Do Antarctic Fish Respond to Heat Shock?
117
6. Dimri GP, Campisi I (1994) Altered profile of transcription factor-binding
activities in senescent human fibroblasts. Exp Cell Res 212: 116-124
7. Mejia R, Gomez Eichelmann MC, Fernandez MS (1995) Membrane fluidity
of Escherichia coli during heat-shock. Biochim Biophys Acta 1223: 195-200
8. Revathi CI, Chattopadhyay A, Srinivas UK (1994) Change in membrane
organization induced by heat shock. Biochem Mol BioI Int 16: 925-950
9. Eastman IT (1993) Antarctic fish biology. Evolution in unique environment.
Academic Press, San Diego
10. Somero GS (1991) Biochemical mechanisms of cold adaptation and
stenothermality in Antarctic fish. In: di Prisco G, Maresca B, Tota B (eds)
Biology of Antarctic fish. Springer-Verlag, Heidelberg. pp 216-231
11. Maresca B, Patriarca E, Goldenberg C, Sacco M (1988) Heat shock and cold
adaptation in Antarctic fishes: a molecular approach. Comp Biochem Physiol
90B: 623-614
12. Freeman BC, Myers MP, Schumacher R, Morimoto RI (1995) Identification
of a regulatory motif in HSP70 that affects ATPase activity, substrate
binding and interaction with HDJ-1. EMBO I 14: 2131-2142
13. Bienz M, Pelham HRB (1987) Mechanisms of heat-shock gene activation in
higher eukaryotes. Advances in Genetics 24: 31-72
14. Lis I, Wu C (1993) Protein traffic on the heat shock promoter: parking,
stalling, and trucking along. Cell 74: 1-4
15. Pelham HRB, Bienz M (1982) A synthetic heat shock promoter element
confers heat inducibility on the herpes simplex virus thymidine kinase gene.
EMBO II: 1313-1317
16. Xiao H, Lis IT (1988) GermIine transformation used to defme key features
of the heat shock response element. Science 223: 1123-1126
17. Amin I, Ananthan I, Voellmy R (1988) Key features of heat shock
regulatory elements. Mol Cell BioI 8: 2161-2169
18. Perisic 0, Xiao H, Lis JT (1989) Stable binding of Drosophila heat shock
factor to head-to-head and tail-to-tail repeats of a conserved 5 bp recognition
unit. Cell 59: 797-806
19. Xiao H, Perisic 0, Lis JT (1991) Cooperative binding of Drosophila heat
shock factor to arrays of a conserved 5 bp unit. Cell 64: 585-593
20. Kroeger PE, Sarge KD, Morimoto RI (1993) Mouse heat shock transcription
factors 1 and 2 prefer a trimeric binding site but interact differently with the
HSP70 heat shock element. Mol Cell BioI 13: 1610-1623
21. Bienz M, Pelham HRB (1986) Heat shock regulatory elements function as an
inducible enhancer in Xenopus hsp70 gene and when linked to a
heterologous promoter. Cell 14: 753-760
22. Chen I, Pederson DS (1993) A distal heat shock element promotes the rapid
response to heat shock of the hsp26 gene in the yeast Saccharomyces
cerevisiae. I BioI Chern 268: 7132-7122
23. Amin I, Fernandez M, Ananthan I, Lis IT, Voellmy R (1994) Cooperative
binding of heat shock transcription factor to the hsp 70 promoter in vivo and
in vitro. I. BioI. Chern 269: 1604-1611
117
6. Dimri GP, Campisi I (1994) Altered profile of transcription factor-binding
activities in senescent human fibroblasts. Exp Cell Res 212: 116-124
7. Mejia R, Gomez Eichelmann MC, Fernandez MS (1995) Membrane fluidity
of Escherichia coli during heat-shock. Biochim Biophys Acta 1223: 195-200
8. Revathi CI, Chattopadhyay A, Srinivas UK (1994) Change in membrane
organization induced by heat shock. Biochem Mol BioI Int 16: 925-950
9. Eastman IT (1993) Antarctic fish biology. Evolution in unique environment.
Academic Press, San Diego
10. Somero GS (1991) Biochemical mechanisms of cold adaptation and
stenothermality in Antarctic fish. In: di Prisco G, Maresca B, Tota B (eds)
Biology of Antarctic fish. Springer-Verlag, Heidelberg. pp 216-231
11. Maresca B, Patriarca E, Goldenberg C, Sacco M (1988) Heat shock and cold
adaptation in Antarctic fishes: a molecular approach. Comp Biochem Physiol
90B: 623-614
12. Freeman BC, Myers MP, Schumacher R, Morimoto RI (1995) Identification
of a regulatory motif in HSP70 that affects ATPase activity, substrate
binding and interaction with HDJ-1. EMBO I 14: 2131-2142
13. Bienz M, Pelham HRB (1987) Mechanisms of heat-shock gene activation in
higher eukaryotes. Advances in Genetics 24: 31-72
14. Lis I, Wu C (1993) Protein traffic on the heat shock promoter: parking,
stalling, and trucking along. Cell 74: 1-4
15. Pelham HRB, Bienz M (1982) A synthetic heat shock promoter element
confers heat inducibility on the herpes simplex virus thymidine kinase gene.
EMBO II: 1313-1317
16. Xiao H, Lis IT (1988) GermIine transformation used to defme key features
of the heat shock response element. Science 223: 1123-1126
17. Amin I, Ananthan I, Voellmy R (1988) Key features of heat shock
regulatory elements. Mol Cell BioI 8: 2161-2169
18. Perisic 0, Xiao H, Lis JT (1989) Stable binding of Drosophila heat shock
factor to head-to-head and tail-to-tail repeats of a conserved 5 bp recognition
unit. Cell 59: 797-806
19. Xiao H, Perisic 0, Lis JT (1991) Cooperative binding of Drosophila heat
shock factor to arrays of a conserved 5 bp unit. Cell 64: 585-593
20. Kroeger PE, Sarge KD, Morimoto RI (1993) Mouse heat shock transcription
factors 1 and 2 prefer a trimeric binding site but interact differently with the
HSP70 heat shock element. Mol Cell BioI 13: 1610-1623
21. Bienz M, Pelham HRB (1986) Heat shock regulatory elements function as an
inducible enhancer in Xenopus hsp70 gene and when linked to a
heterologous promoter. Cell 14: 753-760
22. Chen I, Pederson DS (1993) A distal heat shock element promotes the rapid
response to heat shock of the hsp26 gene in the yeast Saccharomyces
cerevisiae. I BioI Chern 268: 7132-7122
23. Amin I, Fernandez M, Ananthan I, Lis IT, Voellmy R (1994) Cooperative
binding of heat shock transcription factor to the hsp 70 promoter in vivo and
in vitro. I. BioI. Chern 269: 1604-1611
