Myeloid Differentiation (MyD)/Growth Arrest DNA Damage (GADD) genes in tumor suppression, immunity and inflammation

被引:0
|
作者
DA Liebermann
B Hoffman
机构
[1] Temple University School of Medicine,Fels Institute for Cancer Research and Molecular Biology and the Department of Biochemistry
来源
Leukemia | 2002年 / 16卷
关键词
MyD88; MyD118; GADD45; MyD116; hematopoiesis; apoptosis;
D O I
暂无
中图分类号
学科分类号
摘要
Myeloid differentiation (MyD) primary response and growth arrest DNA damage (Gadd) genes comprise a set of overlapping genes, including known (IRF-1, EGR-1, Jun) and novel (MyD88, Gadd45α, MyD118/Gadd45β, GADD45γ, MyD116/ Gadd34) genes, that have been cloned by virtue of being co-ordinately induced upon the onset of terminal myeloid differentiation and following exposure of cells to stress stimuli. In recent years it has become evident that MyD/Gadd play a role in blood cell development, where they function as positive regulators of terminal differentiation, lineage-specific blood cell development and control of blood cell homeostasis, including growth inhibition and apoptosis. MyD/Gadd are also involved in inflammatory responses to invading micro-organisms, and response to environmental stress and physiological stress, such as hypoxia, which results in ischemic tissue damage. An intricate network of interactions among MyD/GADD genes and gene products appears to control their diverse functions. Deregulated growth, increased cell survival, compromised differentiation and deficiencies in DNA repair are hallmarks of malignancy and its progression. Thus, the role MyD/Gadd play in negative growth control, including cell cycle arrest and apoptosis, and in DNA repair, make them attractive molecular targets for tumor suppression. The role MyD/Gadd play in innate immunity and host response to hypoxia also make these genes and gene products attractive molecular targets to treat immunity and inflammation disorders, such as septic shock and ischemic tissue damage.
引用
收藏
页码:527 / 541
页数:14
相关论文
共 50 条
  • [31] Growth arrest and DNA-damage inducible gene gamma (GADD45 g) is expressed in trophoblast and choriocarcinoma cells
    Maier, A.
    Ghaffari-Tabrizi, N.
    Desoye, G.
    Dohr, G.
    Hammer, A.
    PLACENTA, 2008, 29 (08) : A102 - A102
  • [32] PLK4 targets growth arrest and DNA damage-inducible protein 45 alpha (GADD45a).
    Gosselin, N. J.
    Sivakumar, G.
    Wu, B.
    Ward, R. A.
    Kozarova, A.
    Hudson, J. W.
    MOLECULAR BIOLOGY OF THE CELL, 2016, 27
  • [33] INDUCTION OF THE GROWTH ARREST AND DNA DAMAGE-INDUCIBLE GENE GADD153 BY CISPLATIN IN-VITRO AND IN-VIVO
    GATELY, DP
    JONES, JA
    CHRISTEN, R
    BARTON, RM
    LOS, G
    HOWELL, SB
    BRITISH JOURNAL OF CANCER, 1994, 70 (06) : 1102 - 1106
  • [34] THE PROTOONCOGENE CHOP GADD153, INVOLVED IN GROWTH ARREST AND DNA-DAMAGE RESPONSE, IS AMPLIFIED IN A SUBSET OF HUMAN SARCOMAS
    FORUS, A
    FLORENES, VA
    MAELANDSMO, GM
    FODSTAD, O
    MYKLEBOST, O
    CANCER GENETICS AND CYTOGENETICS, 1994, 78 (02) : 165 - 171
  • [36] Effects of nutrient deprivation and differentiation on the expression of growth-arrest genes (gas and gadd) in F9 embryonal carcinoma cells
    Fleming, JV
    Hay, SM
    Harries, DN
    Rees, WD
    BIOCHEMICAL JOURNAL, 1998, 330 : 573 - 579
  • [37] Growth Arrest and DNA Damage-Inducible 45-Beta (Gadd45b) and Neuronal Activity-dependent DNA Demethylation
    Gavin, David
    Kusumo, Handojo
    Sharma, Rajiv P.
    Guizzetti, Marina
    Guidotti, Alessandro
    Pandey, Subhash C.
    NEUROPSYCHOPHARMACOLOGY, 2014, 39 : S317 - S317
  • [38] Molecular cloning and functional analysis of Growth arrest and DNA damage-inducible 45 as and ab (Gadd45aa and Gadd45 ab) in Ctenopharyngodon idella
    Fang, Yuan
    Xu, Xiao-yan
    Shen, Yubang
    Li, Jiale
    FISH & SHELLFISH IMMUNOLOGY, 2018, 77 : 187 - 193
  • [39] Growth Arrest and DNA Damage Inducible Protein 45 Alpha (GADD45A) Expression Is Involved in Patient Prognosis in Esophageal Cancer
    Ishiguro, Hideyuki
    Kimura, Masahiro
    Funahashi, Hitoshi
    Ogawa, Ryo
    Shiozaki, Midori
    Shibata, Takahiro
    Saito, Shinichiro
    Takeyama, Hiromitsu
    GASTROENTEROLOGY, 2013, 144 (05) : S882 - S882
  • [40] Quinone thioether-mediated DNA damage, growth arrest, and gadd153 expression in renal proximal tubular epithelial cells
    Jeong, JMK
    Stevens, JL
    Lau, SS
    Monks, TJ
    MOLECULAR PHARMACOLOGY, 1996, 50 (03) : 592 - 598