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Research Article

In Vivo Growth of a Murine Lymphoma Cell Line Alters Regulation of Expression of HSP72

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Pages 1071-1078 | Received 31 May 1994, Accepted 07 Oct 1994, Published online: 30 Mar 2023

REFERENCES

  • Abravaya, K., M. P. Myers, S. P. Murphy, and R. I. Morimoto. 1992. The human heat shock protein hsp70 interacts with HSF, the transcription factor that regulates heat shock gene expression. Genes Dev. 6:1153–1164.
  • Agoff, S. N., J. Hou, D. I. Linzer, and B. Wu. 1993. Regulation of the human hsp70 promoter by p53. Science 259:84–87.
  • Anderson, R. L., I. van Kersen, P. E. Kraft, and G. M. Hahn. 1989. Biochemical analysis of heat-resistant mouse tumor cell strains: a new member of the HSP70 family. Mol. Cell. Biol. 9:3509–3516.
  • Anderson, R. L., C. Y. Wang, I. van Kersen, K. J. Lee, W. J. Welch, P. Lavagnini, and G. M. Hahn. 1993. An immunoassay for heat shock protein 70. Use of the assay to correlate HSP70 levels in mammalian cells with heat response. Int. J. Hyperthermia 9:539–552.
  • Aujame, L. 1988. The major heat-shock protein hsp68 is not induced by stress in mouse erythroleukemia cell lines. Biochem. Cell Biol. 66:691–701.
  • Baler, R., G. Dahl, and R. Voellmy. 1993. Activation of human heat shock genes is accompanied by oligomerization, modification, and rapid translocation of heat shock transcription factor HSF1. Mol. Cell. Biol. 13:2486–2496.
  • Blake, M. J., R. Udelsman, G. J. Feulner, D. D. Norton, and N. J. Holbrook. 1991. Stress-induced heat shock protein 70 expression in adrenal cortex: an adrenocorticotropic hormone-sensitive, age-dependent response. Proc. Natl. Acad. Sci. USA 88:9873–9877.
  • Bruce, J. L., B. D. Price, C. N. Coleman, and S. K. Calderwood. 1993. Oxidative injury rapidly activates the heat shock transcription factor but fails to increase levels of heat shock proteins. Cancer Res. 53:12–15.
  • Chomczynski, P., and N. Sacchi. 1987. Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Anal. Biochem. 162:156–159.
  • Church, M. G., and W. Gilbert. 1984. Genomic sequencing. Proc. Natl. Acad. Sci. USA 81:1991–1995.
  • Fisher, B., P. Kraft, G. M. Hahn, and R. L. Anderson. 1992. Thermotolerance in the absence of induced heat shock proteins in a murine lymphoma. Cancer Res. 52:2854–2861.
  • Foos, G., S. Natour, and K. H. Klempnauer. 1993. TATA-box dependent transactivation of the human HSP70 promoter by Myb proteins. Oncogene 8:1775–1782.
  • Gething, M. J., and J. Sambrook. 1992. Protein folding in the cell. Nature (London) 355:33–45.
  • Giebel, L. B., B. P. Dworniczak, and E. K. F. Bautz. 1988. Developmental regulation of a constitutively expressed mouse mRNA encoding a 72-kDa heat shock-like protein. Dev. Biol. 125:200–207.
  • Hahn, G. M., S. C. Ning, M. Elizaga, D. S. Kapp, and R. L. Anderson. 1989. A comparison of thermal responses of human and rodent cells. Int. J. Radiat. Biol. 56:817–825.
  • Haughton, G., L. W. Arnold, G. A. Bishop, and T. J. Mercolino. 1986. The CH series of murine B cell lymphomas: neoplastic analogues of Ly-11 normal B cells. Immunol. Rev. 93:34–51.
  • Hensold, J. O., C. R. Hunt, S. K. Calderwood, D. E. Housman, and R. E. Kingston. 1990. DNA binding of heat shock factor to the heat shock element is insufficient for transcriptional activation in murine erythroleukemia cells. Mol. Cell. Biol. 10:1600–1608.
  • Hickey, E., S. E. Brandon, S. Sadis, G. Smale, and L. A. Weber. 1986. Molecular cloning of mRNA sequences encoding the human heat shock proteins and their expression during hyperthermia. Gene 43:147–154.
  • Hunt, C., and S. Calderwood. 1990. Characterization and sequence of a mouse hsp70 gene and its expression in mouse cell lines. Gene 87:199–204.
  • Jurivich, D. A., L. Sistonen, R. A. Kroes, and R. I. Morimoto. 1992. Effect of sodium salicylate on the human heat shock response. Science 255:1243–1245.
