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Article

Heat Shock-Induced SRSF10 Dephosphorylation Displays Thermotolerance Mediated by Hsp27

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Pages 458-465 | Received 24 Sep 2010, Accepted 23 Nov 2010, Published online: 21 Mar 2023

REFERENCES

  • Benndorf, R., et al. 2001. HSP22, a new member of the small heat shock protein superfamily, interacts with mimic of phosphorylated HSP27 ((3D)HSP27). J. Biol. Chem. 276:26753–26761.
  • Bond, U. 1988. Heat shock but not other stress inducers leads to the disruption of a sub-set of snRNPs and inhibition of in vitro splicing in HeLa cells. EMBO J. 7:3509–3518.
  • Brummelkamp, T. R., R. Bernards, and R. Agami. 2002. A system for stable expression of short interfering RNAs in mammalian cells. Science 296:550–553.
  • Brunet Simioni, M., et al. 2009. Heat shock protein 27 is involved in SUMO-2/3 modification of heat shock factor 1 and thereby modulates the transcription factor activity. Oncogene 28:3332–3344.
  • Bryantsev, A. L., M. B. Chechenova, and E. A. Shelden. 2007. Recruitment of phosphorylated small heat shock protein Hsp27 to nuclear speckles without stress. Exp. Cell Res. 313:195–209.
  • Burdon, R. H. 1987. Thermotolerance and the heat shock proteins. Symp. Soc. Exp. Biol. 41:269–283.
  • Cotto, J. J., M. Kline, and R. I. Morimoto. 1996. Activation of heat shock factor 1 DNA binding precedes stress-induced serine phosphorylation. Evidence for a multistep pathway of regulation. J. Biol. Chem. 271:3355–3358.
  • Feng, Y., M. Chen, and J. L. Manley. 2008. Phosphorylation switches the general splicing repressor SRp38 to a sequence-specific activator. Nat. Struct. Mol. Biol. 15:1040–1048.
  • Gaestel, M., et al. 1991. Identification of the phosphorylation sites of the murine small heat shock protein hsp25. J. Biol. Chem. 266:14721–14724.
  • Geum, D., G. H. Son, and K. Kim. 2002. Phosphorylation-dependent cellular localization and thermoprotective role of heat shock protein 25 in hippocampal progenitor cells. J. Biol. Chem. 277:19913–19921.
  • Gilbert, W., and C. Guthrie. 2004. The Glc7p nuclear phosphatase promotes mRNA export by facilitating association of Mex67p with mRNA. Mol. Cell 13:201–212.
  • Graveley, B. R. 2000. Sorting out the complexity of SR protein functions. RNA 6:1197–1211.
  • Hunt, C., and R. I. Morimoto. 1985. Conserved features of eukaryotic hsp70 genes revealed by comparison with the nucleotide sequence of human hsp70. Proc. Natl. Acad. Sci. U. S. A. 82:6455–6459.
  • Kostenko, S., and U. Moens. 2009. Heat shock protein 27 phosphorylation: kinases, phosphatases, functions and pathology. Cell. Mol. Life Sci. 66:3289–3307.
  • Kress, T. L., N. J. Krogan, and C. Guthrie. 2008. A single SR-like protein, Npl3, promotes pre-mRNA splicing in budding yeast. Mol. Cell 32:727–734.
  • Landry, J., P. Chretien, H. Lambert, E. Hickey, and L. A. Weber. 1989. Heat shock resistance conferred by expression of the human HSP27 gene in rodent cells. J. Cell Biol. 109:7–15.
  • Landry, J., et al. 1992. Human HSP27 is phosphorylated at serines 78 and 82 by heat shock and mitogen-activated kinases that recognize the same amino acid motif as S6 kinase II. J. Biol. Chem. 267:794–803.
  • Lindquist, S. 1986. The heat-shock response. Annu. Rev. Biochem. 55:1151–1191.
  • Manley, J. L., and A. R. Krainer. 2010. A rational nomenclature for serine/arginine-rich protein splicing factors (SR proteins). Genes Dev. 24:1073–1074.
  • Manley, J. L., and R. Tacke. 1996. SR proteins and splicing control. Genes Dev. 10:1569–1579.
  • Marin-Vinader, L., C. Shin, C. Onnekink, J. L. Manley, and N. H. Lubsen. 2006. Hsp27 enhances recovery of splicing as well as rephosphorylation of SRp38 after heat shock. Mol. Biol. Cell 17:886–894.
  • Morano, K. A., and D. J. Thiele. 1999. Heat shock factor function and regulation in response to cellular stress, growth, and differentiation signals. Gene Expr. 7:271–282.
  • Nilsen, T. W., and B. R. Graveley. 2010. Expansion of the eukaryotic proteome by alternative splicing. Nature 463:457–463.
  • Niswander, J. M., and L. A. Dokas. 2006. Phosphorylation of HSP27 and synthesis of 14-3-3epsilon are parallel responses to hyperosmotic stress in the hippocampus. Brain Res. 1116:19–30.
  • Pirkkala, L., P. Nykanen, and L. Sistonen. 2001. Roles of the heat shock transcription factors in regulation of the heat shock response and beyond. FASEB J. 15:1118–1131.
  • Shi, Y., and J. L. Manley. 2007. A complex signaling pathway regulates SRp38 phosphorylation and pre-mRNA splicing in response to heat shock. Mol. Cell 28:79–90.
  • Shin, C., Y. Feng, and J. L. Manley. 2004. Dephosphorylated SRp38 acts as a splicing repressor in response to heat shock. Nature 427:553–558.
  • Shin, C., and J. L. Manley. 2004. Cell signalling and the control of pre-mRNA splicing. Nat. Rev. Mol. Cell Biol. 5:727–738.
  • Shin, C., and J. L. Manley. 2002. The SR protein SRp38 represses splicing in M phase cells. Cell 111:407–417.
  • Vogel, J. L., D. A. Parsell, and S. Lindquist. 1995. Heat-shock proteins Hsp104 and Hsp70 reactivate mRNA splicing after heat inactivation. Curr. Biol. 5:306–317.
  • Vos, M. J., B. Kanon, and H. H. Kampingas. 2009. HSPB7 is a SC35 speckle resident small heat shock protein. Biochim. Biophys. Acta 1793:1343–1353.
  • Yost, H. J., and S. Lindquist. 1991. Heat shock proteins affect RNA processing during the heat shock response of Saccharomyces cerevisiae. Mol. Cell. Biol. 11:1062–1068.
  • Yost, H. J., and S. Lindquist. 1986. RNA splicing is interrupted by heat shock and is rescued by heat shock protein synthesis. Cell 45:185–193.
  • Yost, H. J., and S. Lindquist. 1988. Translation of unspliced transcripts after heat shock. Science 242:1544–1548.
  • Yost, H. J., R. B. Petersen, and S. Lindquist. 1990. RNA metabolism: strategies for regulation in the heat shock response. Trends Genet. 6:223–227.

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