journal:  FEBS J       Date:  2011-05-04       Impact factor: 5.542

5.  Linking distinct conformations of nicotinamide adenine dinucleotide with protein fold/function.

Authors:  Gopi Kuppuraj; Karen Sargsyan; Yun-Hao Hua; A Rod Merrill; Carmay Lim
Journal:  J Phys Chem B       Date:  2011-05-25       Impact factor: 2.991

6.  Crystal structure and novel recognition motif of rho ADP-ribosylating C3 exoenzyme from Clostridium botulinum: structural insights for recognition specificity and catalysis.

Authors:  S Han; A S Arvai; S B Clancy; J A Tainer
Journal:  J Mol Biol       Date:  2001-01-05       Impact factor: 5.469

7.  Poly(ADP-ribose) polymerase-2 (PARP-2) is required for efficient base excision DNA repair in association with PARP-1 and XRCC1.

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8.  Characterization of an actin-targeting ADP-ribosyltransferase from Aeromonas hydrophila.

Authors:  Adin Shniffer; Danielle D Visschedyk; Ravikiran Ravulapalli; Giovanni Suarez; Zachari J Turgeon; Anthony A Petrie; Ashok K Chopra; A Rod Merrill
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Review 9.  Toward a unified nomenclature for mammalian ADP-ribosyltransferases.

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Review 10.  ADP-ribosylation of arginine.

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Journal:  Amino Acids       Date:  2010-07-21       Impact factor: 3.520

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  31 in total

Review 1.  Novel bacterial ADP-ribosylating toxins: structure and function.

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Journal:  Nat Rev Microbiol       Date:  2014-07-14       Impact factor: 60.633

2.  Structure-function analyses of a pertussis-like toxin from pathogenic Escherichia coli reveal a distinct mechanism of inhibition of trimeric G-proteins.

Authors:  Dene R Littler; Sheng Y Ang; Danilo G Moriel; Martina Kocan; Oded Kleifeld; Matthew D Johnson; Mai T Tran; Adrienne W Paton; James C Paton; Roger J Summers; Mark A Schembri; Jamie Rossjohn; Travis Beddoe
Journal:  J Biol Chem       Date:  2017-06-29       Impact factor: 5.157

3.  Substrate N2 atom recognition mechanism in pierisin family DNA-targeting, guanine-specific ADP-ribosyltransferase ScARP.

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Journal:  J Biol Chem       Date:  2018-08-02       Impact factor: 5.157

4.  Rho GTPase Recognition by C3 Exoenzyme Based on C3-RhoA Complex Structure.

Authors:  Akiyuki Toda; Toshiharu Tsurumura; Toru Yoshida; Yayoi Tsumori; Hideaki Tsuge
Journal:  J Biol Chem       Date:  2015-06-11       Impact factor: 5.157

5.  Strain-alleviation model of ADP-ribosylation.

Authors:  Thomas Jank; Klaus Aktories
Journal:  Proc Natl Acad Sci U S A       Date:  2013-03-01       Impact factor: 11.205

6.  Scabin, a Novel DNA-acting ADP-ribosyltransferase from Streptomyces scabies.

Authors:  Bronwyn Lyons; Ravikiran Ravulapalli; Jason Lanoue; Miguel R Lugo; Debajyoti Dutta; Stephanie Carlin; A Rod Merrill
Journal:  J Biol Chem       Date:  2016-03-21       Impact factor: 5.157

Review 7.  Uncovering the Structural Basis of a New Twist in Protein Ubiquitination.

Authors:  Kedar Puvar; Zhao-Qing Luo; Chittaranjan Das
Journal:  Trends Biochem Sci       Date:  2018-12-21       Impact factor: 13.807

8.  Cryo-EM structures reveal translocational unfolding in the clostridial binary iota toxin complex.

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Journal:  Nat Struct Mol Biol       Date:  2020-03-02       Impact factor: 15.369

Review 9.  Insights into the biogenesis, function, and regulation of ADP-ribosylation.

Authors:  Michael S Cohen; Paul Chang
Journal:  Nat Chem Biol       Date:  2018-02-14       Impact factor: 15.040

10.  1H, 13C, and 15N resonance assignments of an enzymatically active domain from the catalytic component (CDTa, residues 216-420) of a binary toxin from Clostridium difficile.

Authors:  Braden M Roth; Raquel Godoy-Ruiz; Kristen M Varney; Richard R Rustandi; David J Weber
Journal:  Biomol NMR Assign       Date:  2016-02-17       Impact factor: 0.746

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