Disruption of the HSF3 gene results in the severe reduction of heat shock gene expression and loss of thermotolerance

被引:84
作者
Tanabe, M
Kawazoe, Y
Takeda, S
Morimoto, RI
Nagata, K
Nakai, A [1 ]
机构
[1] Kyoto Univ, Chest Dis Res Inst, Dept Cell Biol, Sakyo Ku, Kyoto 60601, Japan
[2] Kyoto Univ, Fac Med, Dept Mol Immunol & Allergiol, Sakyo Ku, Kyoto 60601, Japan
[3] Northwestern Univ, Rice Inst Biomed Res, Dept Biochem Mol Biol & Cell Biol, Evanston, IL 60208 USA
关键词
heat shock; HSF; stress response; thermotolerance; transcription;
D O I
10.1093/emboj/17.6.1750
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
The vertebrate genome encodes a family of heat shock factors (HSFs 1-4) of which the DNA-binding and transcriptional activities of HSF1 and HSF3 are activated upon heat shock. HSF1 has the properties of a classical HSF and exhibits rapid activation of DNA-binding and transcriptional activity upon exposure to conditions of heat shock and other stresses, whereas HSF3 typically is activated at higher temperatures and with distinct delayed kinetics. To address the role of HSF3 in the heat shock response, null cells lacking the HSF3 gene were constructed by disruption of the resident gene by somatic recombination in an avian lymphoid cell line. Null cells lacking HSF3, yet expressing normal levels of HSF1, exhibited a severe reduction in the heat shock response, as measured by inducible expression of heat shock genes, and did not exhibit thermotolerance. At intermediate heat shock temperatures, where HSF1 oligomerizes to an active trimer in wild-type cells, HSF1 remained as an inert monomer in the HSF3 null cell line. HSF3 null cells were restored to a nearly normal heat shock-responsive state by reintroduction of an exogenous HSF3 gene, These results reveal that HSF3 has a dominant role in the regulation of the heat shock response and directly influences HSF1 activity.
引用
收藏
页码:1750 / 1758
页数:9
相关论文
共 55 条
[1]   THE HUMAN HEAT-SHOCK PROTEIN HSP70 INTERACTS WITH HSF, THE TRANSCRIPTION FACTOR THAT REGULATES HEAT-SHOCK GENE-EXPRESSION [J].
ABRAVAYA, K ;
MYERS, MP ;
MURPHY, SP ;
MORIMOTO, RI .
GENES & DEVELOPMENT, 1992, 6 (07) :1153-1164
[2]   HEAT-SHOCK GENE-REGULATION BY NASCENT POLYPEPTIDES AND DENATURED PROTEINS - HSP70 AS A POTENTIAL AUTOREGULATORY FACTOR [J].
BALER, R ;
WELCH, WJ ;
VOELLMY, R .
JOURNAL OF CELL BIOLOGY, 1992, 117 (06) :1151-1159
[3]   ACTIVATION OF HUMAN HEAT-SHOCK GENES IS ACCOMPANIED BY OLIGOMERIZATION, MODIFICATION, AND RAPID TRANSLOCATION OF HEAT-SHOCK TRANSCRIPTION FACTOR HSF1 [J].
BALER, R ;
DAHL, G ;
VOELLMY, R .
MOLECULAR AND CELLULAR BIOLOGY, 1993, 13 (04) :2486-2496
[4]   INCREASED RATIO OF TARGETED TO RANDOM INTEGRATION AFTER TRANSFECTION OF CHICKEN B-CELL LINES [J].
BUERSTEDDE, JM ;
TAKEDA, S .
CELL, 1991, 67 (01) :179-188
[5]   Sequential phosphorylation by mitogen-activated protein kinase and glycogen synthase kinase 3 represses transcriptional activation by heat shock factor-1 [J].
Chu, BY ;
Soncin, F ;
Price, BD ;
Stevenson, MA ;
Calderwood, SK .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (48) :30847-30857
[6]   INDUCTION TEMPERATURE OF HUMAN HEAT-SHOCK FACTOR IS REPROGRAMMED IN A DROSOPHILA CELL ENVIRONMENT [J].
CLOS, J ;
RABINDRAN, S ;
WISNIEWSKI, J ;
WU, C .
NATURE, 1993, 364 (6434) :252-255
[7]  
Cotto JJ, 1996, J BIOL CHEM, V271, P3355
[8]   IS HSP70 THE CELLULAR THERMOMETER [J].
CRAIG, EA ;
GROSS, CA .
TRENDS IN BIOCHEMICAL SCIENCES, 1991, 16 (04) :135-140
[9]   COMPLEX EXPRESSION OF MURINE HEAT-SHOCK TRANSCRIPTION FACTORS [J].
FIORENZA, MT ;
FARKAS, T ;
DISSING, M ;
KOLDING, D ;
ZIMARINO, V .
NUCLEIC ACIDS RESEARCH, 1995, 23 (03) :467-474
[10]   HEAT-SHOCK FACTOR IS REQUIRED FOR GROWTH AT NORMAL TEMPERATURES IN THE FISSION YEAST SCHIZOSACCHAROMYCES-POMBE [J].
GALLO, GJ ;
PRENTICE, H ;
KINGSTON, RE .
MOLECULAR AND CELLULAR BIOLOGY, 1993, 13 (02) :749-761