Werner Syndrome Protein (WRN) Regulates Cell Proliferation and the Human Papillomavirus 16 Life Cycle during Epithelial Differentiation

被引:15
作者
James, Claire D. [1 ]
Das, Dipon [1 ]
Morgan, Ethan L. [2 ,3 ,5 ]
Otoa, Raymonde [1 ]
Macdonald, Andrew [2 ,3 ]
Morgan, Iain M. [1 ,4 ]
机构
[1] Virginia Commonwealth Univ VCU, Philips Inst Oral Hlth Res, Sch Dent, Richmond, VA 23284 USA
[2] Univ Leeds, Fac Biol Sci, Sch Mol & Cellular Biol, Leeds, W Yorkshire, England
[3] Univ Leeds, Astbury Ctr Struct Mol Biol, Leeds, W Yorkshire, England
[4] VCU Massey Canc Ctr, Richmond, VA 23298 USA
[5] NIDCD, Tumor Biol Sect, NIH, Bethesda, MD USA
基金
英国医学研究理事会; 英国惠康基金;
关键词
WRN; Werner helicase; human papillomavirus 16; replication; life cycle; DNA damage; head and neck cancer; cervical cancer; epithelial differentiation; keratinocyte; SIRT1; Werner; human papillomavirus; DNA-DAMAGE RESPONSE; PRODUCTIVE REPLICATION; REPAIR FACTORS; E2; E7; INFECTION; TARGETS; TOPBP1; SAMHD1; DOMAIN;
D O I
10.1128/mSphere.00858-20
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Human papillomaviruses recruit a host of DNA damage response factors to their viral genome to facilitate homologous recombination replication in association with the viral replication factors El and E2. We previously demonstrated that SIRT1 deacetylation of WRN promotes recruitment of WRN to E1-E2 replicating DNA and that WRN regulates both the levels and fidelity of E1-E2 replication. The deacetylation of WRN by SIRT1 results in an active protein able to complex with replicating DNA, but a protein that is less stable. Here, we demonstrate an inverse correlation between SIRT1 and WRN in CIN cervical lesions compared to normal control tissue, supporting our model of SIRT1 deacetylation destabilizing WRN protein. We CRISPR/Cas9 edited N/Tert-1 and NTTert-l+HPV16 cells to knock out WRN protein expression and subjected the cells to organotypic raft cultures. In N/Tert-1 cells without WRN expression, there was enhanced basal cell proliferation, DNA damage, and thickening of the differentiated epithelium. In NfTert-1 +HPV16 cells, there was enhanced basal cell proliferation, increased DNA damage throughout the epithelium, and increased viral DNA replication. Overall, the results demonstrate that the expression of WRN is required to control the proliferation of N/Tert-1 cells and controls the HPV16 life cycle in these cells. This complements our previous data demonstrating that WRN controls the levels and fidelity of HPV16 E1-E2 DNA replication. The results describe a new role for WRN, a tumor suppressor, in controlling keratinocyte differentiation and the HPV16 life cycle. IMPORTANCE HPV16 is the major human viral carcinogen, responsible for around 3 to 4% of all cancers worldwide. Our understanding of how the viral replication machinery interacts with host factors to control/activate the DNA damage response to promote the viral life cycle remains incomplete. Recently, we demonstrated a SIRT1-WRN axis that controls HPV16 replication, and here we demonstrate that this axis persists in clinical cervical lesions induced by HPV16. Here, we describe the effects of WRN depletion on cellular differentiation with or without HPV16; WRN depletion results in enhanced proliferation and DNA damage irrespective of HPV16 status. Also, WRN is a restriction factor for the viral life cycle since replication is disrupted in the absence of WRN. Future studies will focus on enhancing our understanding of how WRN regulates viral replication. Our goal is to ultimately identify cellular factors essential for HPV16 replication that can be targeted for therapeutic gain.
