Literature DB >> 28416612

A biochemical and biophysical model of G-quadruplex DNA recognition by positive coactivator of transcription 4.

Wezley C Griffin1, Jun Gao1, Alicia K Byrd1, Shubeena Chib1, Kevin D Raney2.   

Abstract

DNA sequences that are guanine-rich have received considerable attention because of their potential to fold into a secondary, four-stranded DNA structure termed G-quadruplex (G4), which has been implicated in genomic instability and some human diseases. We have previously identified positive coactivator of transcription (PC4), a single-stranded DNA (ssDNA)-binding protein, as a novel G4 interactor. Here, to expand on these previous observations, we biochemically and biophysically characterized the interaction between PC4 and G4DNA. PC4 can bind alternative G4DNA topologies with a low nanomolar Kd value of ∼2 nm, similar to that observed for ssDNA. In consideration of the different structural features between G4DNA and ssDNA, these binding data indicated that PC4 can interact with G4DNA in a manner distinct from ssDNA. The stoichiometry of the PC4-G4 complex was 1:1 for PC4 dimer:G4 substrate. PC4 did not enhance the rate of folding of G4DNA, and formation of the PC4-G4DNA complex did not result in unfolding of the G4DNA structure. We assembled a G4DNA structure flanked by duplex DNA. We find that PC4 can interact with this G4DNA, as well as the complementary C-rich strand. Molecular docking simulations and DNA footprinting experiments suggest a model where a PC4 dimer accommodates the DNA with one monomer on the G4 strand and the second monomer bound to the C-rich strand. Collectively, these data provide a novel mode of PC4 binding to a DNA secondary structure that remains within the framework of the model for binding to ssDNA. Additionally, consideration of the PC4-G4DNA interaction could provide insight into the biological functions of PC4, which remain incompletely understood.
© 2017 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  DNA-binding protein; DNA-protein interaction; G-quadruplex; fluorescence; fluorescence anisotropy; fluorescence resonance energy transfer (FRET); molecular docking; nucleic acid chemistry; stoichiometry; transcription coactivator

Mesh:

Substances:

Year:  2017        PMID: 28416612      PMCID: PMC5465483          DOI: 10.1074/jbc.M117.776211

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


  79 in total

1.  Guanine oxidation: one- and two-electron reactions.

Authors:  Geneviève Pratviel; Bernard Meunier
Journal:  Chemistry       Date:  2006-08-07       Impact factor: 5.236

2.  DNA topoisomerase I and PC4 can interact with human TFIIIC to promote both accurate termination and transcription reinitiation by RNA polymerase III.

Authors:  Z Wang; R G Roeder
Journal:  Mol Cell       Date:  1998-04       Impact factor: 17.970

3.  Yeast transcription co-activator Sub1 and its human homolog PC4 preferentially bind to G-quadruplex DNA.

Authors:  Jun Gao; Boris L Zybailov; Alicia K Byrd; Wezley C Griffin; Shubeena Chib; Samuel G Mackintosh; Alan J Tackett; Kevin D Raney
Journal:  Chem Commun (Camb)       Date:  2015-04-28       Impact factor: 6.222

4.  Transcription-positive cofactor 4 forms complexes with HSSB (RPA) on single-stranded DNA and influences HSSB-dependent enzymatic synthesis of simian virus 40 DNA.

Authors:  Z Q Pan; H Ge; A A Amin; J Hurwitz
Journal:  J Biol Chem       Date:  1996-09-06       Impact factor: 5.157

Review 5.  DNA damage and repair: from molecular mechanisms to health implications.

Authors:  Fabio Altieri; Caterina Grillo; Manola Maceroni; Silvia Chichiarelli
Journal:  Antioxid Redox Signal       Date:  2008-05       Impact factor: 8.401

6.  RPA-mediated unfolding of systematically varying G-quadruplex structures.

Authors:  Sujay Ray; Mohammad H Qureshi; Dominic W Malcolm; Jagat B Budhathoki; Uğur Celik; Hamza Balci
Journal:  Biophys J       Date:  2013-05-21       Impact factor: 4.033

7.  Transcription cofactor PC4 plays essential roles in collaboration with the small subunit of general transcription factor TFIIE.

Authors:  Yusuke Akimoto; Seiji Yamamoto; Satoshi Iida; Yutaka Hirose; Aki Tanaka; Fumio Hanaoka; Yoshiaki Ohkuma
Journal:  Genes Cells       Date:  2014-10-13       Impact factor: 1.891

Review 8.  Targeting G-quadruplexes in gene promoters: a novel anticancer strategy?

Authors:  Shankar Balasubramanian; Laurence H Hurley; Stephen Neidle
Journal:  Nat Rev Drug Discov       Date:  2011-04       Impact factor: 84.694

9.  Molecular crowding creates an essential environment for the formation of stable G-quadruplexes in long double-stranded DNA.

Authors:  Ke-wei Zheng; Zhao Chen; Yu-hua Hao; Zheng Tan
Journal:  Nucleic Acids Res       Date:  2009-10-25       Impact factor: 16.971

10.  Recruitment of RNA polymerase II cofactor PC4 to DNA damage sites.

Authors:  Oliver Mortusewicz; Wera Roth; Na Li; M Cristina Cardoso; Michael Meisterernst; Heinrich Leonhardt
Journal:  J Cell Biol       Date:  2008-12-01       Impact factor: 10.539

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  3 in total

1.  Electrophoretic Mobility Shift Assay and Dimethyl Sulfate Footprinting for Characterization of G-Quadruplexes and G-Quadruplex-Protein Complexes.

Authors:  Buket Onel; Guanhui Wu; Daekyu Sun; Clement Lin; Danzhou Yang
Journal:  Methods Mol Biol       Date:  2019

Review 2.  Sub1/PC4, a multifaceted factor: from transcription to genome stability.

Authors:  Miguel Garavís; Olga Calvo
Journal:  Curr Genet       Date:  2017-05-31       Impact factor: 3.886

Review 3.  The Functional Consequences of Eukaryotic Topoisomerase 1 Interaction with G-Quadruplex DNA.

Authors:  Alexandra Berroyer; Nayun Kim
Journal:  Genes (Basel)       Date:  2020-02-12       Impact factor: 4.141

  3 in total

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