Literature DB >> 34083046

Function and molecular mechanisms of APE2 in genome and epigenome integrity.

Yunfeng Lin1, Anne McMahon1, Garrett Driscoll1, Sharon Bullock1, Jianjun Zhao2, Shan Yan3.   

Abstract

APE2 is a rising vital player in the maintenance of genome and epigenome integrity. In the past several years, a series of studies have shown the critical roles and functions of APE2. We seek to provide the first comprehensive review on several aspects of APE2 in genome and epigenome integrity. We first summarize the distinct functional domains or motifs within APE2 including EEP (endonuclease/exonuclease/phosphatase) domain, PIP box and Zf-GRF motifs from eight species (i.e., Homo sapiens, Mus musculus, Xenopus laevis, Ciona intestinalis, Arabidopsis thaliana, Schizosaccharomyces pombe, Saccharomyces cerevisiae, and Trypanosoma cruzi). Then we analyze various APE2 nuclease activities and associated DNA substrates, including AP endonuclease, 3'-phosphodiesterase, 3'-phosphatase, and 3'-5' exonuclease activities. We also examine several APE2 interaction proteins, including PCNA, Chk1, APE1, Myh1, and homologous recombination (HR) factors such as Rad51, Rad52, BRCA1, BRCA2, and BARD1. Furthermore, we provide insights into the roles of APE2 in various DNA repair pathways (base excision repair, single-strand break repair, and double-strand break repair), DNA damage response (DDR) pathways (ATR-Chk1 and p53-dependent), immunoglobulin class switch recombination and somatic hypermutation, as well as active DNA demethylation. Lastly, we summarize critical functions of APE2 in growth, development, and diseases. In this review, we provide the first comprehensive perspective which dissects all aspects of the multiple-function protein APE2 in genome and epigenome integrity.
Copyright © 2020 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  APE2; ATR-Chk1 pathway; DNA demethylation; DNA repair; Genome and epigenome integrity; Immune response

Mesh:

Substances:

Year:  2020        PMID: 34083046      PMCID: PMC8287789          DOI: 10.1016/j.mrrev.2020.108347

Source DB:  PubMed          Journal:  Mutat Res Rev Mutat Res        ISSN: 1383-5742            Impact factor:   5.657


  86 in total

Review 1.  Base excision repair and lesion-dependent subpathways for repair of oxidative DNA damage.

Authors:  David Svilar; Eva M Goellner; Karen H Almeida; Robert W Sobol
Journal:  Antioxid Redox Signal       Date:  2010-10-28       Impact factor: 8.401

Review 2.  TET enzymes, TDG and the dynamics of DNA demethylation.

Authors:  Rahul M Kohli; Yi Zhang
Journal:  Nature       Date:  2013-10-24       Impact factor: 49.962

Review 3.  The roles of APE1, APE2, DNA polymerase beta and mismatch repair in creating S region DNA breaks during antibody class switch.

Authors:  Carol E Schrader; Jeroen E J Guikema; Xiaoming Wu; Janet Stavnezer
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2009-03-12       Impact factor: 6.237

4.  A non-canonical role for the DNA glycosylase NEIL3 in suppressing APE1 endonuclease-mediated ssDNA damage.

Authors:  Anh Ha; Yunfeng Lin; Shan Yan
Journal:  J Biol Chem       Date:  2020-08-14       Impact factor: 5.157

Review 5.  New insights into abasic site repair and tolerance.

Authors:  Petria S Thompson; David Cortez
Journal:  DNA Repair (Amst)       Date:  2020-04-30

6.  The DNA repair enzyme apurinic/apyrimidinic endonuclease (Apex nuclease) 2 has the potential to protect against down-regulation of chondrocyte activity in osteoarthritis.

Authors:  Naoko Yui; Hirotaka Yoshioka; Hiroto Fujiya; Haruki Musha; Moroe Beppu; Rie Karasawa; Kazuo Yudoh
Journal:  Int J Mol Sci       Date:  2014-08-25       Impact factor: 5.923

7.  Apn2 resolves blocked 3' ends and suppresses Top1-induced mutagenesis at genomic rNMP sites.

Authors:  Fuyang Li; Quan Wang; Ja-Hwan Seol; Jun Che; Xiaoyu Lu; Eun Yong Shim; Sang Eun Lee; Hengyao Niu
Journal:  Nat Struct Mol Biol       Date:  2019-02-18       Impact factor: 15.369

Review 8.  Base Excision Repair in the Immune System: Small DNA Lesions With Big Consequences.

Authors:  Maria Stratigopoulou; Tijmen P van Dam; Jeroen E J Guikema
Journal:  Front Immunol       Date:  2020-05-29       Impact factor: 7.561

9.  APE1 senses DNA single-strand breaks for repair and signaling.

Authors:  Yunfeng Lin; Jude Raj; Jia Li; Anh Ha; Md Akram Hossain; Christine Richardson; Pinku Mukherjee; Shan Yan
Journal:  Nucleic Acids Res       Date:  2020-02-28       Impact factor: 19.160

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1.  Large-scale analyses of the X chromosome in 2,354 infertile men discover recurrently affected genes associated with spermatogenic failure.

Authors:  Antoni Riera-Escamilla; Matthias Vockel; Liina Nagirnaja; Miguel J Xavier; Albert Carbonell; Daniel Moreno-Mendoza; Marc Pybus; Ginevra Farnetani; Viktoria Rosta; Francesca Cioppi; Corinna Friedrich; Manon S Oud; Godfried W van der Heijden; Armin Soave; Thorsten Diemer; Elisabet Ars; Josvany Sánchez-Curbelo; Sabine Kliesch; Moira K O'Bryan; Eduard Ruiz-Castañe; Fernando Azorín; Joris A Veltman; Kenneth I Aston; Donald F Conrad; Frank Tüttelmann; Csilla Krausz
Journal:  Am J Hum Genet       Date:  2022-07-08       Impact factor: 11.043

2.  APE1 assembles biomolecular condensates to promote the ATR-Chk1 DNA damage response in nucleolus.

Authors:  Jia Li; Haichao Zhao; Anne McMahon; Shan Yan
Journal:  Nucleic Acids Res       Date:  2022-10-14       Impact factor: 19.160

3.  The APE2 Exonuclease Is a Client of the Hsp70-Hsp90 Axis in Yeast and Mammalian Cells.

Authors:  Siddhi Omkar; Tasaduq H Wani; Bo Zheng; Megan M Mitchem; Andrew W Truman
Journal:  Biomolecules       Date:  2022-06-21

4.  Editorial: Mechanistic studies of genome integrity, environmental health, and cancer etiology.

Authors:  Shan Yan; Jianjun Zhao; Michael Kemp; Robert W Sobol
Journal:  Front Cell Dev Biol       Date:  2022-09-28
  4 in total

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