Literature DB >> 31076845

DksA and DNA double-strand break repair.

Kamila K Myka1,2, Max E Gottesman3.   

Abstract

We use genetic assays to suggest that transcription-coupled repair or new origin formation in Escherichia coli involves removal of RNAP to create an RNA primer for DNA synthesis. Transcription factor DksA was shown to play a role in numerous reactions involving RNA polymerase. Some, but not all, of the activities of DksA at promoters or during transcription elongation require (p)ppGpp. In addition to its role during transcription, DksA is also involved in maintaining genome integrity. Cells lacking DksA are sensitive to multiple DNA damaging agents including UV light, ionizing radiation, mitomycin C, and nalidixic acid. Here, we focus on two recent studies addressing the importance of DksA in the repair of double-strand breaks (DSBs), one by Sivaramakrishnan et al. (Nature 550:214-218, 2017) and one originating in our laboratory, Myka et al. (Mol Microbiol 111:1382-1397. https://doi.org/10.1111/mmi.14227 , 2019). It appears that depending on the type and possibly location of DNA damage, DksA can play either a passive or an active role in DSB repair. The passive role relies on exclusion of anti-backtracking factors from the RNAP secondary channel. The exact mechanism of active DksA-mediated DNA repair is unknown. However, DksA was proposed to destabilize transcription complexes, thus clearing the way for recombination and DNA repair. Based on the requirement for DksA, both in repair of DSBs and the R-loop-dependent formation of new origins of DNA replication, we propose that DksA may allow for removal of RNAP without unwinding of the RNA:DNA hybrid, which can then be extended by a DNA polymerase. This mechanism obviates the need for RNAP backtracking to repair damaged DNA.

Entities:  

Keywords:  (p)ppGpp; Anti-backtracking factors; Double-strand break repair; Nalidixic acid; Phleomycin; Replication–transcription conflicts; Transcription factor DksA; Type II topoisomerase

Mesh:

Substances:

Year:  2019        PMID: 31076845     DOI: 10.1007/s00294-019-00983-x

Source DB:  PubMed          Journal:  Curr Genet        ISSN: 0172-8083            Impact factor:   3.886


  36 in total

1.  Regulation through the secondary channel--structural framework for ppGpp-DksA synergism during transcription.

Authors:  Anna Perederina; Vladimir Svetlov; Marina N Vassylyeva; Tahir H Tahirov; Shigeyuki Yokoyama; Irina Artsimovitch; Dmitry G Vassylyev
Journal:  Cell       Date:  2004-08-06       Impact factor: 41.582

2.  Allosteric control of Escherichia coli rRNA promoter complexes by DksA.

Authors:  Steven T Rutherford; Courtney L Villers; Jeong-Hyun Lee; Wilma Ross; Richard L Gourse
Journal:  Genes Dev       Date:  2009-01-15       Impact factor: 11.361

3.  UvrD facilitates DNA repair by pulling RNA polymerase backwards.

Authors:  Vitaly Epshtein; Venu Kamarthapu; Katelyn McGary; Vladimir Svetlov; Beatrix Ueberheide; Sergey Proshkin; Alexander Mironov; Evgeny Nudler
Journal:  Nature       Date:  2014-01-08       Impact factor: 49.962

Review 4.  Stable DNA replication: interplay between DNA replication, homologous recombination, and transcription.

Authors:  T Kogoma
Journal:  Microbiol Mol Biol Rev       Date:  1997-06       Impact factor: 11.056

Review 5.  Maintenance of genome stability: the unifying role of interconnections between the DNA damage response and RNA-processing pathways.

Authors:  B Mikolaskova; M Jurcik; I Cipakova; M Kretova; M Chovanec; L Cipak
Journal:  Curr Genet       Date:  2018-03-01       Impact factor: 3.886

6.  The magic spot: a ppGpp binding site on E. coli RNA polymerase responsible for regulation of transcription initiation.

Authors:  Wilma Ross; Catherine E Vrentas; Patricia Sanchez-Vazquez; Tamas Gaal; Richard L Gourse
Journal:  Mol Cell       Date:  2013-04-25       Impact factor: 17.970

7.  ppGpp couples transcription to DNA repair in E. coli.

