Literature DB >> 25548166

Structure of the Pseudomonas aeruginosa transamidosome reveals unique aspects of bacterial tRNA-dependent asparagine biosynthesis.

Tateki Suzuki1, Akiyoshi Nakamura2, Koji Kato3, Dieter Söll4, Isao Tanaka3, Kelly Sheppard5, Min Yao6.   

Abstract

Many prokaryotes lack a tRNA synthetase to attach asparagine to its cognate tRNA(Asn), and instead synthesize asparagine from tRNA(Asn)-bound aspartate. This conversion involves two enzymes: a nondiscriminating aspartyl-tRNA synthetase (ND-AspRS) that forms Asp-tRNA(Asn), and a heterotrimeric amidotransferase GatCAB that amidates Asp-tRNA(Asn) to form Asn-tRNA(Asn) for use in protein synthesis. ND-AspRS, GatCAB, and tRNA(Asn) may assemble in an ∼400-kDa complex, known as the Asn-transamidosome, which couples the two steps of asparagine biosynthesis in space and time to yield Asn-tRNA(Asn). We report the 3.7-Å resolution crystal structure of the Pseudomonas aeruginosa Asn-transamidosome, which represents the most common machinery for asparagine biosynthesis in bacteria. We show that, in contrast to a previously described archaeal-type transamidosome, a bacteria-specific GAD domain of ND-AspRS provokes a principally new architecture of the complex. Both tRNA(Asn) molecules in the transamidosome simultaneously serve as substrates and scaffolds for the complex assembly. This architecture rationalizes an elevated dynamic and a greater turnover of ND-AspRS within bacterial-type transamidosomes, and possibly may explain a different evolutionary pathway of GatCAB in organisms with bacterial-type vs. archaeal-type Asn-transamidosomes. Importantly, because the two-step pathway for Asn-tRNA(Asn) formation evolutionarily preceded the direct attachment of Asn to tRNA(Asn), our structure also may reflect the mechanism by which asparagine was initially added to the genetic code.

Entities:  

Keywords:  GatCAB; asparagine biosynthesis; aspartyl-tRNA synthetase; transamidosome

Mesh:

Substances:

Year:  2014        PMID: 25548166      PMCID: PMC4299244          DOI: 10.1073/pnas.1423314112

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


  44 in total

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Authors:  Terry Cathopoulis; Pitak Chuawong; Tamara L Hendrickson
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Authors:  Hiroyuki Oshikane; Kelly Sheppard; Shuya Fukai; Yuko Nakamura; Ryuichiro Ishitani; Tomoyuki Numata; R Lynn Sherrer; Liang Feng; Emmanuelle Schmitt; Michel Panvert; Sylvain Blanquet; Yves Mechulam; Dieter Söll; Osamu Nureki
Journal:  Science       Date:  2006-06-30       Impact factor: 47.728

3.  Ammonia channel couples glutaminase with transamidase reactions in GatCAB.

Authors:  Akiyoshi Nakamura; Min Yao; Sarin Chimnaronk; Naoki Sakai; Isao Tanaka
Journal:  Science       Date:  2006-06-30       Impact factor: 47.728

4.  The Helicobacter pylori amidotransferase GatCAB is equally efficient in glutamine-dependent transamidation of Asp-tRNAAsn and Glu-tRNAGln.

Authors:  Kelly Sheppard; Pierre-Marie Akochy; Juan C Salazar; Dieter Söll
Journal:  J Biol Chem       Date:  2007-02-28       Impact factor: 5.157

5.  On the evolution of the tRNA-dependent amidotransferases, GatCAB and GatDE.

Authors:  Kelly Sheppard; Dieter Söll
Journal:  J Mol Biol       Date:  2008-01-16       Impact factor: 5.469

6.  Glutamyl-tRNA(Gln) amidotransferase in Deinococcus radiodurans may be confined to asparagine biosynthesis.

Authors:  A W Curnow; D L Tumbula; J T Pelaschier; B Min; D Söll
Journal:  Proc Natl Acad Sci U S A       Date:  1998-10-27       Impact factor: 11.205

7.  The transamidosome: a dynamic ribonucleoprotein particle dedicated to prokaryotic tRNA-dependent asparagine biosynthesis.

Authors:  Marc Bailly; Mickaël Blaise; Bernard Lorber; Hubert Dominique Becker; Daniel Kern
Journal:  Mol Cell       Date:  2007-10-26       Impact factor: 17.970

8.  tRNA-dependent asparagine formation in prokaryotes: characterization, isolation and structural and functional analysis of a ribonucleoprotein particle generating Asn-tRNA(Asn).

