Xpg limits the expansion of haematopoietic stem and progenitor cells after ionising radiation

被引:7
|
作者
Avila, Alush I. [1 ]
Illing, Anett [2 ]
Becker, Friedrich [1 ]
Maerz, Lars D. [3 ]
Morita, Yohei [1 ]
Philipp, Melanie [3 ]
Burkhalter, Martin D. [1 ,3 ]
机构
[1] Fritz Lipmann Inst, Leibniz Inst Aging, D-07745 Jena, Germany
[2] Univ Ulm, Dept Internal Med 1, D-89081 Ulm, Germany
[3] Univ Ulm, Inst Biochem & Mol Biol, D-89081 Ulm, Germany
关键词
NUCLEOTIDE-EXCISION-REPAIR; ACUTE MYELOID-LEUKEMIA; EMBRYONIC CELLULAR PROLIFERATION; PIGMENTOSUM GROUP-G; XERODERMA-PIGMENTOSUM; DNA-REPAIR; COCKAYNE-SYNDROME; LIFE-SPAN; GENE; MOUSE;
D O I
10.1093/nar/gkw376
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Reduced capacity of genome maintenance represents a problem for any organism, potentially causing premature death, carcinogenesis, or accelerated ageing. Strikingly though, loss of certain genome stability factors can be beneficial, especially for the maintenance of tissue stem cells of the intestine and the haematopoietic system. We therefore screened for genome stability factors negatively impacting maintenance of haematopoietic stem cells (HSC) in the context of ionising radiation (IR). We found that in vivo knock down of Xeroderma pigmentosum, complementation group G (Xpg) causes elevation of HSC numbers after IR treatment, while numbers of haematopoietic progenitors are elevated to a lesser extent. IR rapidly induces Xpg both on mRNA and on protein level. Prevention of this induction does not influence activation of the checkpoint cascade, yet attenuates late checkpoint steps such as induction of p21 and Noxa. This causes a leaky cell cycle arrest and lower levels of apoptosis, both contributing to increased colony formation and transformation rates. Xpg thus helps to adequately induce DNA damage responses after IR, thereby keeping the expansion of damaged cells under control. This represents a new function of Xpg in the response to IR, in addition to its well-characterized role in nucleotide excision repair.
引用
收藏
页码:6252 / 6261
页数:10
相关论文
共 47 条
  • [21] Expansion of Human Pluripotent Stem Cell-derived Early Cardiovascular Progenitor Cells by a Cocktail of Signaling Factors
    Vahdat, Sadaf
    Pahlavan, Sara
    Mahmoudi, Elena
    Barekat, Maryam
    Ansari, Hassan
    Bakhshandeh, Behnaz
    Aghdami, Nasser
    Baharvand, Hossein
    SCIENTIFIC REPORTS, 2019, 9 (1)
  • [22] Connexin 50 Expression in Ependymal Stem Progenitor Cells after Spinal Cord Injury Activation
    Javier Rodriguez-Jimenez, Francisco
    Alastrue-Agudo, Ana
    Stojkovic, Miodrag
    Erceg, Slaven
    Moreno-Manzano, Victoria
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2015, 16 (11): : 26608 - 26618
  • [23] The potential benefits of nicaraven to protect against radiation-induced Cross Mark injury in hematopoietic stem/progenitor cells with relative low dose exposures
    Ali, Haytham
    Galal, Omima
    Urata, Yoshishige
    Goto, Shinji
    Guo, Chang-Ying
    Luo, Lan
    Abdelrahim, Eman
    Ono, Yusuke
    Mostafa, Emtethal
    Li, Tao-Sheng
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2014, 452 (03) : 548 - 553
  • [24] Expansion of functionally defined mouse hematopoietic stem and progenitor cells by a short isoform of RUNX1/AML1
    Tsuzuki, Shinobu
    Seto, Masao
    BLOOD, 2012, 119 (03) : 727 - 735
  • [25] Induction and repair of DNA strand breaks and oxidised bases in somatic and spermatogenic cells from the earthworm Eisenia fetida after exposure to ionising radiation
    Hertel-Aas, Turid
    Oughton, Deborah Helen
    Jaworska, Alicja
    Brunborg, Gunnar
    MUTAGENESIS, 2011, 26 (06) : 783 - 793
  • [26] An Interferon-γ/FLT3 Axis Positively Regulates Hematopoietic Progenitor Cell Expansion from Human Pluripotent Stem Cells
    Kitajima, Kenji
    Shingai, Minako
    Ando, Hikaru
    Hamasaki, Mako
    Hara, Takahiko
    STEM CELLS, 2022, 40 (10) : 906 - 918
  • [27] mTORC1 mediates the expansion of hematopoietic stem and progenitor cells through ribosome biogenesis protein Urb2 in zebrafish
    Huang, Wenming
    Yue, Yu
    Hao, Weifeng
    Zhang, Zhenan
    Cai, Pengcheng
    Yang, Deqin
    STEM CELL REPORTS, 2024, 19 (09): : 1277 - 1288
  • [28] p53 promotes revival stem cells in the regenerating intestine after severe radiation injury
    Morral, Clara
    Ayyaz, Arshad
    Kuo, Hsuan-Cheng
    Fink, Mardi
    Verginadis, Ioannis I.
    Daniel, Andrea R.
    Burner, Danielle N.
    Driver, Lucy M.
    Satow, Sloane
    Hasapis, Stephanie
    Ghinnagow, Reem
    Luo, Lixia
    Ma, Yan
    Attardi, Laura D.
    Koumenis, Constantinos
    Minn, Andy J.
    Wrana, Jeffrey L.
    Lee, Chang-Lung
    Kirsch, David G.
    NATURE COMMUNICATIONS, 2024, 15 (01)
  • [29] Non-Lethal Ionizing Radiation Promotes Aging-Like Phenotypic Changes of Human Hematopoietic Stem and Progenitor Cells in Humanized Mice
    Wang, Changshan
    Oshima, Motohiko
    Sashida, Goro
    Tomioka, Takahisa
    Hasegawa, Nagisa
    Mochizuki-Kashio, Makiko
    Nakajima-Takagi, Yaeko
    Kusunoki, Yoichiro
    Kyoizumi, Seishi
    Imai, Kazue
    Nakachi, Kei
    Iwama, Atsushi
    PLOS ONE, 2015, 10 (07):
  • [30] Expansion and Hepatic Differentiation of Adult Blood-Derived CD34+ Progenitor Cells and Promotion of Liver Regeneration After Acute Injury
    Hu, Min
    Li, Shaowei
    Menon, Siddharth
    Liu, Bo
    Hu, Michael S.
    Longaker, Michael T.
    Lorenz, H. Peter
    STEM CELLS TRANSLATIONAL MEDICINE, 2016, 5 (06) : 723 - 732