Authors:  Venu Kamarthapu; Vitaly Epshtein; Bradley Benjamin; Sergey Proshkin; Alexander Mironov; Michael Cashel; Evgeny Nudler
Journal:  Science       Date:  2016-05-20       Impact factor: 47.728

Review 8.  Transcriptional Responses to ppGpp and DksA.

Authors:  Richard L Gourse; Albert Y Chen; Saumya Gopalkrishnan; Patricia Sanchez-Vazquez; Angela Myers; Wilma Ross
Journal:  Annu Rev Microbiol       Date:  2018-09-08       Impact factor: 15.500

9.  Transcription initiation factor DksA has diverse effects on RNA chain elongation.

Authors:  Ran Furman; Anastasiya Sevostyanova; Irina Artsimovitch
Journal:  Nucleic Acids Res       Date:  2011-12-30       Impact factor: 16.971

10.  The transcription fidelity factor GreA impedes DNA break repair.

Authors:  Priya Sivaramakrishnan; Leonardo A Sepúlveda; Jennifer A Halliday; Jingjing Liu; María Angélica Bravo Núñez; Ido Golding; Susan M Rosenberg; Christophe Herman
Journal:  Nature       Date:  2017-10-04       Impact factor: 49.962

View more
  8 in total

1.  Uncovering Bleomycin-Induced Genomic Alterations and Underlying Mechanisms in the Yeast Saccharomyces cerevisiae.

Authors:  Dao-Qiong Zheng; Yu-Ting Wang; Ying-Xuan Zhu; Huan Sheng; Ke-Jing Li; Yang Sui; Ke Zhang
Journal:  Appl Environ Microbiol       Date:  2021-11-03       Impact factor: 5.005

2.  DksA coordinates bile-mediated regulation of virulence-associated phenotypes in type three secretion system-positive Vibrio cholerae.

Authors:  Madeline K Sofia; Michelle Dziejman
Journal:  Microbiology (Reading)       Date:  2021-02       Impact factor: 2.777

3.  The DnaK/DnaJ Chaperone System Enables RNA Polymerase-DksA Complex Formation in Salmonella Experiencing Oxidative Stress.

Authors:  Ju-Sim Kim; Lin Liu; Andrés Vázquez-Torres
Journal:  mBio       Date:  2021-05-11       Impact factor: 7.867

4.  The δ subunit and NTPase HelD institute a two-pronged mechanism for RNA polymerase recycling.

Authors:  Hao-Hong Pei; Tarek Hilal; Zhuo A Chen; Yong-Heng Huang; Yuan Gao; Nelly Said; Bernhard Loll; Juri Rappsilber; Georgiy A Belogurov; Irina Artsimovitch; Markus C Wahl
Journal:  Nat Commun       Date:  2020-12-18       Impact factor: 14.919

5.  The Role of Replication Clamp-Loader Protein HolC of Escherichia coli in Overcoming Replication/Transcription Conflicts.

Authors:  Deani L Cooper; Taku Harada; Samia Tamazi; Alexander E Ferrazzoli; Susan T Lovett
Journal:  mBio       Date:  2021-03-09       Impact factor: 7.867

6.  DNA Breaks-Mediated Fitness Cost Reveals RNase HI as a New Target for Selectively Eliminating Antibiotic-Resistant Bacteria.

Authors:  Roberto Balbontín; Nelson Frazão; Isabel Gordo
Journal:  Mol Biol Evol       Date:  2021-07-29       Impact factor: 16.240

7.  Virus-Host Interaction Gets Curiouser and Curiouser. PART II: Functional Transcriptomics of the E. coli DksA-Deficient Cell upon Phage P1vir Infection.

Authors:  Grzegorz M Cech; Agnieszka Szalewska-Pałasz; Katarzyna Potrykus; Anna Kloska
Journal:  Int J Mol Sci       Date:  2021-06-07       Impact factor: 5.923

8.  Virus-Host Interaction Gets Curiouser and Curiouser. PART I: Phage P1vir Enhanced Development in an E. coli DksA-Deficient Cell.

Authors:  Grzegorz M Cech; Anna Kloska; Klaudyna Krause; Katarzyna Potrykus; Michael Cashel; Agnieszka Szalewska-Pałasz
Journal:  Int J Mol Sci       Date:  2021-05-31       Impact factor: 5.923

  8 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.