Literature DB >> 18757535

Evolutionary comparison of ribosomal operon antitermination function.

Kristine B Arnvig1, Shirley Zeng, Selwyn Quan, Alexander Papageorge, Ning Zhang, Anuradha C Villapakkam, Catherine L Squires.   

Abstract

Transcription antitermination in the ribosomal operons of Escherichia coli results in the modification of RNA polymerase by specific proteins, altering its basic properties. For such alterations to occur, signal sequences in rrn operons are required as well as individual interacting proteins. In this study we tested putative rrn transcription antitermination-inducing sequences from five different bacteria for their abilities to function in E. coli. We further examined their response to the lack of one known rrn transcription antitermination protein from E. coli, NusB. We monitored antitermination activity by assessing the ability of RNA polymerase to read through a factor-dependent terminator. We found that, in general, the closer the regulatory sequence matched that of E. coli, the more likely there was to be a successful antitermination-proficient modification of the transcription complex. The rrn leader sequences from Pseudomonas aeruginosa, Bacillus subtilis, and Caulobacter crescentus all provided various levels of, but functionally significant antitermination properties to, RNA polymerase, while those of Mycobacterium tuberculosis and Thermotoga maritima did not. Possible RNA folding structures of presumed antitermination sequences and specific critical bases are discussed in light of our results. An unexpected finding was that when using the Caulobacter crescentus rrn leader sequence, there was little effect on terminator readthrough in the absence of NusB. All other hybrid antitermination system activities required this factor. Possible reasons for this finding are discussed.

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Year:  2008        PMID: 18757535      PMCID: PMC2580698          DOI: 10.1128/JB.00760-08

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  53 in total

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Authors:  Kristina M Herbert; Arthur La Porta; Becky J Wong; Rachel A Mooney; Keir C Neuman; Robert Landick; Steven M Block
Journal:  Cell       Date:  2006-06-16       Impact factor: 41.582

2.  Essentiality of ribosomal and transcription antitermination proteins analyzed by systematic gene replacement in Escherichia coli.

Authors:  Mikhail Bubunenko; Teresa Baker; Donald L Court
Journal:  J Bacteriol       Date:  2007-02-02       Impact factor: 3.490

3.  Structural biophysics of the NusB:NusE antitermination complex.

Authors:  Ranabir Das; Sandra Loss; Jess Li; David S Waugh; Sergey Tarasov; Paul T Wingfield; R Andrew Byrd; Amanda S Altieri
Journal:  J Mol Biol       Date:  2007-11-17       Impact factor: 5.469

4.  Antitermination of characterized transcriptional terminators by the Escherichia coli rrnG leader region.

Authors:  B Albrechtsen; C L Squires; S Li; C Squires
Journal:  J Mol Biol       Date:  1990-05-05       Impact factor: 5.469

5.  Sequence and transcriptional pattern of the essential Escherichia coli secE-nusG operon.

Authors:  W L Downing; S L Sullivan; M E Gottesman; P P Dennis
Journal:  J Bacteriol       Date:  1990-03       Impact factor: 3.490

6.  Southern blot and microfingerprinting analysis of two DR7 haplotypes.

Authors:  G Angelini; N Tanigaki; R Tosi; G B Ferrara
Journal:  Immunogenetics       Date:  1986       Impact factor: 2.846

7.  Ribosomal RNA operon anti-termination. Function of leader and spacer region box B-box A sequences and their conservation in diverse micro-organisms.

Authors:  K L Berg; C Squires; C L Squires
Journal:  J Mol Biol       Date:  1989-10-05       Impact factor: 5.469

8.  Defective antitermination of rRNA transcription and derepression of rRNA and tRNA synthesis in the nusB5 mutant of Escherichia coli.

Authors:  R A Sharrock; R L Gourse; M Nomura
Journal:  Proc Natl Acad Sci U S A       Date:  1985-08       Impact factor: 11.205

9.  Termination factor Rho and its cofactors NusA and NusG silence foreign DNA in E. coli.

Authors:  Christopher J Cardinale; Robert S Washburn; Vasisht R Tadigotla; Lewis M Brown; Max E Gottesman; Evgeny Nudler
Journal:  Science       Date:  2008-05-16       Impact factor: 47.728

10.  The site of action of the antiterminator protein N from the lambdoid phage H-19B.

Authors:  Anoop Cheeran; Nanci R Kolli; Ranjan Sen
Journal:  J Biol Chem       Date:  2007-08-13       Impact factor: 5.157

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  13 in total

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Authors:  Finn Werner; Dina Grohmann
Journal:  Nat Rev Microbiol       Date:  2011-02       Impact factor: 60.633

2.  RNA Polymerase Clamp Movement Aids Dissociation from DNA but Is Not Required for RNA Release at Intrinsic Terminators.

Authors:  Michael J Bellecourt; Ananya Ray-Soni; Alex Harwig; Rachel Anne Mooney; Robert Landick
Journal:  J Mol Biol       Date:  2019-01-08       Impact factor: 5.469

3.  Transcription, processing and function of CRISPR cassettes in Escherichia coli.

Authors:  Ksenia Pougach; Ekaterina Semenova; Ekaterina Bogdanova; Kirill A Datsenko; Marko Djordjevic; Barry L Wanner; Konstantin Severinov
Journal:  Mol Microbiol       Date:  2010-09       Impact factor: 3.501

Review 4.  Processive Antitermination.

Authors:  Jonathan R Goodson; Wade C Winkler
Journal:  Microbiol Spectr       Date:  2018-09

5.  SuhB is an integral part of the ribosomal antitermination complex and interacts with NusA.

Authors:  Benjamin R Dudenhoeffer; Hans Schneider; Kristian Schweimer; Stefan H Knauer
Journal:  Nucleic Acids Res       Date:  2019-07-09       Impact factor: 16.971

6.  Transcription rate and transcript length drive formation of chromosomal interaction domain boundaries.

Authors:  Tung Bk Le; Michael T Laub
Journal:  EMBO J       Date:  2016-06-10       Impact factor: 11.598

7.  Structure-based functional inference of hypothetical proteins from Mycoplasma hyopneumoniae.

Authors:  Marbella Maria da Fonsêca; Arnaldo Zaha; Ernesto R Caffarena; Ana Tereza Ribeiro Vasconcelos
Journal:  J Mol Model       Date:  2011-08-26       Impact factor: 1.810

8.  SuhB Associates with Nus Factors To Facilitate 30S Ribosome Biogenesis in Escherichia coli.

Authors:  Navjot Singh; Mikhail Bubunenko; Carol Smith; David M Abbott; Anne M Stringer; Ronald Shi; Donald L Court; Joseph T Wade
Journal:  MBio       Date:  2016-03-15       Impact factor: 7.867

9.  Identification of regulatory targets for the bacterial Nus factor complex.

Authors:  Gabriele Baniulyte; Navjot Singh; Courtney Benoit; Richard Johnson; Robert Ferguson; Mauricio Paramo; Anne M Stringer; Ashley Scott; Pascal Lapierre; Joseph T Wade
Journal:  Nat Commun       Date:  2017-12-11       Impact factor: 14.919

10.  Transcription termination and antitermination of bacterial CRISPR arrays.

Authors:  Anne M Stringer; Gabriele Baniulyte; Erica Lasek-Nesselquist; Kimberley D Seed; Joseph T Wade
Journal:  Elife       Date:  2020-10-30       Impact factor: 8.140

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