Literature DB >> 30624727

Pan-cancer transcriptomic analysis dissects immune and proliferative functions of APOBEC3 cytidine deaminases.

Joseph C F Ng1, Jelmar Quist2, Anita Grigoriadis2, Michael H Malim3, Franca Fraternali1.   

Abstract

APOBEC3 cytidine deaminases are largely known for their innate immune protection from viral infections. Recently, members of the family have been associated with a distinct mutational activity in some cancer types. We report a pan-tissue, pan-cancer analysis of RNA-seq data specific to the APOBEC3 genes in 8,951 tumours, 786 cancer cell lines and 6,119 normal tissues. By deconvolution of levels of different cell types in tumour admixtures, we demonstrate that APOBEC3B (A3B), the primary candidate as a cancer mutagen, shows little association with immune cell types compared to its paralogues. We present a pipeline called RESPECTEx (REconstituting SPecific Cell-Type Expression) and use it to deconvolute cell-type specific expression levels in a given cohort of tumour samples. We functionally annotate APOBEC3 co-expressing genes, and create an interactive visualization tool which 'barcodes' the functional enrichment (http://fraternalilab.kcl.ac.uk/apobec-barcodes/). These analyses reveal that A3B expression correlates with cell cycle and DNA repair genes, whereas the other APOBEC3 members display specificity for immune processes and immune cell populations. We offer molecular insights into the functions of individual APOBEC3 proteins in antiviral and proliferative contexts, and demonstrate the diversification this family of enzymes displays at the transcriptomic level, despite their high similarity in protein sequences and structures.
© The Author(s) 2019. Published by Oxford University Press on behalf of Nucleic Acids Research.

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Year:  2019        PMID: 30624727      PMCID: PMC6379723          DOI: 10.1093/nar/gky1316

Source DB:  PubMed          Journal:  Nucleic Acids Res        ISSN: 0305-1048            Impact factor:   16.971


  69 in total

1.  Single-strand specificity of APOBEC3G accounts for minus-strand deamination of the HIV genome.

Authors:  Qin Yu; Renate König; Satish Pillai; Kristopher Chiles; Mary Kearney; Sarah Palmer; Douglas Richman; John M Coffin; Nathaniel R Landau
Journal:  Nat Struct Mol Biol       Date:  2004-04-18       Impact factor: 15.369

2.  Characterization of molecular attributes that influence LINE-1 restriction by all seven human APOBEC3 proteins.

Authors:  Tyler Milston Renner; Kasandra Bélanger; Laura Rose Goodwin; Mark Campbell; Marc-André Langlois
Journal:  Virology       Date:  2018-05-31       Impact factor: 3.616

3.  Site-specific mapping of the human SUMO proteome reveals co-modification with phosphorylation.

Authors:  Ivo A Hendriks; David Lyon; Clifford Young; Lars J Jensen; Alfred C O Vertegaal; Michael L Nielsen
Journal:  Nat Struct Mol Biol       Date:  2017-01-23       Impact factor: 15.369

4.  A computational analysis of the structural determinants of APOBEC3's catalytic activity and vulnerability to HIV-1 Vif.

Authors:  Shivender M D Shandilya; Markus-Frederik Bohn; Celia A Schiffer
Journal:  Virology       Date:  2014-10-29       Impact factor: 3.616

5.  APOBEC3B is an enzymatic source of mutation in breast cancer.

Authors:  Michael B Burns; Lela Lackey; Michael A Carpenter; Anurag Rathore; Allison M Land; Brandon Leonard; Eric W Refsland; Delshanee Kotandeniya; Natalia Tretyakova; Jason B Nikas; Douglas Yee; Nuri A Temiz; Duncan E Donohue; Rebecca M McDougle; William L Brown; Emily K Law; Reuben S Harris
Journal:  Nature       Date:  2013-02-06       Impact factor: 49.962

6.  Quantitative profiling of the full APOBEC3 mRNA repertoire in lymphocytes and tissues: implications for HIV-1 restriction.

Authors:  Eric W Refsland; Mark D Stenglein; Keisuke Shindo; John S Albin; William L Brown; Reuben S Harris
Journal:  Nucleic Acids Res       Date:  2010-03-22       Impact factor: 16.971

7.  Impaired interferon signaling is a common immune defect in human cancer.

Authors:  Rebecca J Critchley-Thorne; Diana L Simons; Ning Yan; Andrea K Miyahira; Frederick M Dirbas; Denise L Johnson; Susan M Swetter; Robert W Carlson; George A Fisher; Albert Koong; Susan Holmes; Peter P Lee
Journal:  Proc Natl Acad Sci U S A       Date:  2009-05-18       Impact factor: 11.205

8.  Defining APOBEC3 expression patterns in human tissues and hematopoietic cell subsets.

Authors:  Fransje A Koning; Edmund N C Newman; Eun-Young Kim; Kevin J Kunstman; Steven M Wolinsky; Michael H Malim
Journal:  J Virol       Date:  2009-07-08       Impact factor: 5.103

9.  Robust enumeration of cell subsets from tissue expression profiles.

Authors:  Aaron M Newman; Chih Long Liu; Michael R Green; Andrew J Gentles; Weiguo Feng; Yue Xu; Chuong D Hoang; Maximilian Diehn; Ash A Alizadeh
Journal:  Nat Methods       Date:  2015-03-30       Impact factor: 28.547

Review 10.  Perspective: APOBEC mutagenesis in drug resistance and immune escape in HIV and cancer evolution.

