Genetic analysis of hypoxia signaling and response in C-elegans

被引:45
|
作者
Shen, C [1 ]
Powell-Coffman, JA [1 ]
机构
[1] Iowa State Univ, Dept Zool & Genet, Ames, IA 50010 USA
来源
TISSUE REMODELING | 2003年 / 995卷
关键词
bHLH-PAS proteins; egl-9; oxygen; transcription; von Hippel-Lindau tumor suppressor;
D O I
10.1111/j.1749-6632.2003.tb03222.x
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
During normal development and homeostasis, animals use cellular and systemic strategies to adapt to changing oxygen levels. In mammals, hypoxic tissues secrete growth factors to induce angiogenesis, and individual cells increase anaerobic metabolism in order to sustain basic cellular functions. Many of these critical responses to decreased oxygen availability are regulated by the hypoxia-inducible factors, dimeric transcriptional complexes consisting of alpha and beta subunits. HIFalpha proteins are specialized for hypoxia response, and oxygen levels regulate their stability and activity. The C. elegans hif-1 gene is orthologous to mammalian HIFalpha genes, and C. elegans has proven to be a powerful system for the study of hypoxia-inducible factor regulation and function. Mutants lacking hif-1 function are viable in normoxic or anoxic conditions, but they cannot adapt to hypoxia. Recent genetic analyses in C. elegans led to the identification of the evolutionarily conserved enzyme that hydroxylates HIFalpha in an oxygen-dependent manner. Once modified, HIFalpha binds the von Hippel-Lindau tumor suppressor protein and is targeted for proteasomal degradation. Here, we briefly review the characterization of C. elegans hif-1 and interacting genes, and discuss genetic strategies for studying hypoxia signaling and response.
引用
收藏
页码:191 / 199
页数:9
相关论文
共 50 条
  • [31] Action potentials contribute to neuronal signaling in C-elegans
    Mellem, Jerry E.
    Brockie, Penelope J.
    Madsen, David M.
    Maricq, Andres V.
    NATURE NEUROSCIENCE, 2008, 11 (08) : 865 - 867
  • [32] Analysis of xbx genes in C-elegans
    Efimenko, E
    Bubb, K
    Mak, HY
    Holzman, T
    Leroux, MR
    Ruvkun, G
    Thomas, JH
    Swoboda, P
    DEVELOPMENT, 2005, 132 (08): : 1923 - 1934
  • [33] INTERCELLULAR SIGNALING AND SIGNAL-TRANSDUCTION IN C-ELEGANS
    STERNBERG, PW
    ANNUAL REVIEW OF GENETICS, 1993, 27 : 497 - 521
  • [34] GENETIC AND PHARMACOLOGICAL ANALYSIS OF NEUROTRANSMITTERS CONTROLLING EGG-LAYING IN C-ELEGANS
    WEINSHENKER, D
    GARRIGA, G
    THOMAS, JH
    JOURNAL OF NEUROSCIENCE, 1995, 15 (10): : 6975 - 6985
  • [35] Natural Genetic Variation in a Multigenerational Phenotype in C-elegans
    Frezal, Lise
    Demoinet, Emilie
    Braendle, Christian
    Miska, Eric
    Felix, Marie-Anne
    CURRENT BIOLOGY, 2018, 28 (16) : 2588 - +
  • [36] A genetic approach to study the function of latrophilin in C-elegans
    Adenle, Ademola A.
    de Pomerai, D.
    Bell, David R.
    TOXICOLOGY, 2007, 240 (03) : 158 - 159
  • [37] GENETIC-ANALYSIS OF LONG-LIVED STRAINS OF THE NEMATODE, C-ELEGANS
    JOHNSON, TE
    GERONTOLOGIST, 1982, 22 : 185 - 185
  • [38] GENETIC AND CELLULAR-REGULATIONS OF THERMOTAXIS IN C-ELEGANS
    MORI, I
    HONDA, H
    KOMATSU, H
    OHSHIMA, Y
    JOURNAL OF CELLULAR BIOCHEMISTRY, 1995, : 332 - 332
  • [39] Genetic controls of gonad primordium formation in C-elegans
    Mathies, LD
    Blelloch, RH
    Henderson, ST
    Kimble, J
    MOLECULAR BIOLOGY OF THE CELL, 2000, 11 : 522A - 522A
  • [40] GENETIC-CONTROL OF NEURONAL DIFFERENTIATION IN C-ELEGANS
    CHALFIE, M
    GENETICS, 1989, 122 (02) : S12 - S12