Authors:  Marc Bailly; Mickaël Blaise; Hervé Roy; Marzanna Deniziak; Bernard Lorber; Catherine Birck; Hubert D Becker; Daniel Kern
Journal:  Methods       Date:  2008-02       Impact factor: 3.608

9.  A single tRNA base pair mediates bacterial tRNA-dependent biosynthesis of asparagine.

Authors:  Marc Bailly; Stamatina Giannouli; Mickael Blaise; Constantinos Stathopoulos; Daniel Kern; Hubert Dominique Becker
Journal:  Nucleic Acids Res       Date:  2006-10-29       Impact factor: 16.971

10.  An aminoacyl-tRNA synthetase:elongation factor complex for substrate channeling in archaeal translation.

Authors:  Corinne D Hausmann; Mette Praetorius-Ibba; Michael Ibba
Journal:  Nucleic Acids Res       Date:  2007-09-01       Impact factor: 16.971

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  14 in total

1.  An unexpected vestigial protein complex reveals the evolutionary origins of an s-triazine catabolic enzyme.

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Journal:  J Biol Chem       Date:  2018-03-09       Impact factor: 5.157

2.  Crystal structure of the N-terminal anticodon-binding domain of the nondiscriminating aspartyl-tRNA synthetase from Helicobacter pylori.

Authors:  Chomphunuch Songsiriritthigul; Suwimon Suebka; Chun Jung Chen; Pitchayada Fuengfuloy; Pitak Chuawong
Journal:  Acta Crystallogr F Struct Biol Commun       Date:  2017-01-19       Impact factor: 1.056

3.  Identification of Tse8 as a Type VI secretion system toxin from Pseudomonas aeruginosa that targets the bacterial transamidosome to inhibit protein synthesis in prey cells.

Authors:  Amy K Cain; Thomas Clamens; Laura M Nolan; R Christopher D Furniss; Eleni Manoli; Maria A Sainz-Polo; Gordon Dougan; David Albesa-Jové; Julian Parkhill; Despoina A I Mavridou; Alain Filloux
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4.  Crystallographic analysis of a subcomplex of the transsulfursome with tRNA for Cys-tRNA(Cys) synthesis.

Authors:  Meirong Chen; Yuto Nakazawa; Yume Kubo; Nozomi Asano; Koji Kato; Isao Tanaka; Min Yao
Journal:  Acta Crystallogr F Struct Biol Commun       Date:  2016-06-28       Impact factor: 1.056

5.  Discovery and Characterization of Chemical Compounds That Inhibit the Function of Aspartyl-tRNA Synthetase from Pseudomonas aeruginosa.

Authors:  Araceli Corona; Stephanie O Palmer; Regina Zamacona; Benjamin Mendez; Frank B Dean; James M Bullard
Journal:  SLAS Discov       Date:  2017-11-29       Impact factor: 3.341

6.  Structural basis for tRNA-dependent cysteine biosynthesis.

Authors:  Meirong Chen; Koji Kato; Yume Kubo; Yoshikazu Tanaka; Yuchen Liu; Feng Long; William B Whitman; Pascal Lill; Christos Gatsogiannis; Stefan Raunser; Nobutaka Shimizu; Akira Shinoda; Akiyoshi Nakamura; Isao Tanaka; Min Yao
Journal:  Nat Commun       Date:  2017-11-15       Impact factor: 14.919

7.  3D based on 2D: Calculating helix angles and stacking patterns using forgi 2.0, an RNA Python library centered on secondary structure elements.

Authors:  Bernhard C Thiel; Irene K Beckmann; Peter Kerpedjiev; Ivo L Hofacker
Journal:  F1000Res       Date:  2019-03-14

8.  Structure of the dihydrolipoamide succinyltransferase catalytic domain from Escherichia coli in a novel crystal form: a tale of a common protein crystallization contaminant.

Authors:  Babak Andi; Alexei S Soares; Wuxian Shi; Martin R Fuchs; Sean McSweeney; Qun Liu
Journal:  Acta Crystallogr F Struct Biol Commun       Date:  2019-08-29       Impact factor: 1.056

9.  Potential DNA binding and nuclease functions of ComEC domains characterized in silico.

Authors:  James A Baker; Felix Simkovic; Helen M C Taylor; Daniel J Rigden
Journal:  Proteins       Date:  2016-07-01

10.  Rooted tRNAomes and evolution of the genetic code.

Authors:  Daewoo Pak; Nan Du; Yunsoo Kim; Yanni Sun; Zachary F Burton
Journal:  Transcription       Date:  2018-02-06
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