  • Kobayashi, N., and K. McEntee. 1993. Identification of cis and trans components of a novel heat shock stress regulatory pathway in Saccharomyces cerevisiae. Mol. Cell. Biol. 13:248–256.
  • Langer, T., C. Lu, H. Echols, J. Flanagan, M. K. Hayer, and F. U. Hartl. 1992. Successive action of DnaK, DnaJ and GroEL along the pathway of chaperone-mediated protein folding. Nature (London) 356:683–689.
  • Lanier, L. L., M. Lynes, and G. Haughton. 1978. Novel type of B cell lymphoma. Nature (London) 271:554–555.
  • Lindquist, S. 1986. The heat-shock response. Annu. Rev. Biochem. 55:1151–1191.
  • Milarski, K. L., W. J. Welch, and R. I. Morimoto. 1989. Cell cycle-dependent association of HSP70 with specific cellular proteins. J. Cell Biol. 108:413–423.
  • Morange, M., A. Diu, O. Bensaude, and C. Babinet. 1984. Altered expression of heat shock proteins in embryonal carcinoma and mouse early embryonic cells. Mol. Cell. Biol. 4:730–735.
  • Morimoto, R. I., K. D. Sarge, and K. Abravaya. 1992. Transcriptional regulation of heat shock genes. A paradigm for inducible genomic responses. J. Biol. Chem. 267:21987–21990.
  • Mosser, D. D., J. Duchaine, and B. Massie. 1993. The DNA-binding activity of the human heat shock transcription factor is regulated in vivo by hsp70. Mol. Cell. Biol. 13:5427–5438.
  • Nakai, A., and R. I. Morimoto. 1993. Characterization of a novel chicken heat shock transcription factor, heat shock factor 3, suggests a new regulatory pathway. Mol. Cell. Biol. 13:1983–1997.
  • Perry, M. D., and L. A. Moran. 1987. Isolation of a mouse heat-shock gene (hsp68) by recombinational screening. Gene 51:227–236.
  • Phillips, B. Personal communication.
  • Rabindran, S. K., R. I. Haroun, J. Clos, J. Wisniewski, and C. Wu. 1993. Regulation of heat shock factor trimer formation: role of a conserved leucine zipper. Science 259:230–234.
  • Sambrook, J., E. F. Fritsch, and T. Maniatis. 1989. Molecular cloning: a laboratory manual, 2nd ed. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, N.Y.
  • Sarge, K. D., S. P. Murphy, and R. I. Morimoto. 1993. Activation of heat shock gene transcription by heat shock factor 1 involves oligomerization, acquisition of DNA-binding activity, and nuclear localization and can occur in the absence of stress. Mol. Cell. Biol. 13:1392–1407.
  • Sistonen, L., K. D. Sarge, B. Phillips, K. Abravaya, and R. I. Morimoto. 1992. Activation of heat shock factor 2 during hemin-induced differentiation of human erythroleukemia cells. Mol. Cell. Biol. 12:4104–4111.
  • Spector, N. L., A. S. Freedman, G. Freeman, J. Segil, J. F. Whitman, W. J. Welch, and L. M. Nadler. 1989. Activation primes human B lymphocytes to respond to heat shock. J. Exp. Med. 170:1763–1768.
  • Twentyman, P. R., J. M. Brown, J. W. Gray, A. J. Franko, M. A. Scoles, and R. F. Kallman. 1980. A new mouse tumour model system (RIF-1) for comparison end-point studies. JNCI 64:595–604.
  • Welch, W. J. 1992. Mammalian stress response: cell physiology, structure/ function of stress proteins, and implications for medicine and disease. Physiol. Rev. 72:1063–1081.
  • Welch, W. J., and L. A. Mizzen. 1988. Characterization of the thermotolerant cell. 2. Effects on the intracellular distribution of heat-shock protein 70, intermediate filaments, and small nuclear ribonucleoprotein complexes. J. Cell Biol. 106:1117–1130.
  • Wettstein, P. J., and G. Haughton. 1974. Production, testing, and utility of double congenic strains of mice. Transplantation 17:513–517.
  • Williams, G. T., T. K. McClanahan, and R. I. Morimoto. 1989. E1a trans-activation of the human HSP70 promoter is mediated through the basal transcriptional complex. Mol. Cell. Biol. 9:2573–2587.
  • Wittig, S., S. Hensse, C. Keitel, C. Elsner, and B. Wittig. 1983. Heat shock gene expression is regulated during teratocarcinoma cell differentiation and early embryonic development. Dev. Biol. 96:507–514.

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