Regulation of survival gene hsp70

被引:0
|
作者
Jordan Thomas Silver
Earl G. Noble
机构
[1] The University of Western Ontario,School of Kinesiology, Faculty of Health Sciences
[2] The University of Western Ontario,Lawson Health Research Institute
来源
关键词
Heat shock response; Regulation; Skeletal muscle; Exercise; Heat stress;
D O I
暂无
中图分类号
学科分类号
摘要
Rapid expression of the survival gene, inducible heat shock protein 70 (hsp70), is critical for mounting cytoprotection against severe cellular stress, like elevated temperature. Hsp70 protein chaperones the refolding of heat-denatured peptides to minimize proteolytic degradation as a part of an eukaryotically conserved phenomenon referred to as the heat shock response. The physiologic stress associated with exercise, which can include elevated temperature, mechanical damage, hypoxia, lowered pH, and reactive oxygen species generation, may promote protein unfolding, leading to hsp70 gene expression in skeletal myofibers. Although the pre-transcriptional activation of hsp70 gene expression has been thoroughly reviewed, discussion of downstream hsp70 gene regulation is less extensive. The purpose of this brief review was to examine all levels of hsp70 gene regulation in response to heat stress and exercise with a special focus on skeletal myofibers where data are available. In general, while heat stress represses bulk gene expression, hsp70 mRNA expression is enhanced. Post-transcriptionally, intronless hsp70 mRNA circumvents a host of decay pathways, as well as heat stress-repressed pre-mRNA splicing and nuclear export. Pre-translationally, hsp70 mRNA is excluded from stress granules and preferentially translated during heat stress-repressed global cap-dependent translation. Post-translationally, nascent Hsp70 protein is thermodynamically stable at elevated temperatures, allowing for the commencement of chaperoning activity early after synthesis to attenuate the heat shock response and protect against subsequent injury. This review demonstrates that hsp70 mRNA expression is closely coupled with functional protein translation.
引用
收藏
页码:1 / 9
页数:8
相关论文
共 50 条
  • [21] HSP70 HEAT-SHOCK GENE-REGULATION DURING ISCHEMIA
    SHARP, FR
    KINOUCHI, H
    KOISTINAHO, J
    CHAN, PH
    SAGAR, SM
    STROKE, 1993, 24 (12) : I72 - I75
  • [23] REGULATION OF A YEAST HSP70 GENE BY A CAMP RESPONSIVE TRANSCRIPTIONAL CONTROL ELEMENT
    BOORSTEIN, WR
    CRAIG, EA
    EMBO JOURNAL, 1990, 9 (08): : 2543 - 2553
  • [24] Effects of histone deacetylase inhibitors on transcriptional regulation of the hsp70 gene in Drosophila
    Yan Mei Zhao
    Xia Chen
    Hui Sun
    Zhi Gen Yuan
    Guo Ling Ren
    Xiao Xue Li
    Jun Lu
    Bai Qu Huang
    Cell Research, 2006, 16 : 566 - 576
  • [25] Negative transcriptional regulation of multidrug resistance gene expression by an Hsp70 protein
    Shahi, Puja
    Gulshan, Kailash
    Moye-Rowley, W. Scott
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (37) : 26822 - 26831
  • [26] Involvement of general transcriptional factors in the regulation of transcription of the hsp70 gene in vivo
    Kurshakova M.M.
    Nabirochkina E.N.
    Lebedeva L.A.
    Georgieva S.G.
    Evgen'ev M.B.
    Krasnov A.N.
    Doklady Biological Sciences, 2006, 411 (1) : 475 - 478
  • [27] Histone acetylation is involved in hsp70 gene transcription regulation in Drosophila melanogaster
    Chen, T
    Sun, H
    Lu, J
    Zhao, YM
    Tao, D
    Li, XX
    Huang, BQ
    ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2002, 408 (02) : 171 - 176
  • [28] The application of HSP70 as a target for gene therapy
    Zheng, Z
    Yenari, MA
    FRONTIERS IN BIOSCIENCE-LANDMARK, 2006, 11 : 699 - 707
  • [29] Structure and expression of a rice hsp70 gene
    Wang, Q
    Fang, RX
    SCIENCE IN CHINA SERIES C-LIFE SCIENCES, 1996, 39 (03): : 291 - 299
  • [30] CLONING AND CHARACTERIZATION OF A CARROT HSP70 GENE
    LIN, XY
    CHERN, MS
    ZIMMERMAN, JL
    PLANT MOLECULAR BIOLOGY, 1991, 17 (06) : 1245 - 1249