引用
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页数:16
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共 60 条
[1]   ATR and ATM differently regulate WRN to prevent DSBs at stalled replication forks and promote replication fork recovery [J].
Ammazzalorso, Francesca ;
Pirzio, Livia Maria ;
Bignami, Margherita ;
Franchitto, Annapaola ;
Pichierri, Pietro .
EMBO JOURNAL, 2010, 29 (18) :3156-3169
[2]   Modulation of the DNA damage response during the life cycle of human papillomaviruses [J].
Anacker, Daniel C. ;
Moody, Cary A. .
VIRUS RESEARCH, 2017, 231 :41-49
[3]   Productive Replication of Human Papillomavirus 31 Requires DNA Repair Factor Nbs1 [J].
Anacker, Daniel C. ;
Gautam, Dipendra ;
Gillespie, Kenric A. ;
Chappell, William H. ;
Moody, Cary A. .
JOURNAL OF VIROLOGY, 2014, 88 (15) :8528-8544
[4]   Targeting human papillomavirus genome replication for antiviral drug discovery [J].
Archambault, Jacques ;
Melendy, Thomas .
ANTIVIRAL THERAPY, 2013, 18 (03) :271-283
[5]   Checkpoint-dependent and independent roles of the Werner syndrome protein in preserving genome integrity in response to mild replication stress [J].
Basile, Giorgia ;
Leuzzi, Giuseppe ;
Pichierri, Pietro ;
Franchitto, Annapaola .
NUCLEIC ACIDS RESEARCH, 2014, 42 (20) :12628-12639
[6]   A functional interaction between the human papillomavirus 16 transcription/replication factor E2 and the DNA damage response protein TopBP1 [J].
Boner, W ;
Taylor, ER ;
Tsirimonaki, E ;
Yamane, K ;
Campo, MS ;
Morgan, IM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (25) :22297-22303
[7]   Why Human Papillomaviruses Activate the DNA Damage Response (DDR) and How Cellular and Viral Replication Persists in the Presence of DDR Signaling [J].
Bristol, Molly L. ;
Das, Dipon ;
Morgan, Iain M. .
VIRUSES-BASEL, 2017, 9 (10)
[8]   Homologous Recombination Repair Factors Rad51 and BRCA1 Are Necessary for Productive Replication of Human Papillomavirus 31 [J].
Chappell, William H. ;
Gautam, Dipendra ;
Ok, Suzan T. ;
Johnson, Bryan A. ;
Anacker, Daniel C. ;
Moody, Cary A. .
JOURNAL OF VIROLOGY, 2016, 90 (05) :2639-2652
[9]   SAMHD1 and the innate immune response to cytosolic DNA during DNA replication [J].
Coquel, Flavie ;
Neumayer, Christoph ;
Lin, Yea-Lih ;
Pasero, Philippe .
CURRENT OPINION IN IMMUNOLOGY, 2019, 56 :24-30
[10]   SAMHD1 Promotes DNA End Resection to Facilitate DNA Repair by Homologous Recombination [J].
Daddacha, Waaqo ;
Koyen, Allyson E. ;
Bastien, Amanda J. ;
Head, PamelaSara E. ;
Dhere, Vishal R. ;
Nabeta, Geraldine N. ;
Connolly, Erin C. ;
Werner, Erica ;
Madden, Matthew Z. ;
Daly, Michele B. ;
Minten, Elizabeth V. ;
Whelan, Donna R. ;
Schlafstein, Ashley J. ;
Zhang, Hui ;
Anand, Roopesh ;
Doronio, Christine ;
Withers, Allison E. ;
Shepard, Caitlin ;
Sundaram, Ranjini K. ;
Deng, Xingming ;
Dynan, William S. ;
Wang, Ya ;
Bindra, Ranjit S. ;
Cejka, Petr ;
Rothenberg, Eli ;
Doetsch, Paul W. ;
Kim, Baek ;
Yu, David S. .
CELL REPORTS, 2017, 20 (08) :1921-1935