Authors:  S Venkatesan; R Rosenthal; N Kanu; N McGranahan; J Bartek; S A Quezada; J Hare; R S Harris; C Swanton
Journal:  Ann Oncol       Date:  2018-03-01       Impact factor: 32.976

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  16 in total

1.  APOBEC3F expression in triple-negative breast cancer is associated with tumor microenvironment infiltration and activation of cancer immunity and improved survival.

Authors:  Rongrong Wu; Masanori Oshi; Mariko Asaoka; Michelle R Huyser; Yoshihisa Tokumaru; Akimitsu Yamada; Li Yan; Itaru Endo; Takashi Ishikawa; Kazuaki Takabe
Journal:  Am J Cancer Res       Date:  2022-02-15       Impact factor: 6.166

Review 2.  Molecular origins of APOBEC-associated mutations in cancer.

Authors:  Mia Petljak; John Maciejowski
Journal:  DNA Repair (Amst)       Date:  2020-07-06

3.  Endogenous APOBEC3B overexpression characterizes HPV-positive and HPV-negative oral epithelial dysplasias and head and neck cancers.

Authors:  Prokopios P Argyris; Peter E Wilkinson; Matthew C Jarvis; Kelly R Magliocca; Mihir R Patel; Rachel I Vogel; Rajaram Gopalakrishnan; Ioannis G Koutlas; Reuben S Harris
Journal:  Mod Pathol       Date:  2020-07-06       Impact factor: 7.842

4.  Replication catastrophe induced by cyclic hypoxia leads to increased APOBEC3B activity.

Authors:  Samuel B Bader; Tiffany S Ma; Charlotte J Simpson; Jiachen Liang; Sakura Eri B Maezono; Monica M Olcina; Francesca M Buffa; Ester M Hammond
Journal:  Nucleic Acids Res       Date:  2021-07-21       Impact factor: 16.971

5.  Induction of APOBEC3 Exacerbates DNA Replication Stress and Chromosomal Instability in Early Breast and Lung Cancer Evolution.

Authors:  Subramanian Venkatesan; Mihaela Angelova; Clare Puttick; Haoran Zhai; Deborah R Caswell; Wei-Ting Lu; Michelle Dietzen; Panagiotis Galanos; Konstantinos Evangelou; Roberto Bellelli; Emilia L Lim; Thomas B K Watkins; Andrew Rowan; Vitor H Teixeira; Yue Zhao; Haiquan Chen; Bryan Ngo; Lykourgos-Panagiotis Zalmas; Maise Al Bakir; Sebastijan Hobor; Eva Grönroos; Adam Pennycuick; Ersilia Nigro; Brittany B Campbell; William L Brown; Ayse U Akarca; Teresa Marafioti; Mary Y Wu; Michael Howell; Simon J Boulton; Cosetta Bertoli; Tim R Fenton; Robertus A M de Bruin; Apolinar Maya-Mendoza; Eric Santoni-Rugiu; Robert E Hynds; Vassilis G Gorgoulis; Mariam Jamal-Hanjani; Nicholas McGranahan; Reuben S Harris; Sam M Janes; Jirina Bartkova; Samuel F Bakhoum; Jiri Bartek; Nnennaya Kanu; Charles Swanton
Journal:  Cancer Discov       Date:  2021-05-04       Impact factor: 38.272

6.  APOBEC3B reporter myeloma cell lines identify DNA damage response pathways leading to APOBEC3B expression.

Authors:  Hiroyuki Yamazaki; Kotaro Shirakawa; Tadahiko Matsumoto; Yasuhiro Kazuma; Hiroyuki Matsui; Yoshihito Horisawa; Emani Stanford; Anamaria Daniela Sarca; Ryutaro Shirakawa; Keisuke Shindo; Akifumi Takaori-Kondo
Journal:  PLoS One       Date:  2020-01-08       Impact factor: 3.240

7.  Alternative splicing of APOBEC3D generates functional diversity and its role as a DNA mutator.

Authors:  Hisashi Takei; Hirofumi Fukuda; Gilbert Pan; Hiroyuki Yamazaki; Tadahiko Matsumoto; Yasuhiro Kazuma; Masanori Fujii; Sohei Nakayama; Ikei S Kobayashi; Keisuke Shindo; Riu Yamashita; Kotaro Shirakawa; Akifumi Takaori-Kondo; Susumu S Kobayashi
Journal:  Int J Hematol       Date:  2020-06-12       Impact factor: 2.490

8.  An Integrated Pan-Cancer Analysis and Structure-Based Virtual Screening of GPR15.

Authors:  Yanjing Wang; Xiangeng Wang; Yi Xiong; Cheng-Dong Li; Qin Xu; Lu Shen; Aman Chandra Kaushik; Dong-Qing Wei
Journal:  Int J Mol Sci       Date:  2019-12-10       Impact factor: 5.923

9.  Identification of new driver and passenger mutations within APOBEC-induced hotspot mutations in bladder cancer.

Authors:  Ming-Jun Shi; Xiang-Yu Meng; Jacqueline Fontugne; Chun-Long Chen; François Radvanyi; Isabelle Bernard-Pierrot
Journal:  Genome Med       Date:  2020-09-28       Impact factor: 11.117

10.  Understanding the structural details of APOBEC3-DNA interactions using graph-based representations.

Authors:  J C-F Ng; F Fraternali
Journal:  Curr Res Struct Biol       Date:  2020-08-12
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