The role of miRNA in the direct and indirect effects of ionizing radiation

被引:0
|
作者
Jennifer S. Dickey
Franz J. Zemp
Olga A. Martin
Olga Kovalchuk
机构
[1] CDER,Laboratory of Biochemistry, Division of Therapeutic Proteins
[2] FDA,Department of Biological Sciences
[3] University of Lethbridge,Department of Oncology, Tom Baker Cancer Center
[4] Southern Alberta Cancer Research Institute,Laboratory of Molecular Pharmacology, Center for Cancer Research
[5] NCI,Department of Radiation Oncology
[6] NIH,undefined
[7] Peter MacCallum Cancer Centre,undefined
来源
关键词
miRNA Expression; miRNA Expression Profile; Bystander Effect; miRNA Microarray; Bystander Cell;
D O I
暂无
中图分类号
学科分类号
摘要
This review focuses on a number of recent studies that have examined changes in microRNA (miRNA) expression profiles in response to ionizing radiation and other forms of oxidative stress. In both murine and human cells and tissues, a number of miRNAs display significant alterations in expression levels in response to both direct and indirect radiation exposure. In terms of direct irradiation, or exposure to agents that induce oxidative stress, miRNA array analyses indicate that a number of miRNAs are up- and down-regulated and, in particular, the let-7 family of miRNAs may well be critical in the cellular response to oxidative stress. In bystander cells that are not directly irradiated, but close to, or share media with directly irradiated cells or tissues, the miRNA expression profiles are also altered, but are somewhat distinct from the directly irradiated cells. Based on the results of these numerous studies, as well as our own data presented here, we conclude that miRNA regulation is a critical step in the cellular response to radiation and oxidative stress and that future studies should elucidate the mechanisms through which this altered regulation affects cell metabolism.
引用
收藏
页码:491 / 499
页数:8
相关论文
共 50 条
  • [31] A role for ionizing radiation in myelomagenesis?
    Landgren, Ola
    BLOOD, 2009, 113 (08) : 1616 - 1617
  • [32] DEPENDENCE OF INDIRECT ACTION OF IONIZING RADIATION ON OXYGEN CONCENTRATION
    HUTCHINSON, F
    RADIATION RESEARCH, 1960, 12 (04) : 444 - 444
  • [33] OBSERVATIONS ON THE INDIRECT ACTION OF IONIZING RADIATION ON AQUEOUS SOLUTIONS
    DALE, WM
    DAVIES, JV
    MEREDITH, WJ
    BIOCHEMICAL JOURNAL, 1946, 40 (04) : R38 - R39
  • [34] A Biomarker Panel of Radiation-Upregulated miRNA as Signature for Ionizing Radiation Exposure
    Song, Man
    Xie, Dafei
    Gao, Shanshan
    Bai, Chen-Jun
    Zhu, Mao-Xiang
    Guan, Hua
    Zhou, Ping-Kun
    LIFE-BASEL, 2020, 10 (12): : 1 - 15
  • [35] Recent Advances in miRNA and Functional Foods against Ionizing Radiation
    Lu J.
    Chen P.
    Cao N.
    Chen C.
    Yi J.
    Hao L.
    Shipin Kexue/Food Science, 2020, 41 (15): : 295 - 300
  • [36] Alteration of miRNA Profiles by Ionizing Radiation in Uveal Melanoma Cells
    Zhou, Y.
    Fan, X.
    Song, X.
    Xu, X.
    Jia, R.
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2010, 51 (13)
  • [37] MEASUREMENT AND CONTROL OF SOME DIRECT AND INDIRECT EFFECTS OF X-RADIATION
    HAAS, FL
    DUDGEON, E
    CLAYTON, FE
    STONE, WS
    GENETICS, 1954, 39 (04) : 453 - 471
  • [38] Modelling Direct and Indirect Effects of Radiation: Experimental, Clinical and Environmental Implications
    Bruningk, Sarah C.
    Powathil, Gibin G.
    BIOMARKERS OF RADIATION IN THE ENVIRONMENT: ROBUST TOOLS FOR RISK ASSESSMENT, 2022, : 69 - 87
  • [39] Establishment of a Method for Investigating Direct and Indirect Actions of Ionizing Radiation Using Scavenger-free Plasmid DNA
    Yu, Hao
    Kondo, Yusuke
    Fujii, Kentaro
    Yokoya, Akinari
    Yamashita, Shinichi
    RADIATION RESEARCH, 2022, 197 (06) : 594 - 604
  • [40] Bio-positive effects of ionizing radiation on pollen: The role of ROS
    Stephan, Octavian O. H.
    PHYSIOLOGIA PLANTARUM, 2024, 176 (01)