UV-induced G4 DNA structures recruit ZRF1 which prevents UV-induced senescence

被引:7
|
作者
De Magis, Alessio [1 ,2 ]
Limmer, Michaela [1 ,2 ]
Mudiyam, Venkat [1 ]
Monchaud, David [3 ]
Juranek, Stefan [2 ]
Paeschke, Katrin [1 ,2 ]
机构
[1] Univ Hosp Bonn, Inst Clin Chem & Clin Pharmacol, Bonn, Germany
[2] Univ Hosp Bonn, Dept Oncol Hematol & Rheumatol, Bonn, Germany
[3] Univ Bourgogne, Inst Chim Mol Univ Bourgogne ICMUB, CNRS UMR 6302, Dijon, France
关键词
NUCLEOTIDE EXCISION-REPAIR; G-QUADRUPLEX STRUCTURES; CELLULAR SENESCENCE; DAMAGE RESPONSE; CANCER; CELLS; STABILITY; APOPTOSIS; BALANCE; BIOLOGY;
D O I
10.1038/s41467-023-42494-x
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Senescence has two roles in oncology: it is known as a potent tumor-suppressive mechanism, which also supports tissue regeneration and repair, it is also known to contribute to reduced patient resilience, which might lead to cancer recurrence and resistance after therapy. Senescence can be activated in a DNA damage-dependent and -independent manner. It is not clear which type of genomic lesions induces senescence, but it is known that UV irradiation can activate cellular senescence in photoaged skin. Proteins that support the repair of DNA damage are linked to senescence but how they contribute to senescence after UV irradiation is still unknown. Here, we unraveled a mechanism showing that upon UV irradiation multiple G-quadruplex (G4) DNA structures accumulate in cell nuclei, which leads to the recruitment of ZRF1 to these G4 sites. ZRF1 binding to G4s ensures genome stability. The absence of ZRF1 triggers an accumulation of G4 structures, improper UV lesion repair, and entry into senescence. On the molecular level loss of ZRF1 as well as high G4 levels lead to the upregulation of DDB2, a protein associated with the UV-damage repair pathway, which drives cells into senescence.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] UV-induced G4 DNA structures recruit ZRF1 which prevents UV-induced senescence
    Alessio De Magis
    Michaela Limmer
    Venkat Mudiyam
    David Monchaud
    Stefan Juranek
    Katrin Paeschke
    Nature Communications, 14
  • [2] Detection of UV-Induced DNA Damage
    不详
    ATLA-ALTERNATIVES TO LABORATORY ANIMALS, 2019, 47 (01): : 6 - 6
  • [3] UV-INDUCED TRIPLET STATE IN DNA
    RAHN, RO
    SHULMAN, RG
    LONGWORTH, JW
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1965, 53 (05) : 893 - +
  • [4] Chromophore for UV-induced immunosuppression: DNA
    Vink, AA
    Yarosh, DB
    Kripke, ML
    PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1996, 63 (04) : 383 - 386
  • [5] p38γ regulates UV-induced checkpoint signaling and repair of UV-induced DNA damage
    ChiaCheng Wu
    Xiaohua Wu
    Jiahuai Han
    Peiqing Sun
    Protein & Cell, 2010, 1 (06) : 573 - 585
  • [6] p38γ regulates UV-induced checkpoint signaling and repair of UV-induced DNA damage
    Wu, Chia-Cheng
    Wu, Xiaohua
    Han, Jiahuai
    Sun, Peiqing
    PROTEIN & CELL, 2010, 1 (06) : 573 - 583
  • [7] Quercetin prevents UV-induced local immunosuppression, but does not affect UV-induced tumor growth in SKH-1 hairless mice
    Steerenberg, PA
    Garssen, J
    Dortant, P
    vandeVliet, H
    Geerse, L
    Verlaan, APJ
    Goettsch, W
    Sontag, Y
    Norval, M
    Gibbs, NK
    BuenodeMesquita, HB
    VanLoveren, H
    PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1997, 65 (04) : 736 - 744
  • [8] UV-induced DNA damage and repair: a review
    Sinha, RP
    Häder, DP
    PHOTOCHEMICAL & PHOTOBIOLOGICAL SCIENCES, 2002, 1 (04) : 225 - 236
  • [9] Molecular Regulation of UV-Induced DNA Repair
    Shah, Palak
    He, Yu-Ying
    PHOTOCHEMISTRY AND PHOTOBIOLOGY, 2015, 91 (02) : 254 - 264
  • [10] UV-induced DNA damage and repair: a review
    Rajeshwar P. Sinha
    Donat-P. Häder
    Photochemical & Photobiological Sciences, 2002, 1 : 225 - 236