601
Views
12
CrossRef citations to date
0
Altmetric
Research Article

Mild hyperthermia enhances the expression and induces oscillations in the Dicer protein

, &
Pages 51-61 | Received 09 Aug 2012, Accepted 22 Nov 2012, Published online: 11 Jan 2013

References

  • Levinthal C. How to Fold Graciously. Mossbauer Spectroscopy. ‘Biological Systems’ Proc of a meeting held at Allerton house, Monticello, Illinios, JTP DeBrunner, JCM Tsibris, E Miinck. University of Illinois Press, Urbana, IL 1969; 22–24
  • Bryngelson JD, Socci ND, Wolynes PG. Funnels, pathways, and the energy landscape of protein folding: A synthesis. Proteins 1995; 21: 167–195
  • Dubois MF, Hovanessian AG, Bensaude O. Heat-shock-induced denaturation of proteins. Characterization of the insolubilization of the interferon-induced p68 kinase. J Biol Chem 1991; 266: 9707–9711
  • Hendrick JP, Hartl F-U. Molecular Chaperone Functions of Heat-Shock Proteins. Annu Rev Biochem 1993; 62: 349–384
  • Mifflin LC, Cohen RE. Characterization of denatured protein inducers of the heat shock (stress) response in Xenopus laevis oocytes. J Biol Chem 1994; 269: 15710–15717
  • Wu C. Heat shock transcription factors: Structure and regulation. Annu Rev Cell Dev Biol 1995; 11: 441–469
  • Wilmink GJ, Rivest BD, Ibey BL, Cundin LX, Haywood EC, Roach WP. A signature microRNA expression profile for the cellular response to thermal stress. Proc SPIE 2009; 7175: 7175OU1–7175OU-11
  • Ma S, Bhattacharjee RB, Bag J. Expression of poly(A)-binding protein is upregulated during recovery from heat shock in HeLa cells. FEBS J 2009; 276: 552–570
  • Vabulas RM, Raychaudhuri S, Hayer-Hartl M, Hartl FU. Protein Folding in the Cytoplasm and the Heat Shock Response. Cold Spring Harb Perspect Biol 2010; 2: a004390, doi:10.1101/cshperspect.a004390
  • Falk MH, Issels RD. Hyperthermia in oncology. Int J Hyperthermia 2001; 17: 1–18
  • Mace TA, Zhong L, Kokolus KM, Repasky EA. Effector CD8+ T cell IFN-γ production and cytotoxicity are enhanced by mild hyperthermia. Int J Hyperthermia 2012; 28: 9–18
  • Richter K, Haslbeck M, Buchner J. The heat shock response: Life on the verge of death. Mol Cell 2010; 40: 253–266
  • Akerfelt M, Morimoto RI, Sistonen L. Heat shock factors: Integrators of cell stress, development and lifespan. Nat Rev Mol Cell Biol 2010; 11: 545–555
  • Pirkkala L, Nykanen P, Sistonen L. Roles of the heat shock transcription factors in regulation of the heat shock response and beyond. FASEB J 2001; 15: 1118–1131
  • Westerheide SD, Morimoto RI. Heat shock response modulators as therapeutic tools for diseases of protein conformation. J Biol Chem 2005; 280: 33 097–33100
  • Taipale M, Jarosz DF, Lindquist S. Hsp90 at the hub of protein homeostasis: Emerging mechanistic insights. Nat Rev Mol Cell Biol 2010; 11: 515–528
  • Ciocca DR, Fanelli MA, Cuello-Carrion FD, Castro GN. Heat shock proteins in prostate cancer: From tumorigenesis to the clinic. Int J Hyperthermia 2010; 26: 737–747
  • Zou J, Guo Y, Guettouche T, Smith DF, Voellmy R. Repression of heat shock transcription factor HSFl activation by Hsp90 (Hsp90 complex) that forms a stress-sensitive complex with HSFl. Cell 1998; 94: 471–480
  • Morimoto RI. The heat shock response: Systems biology of proteotoxic stress in aging and disease. Cold Spring Harb Symp Quant Biol 2011; 76: 91–99
  • Spriggs KA, Bushell M, Willis AE. Translational Regulation of gene expression during conditions of cell stress. Mol Cell 2010; 40: 228–237
  • Cuesta R, Laroia G, Schneider RJ. Chaperone Hsp27 inhibits translation during heat shock by bind eiF4G and facilitates dissociation of cap-initiation complexes. Genes Dev 2000; 14: 1460–1470
  • Fritah S, Cole E, Boyault C, Govin J, Sadoul K, Chiocca S, et al. Heat-shock factor 1 controls genome-wide acetylation in heat-shocked cells. Mol Biol Cell 2009; 20: 4976–4984
  • Wilmink GJ, Roth CL, Ibey BL, Ketchum N, Bernhard J, Cerna CZ, et al. Identification of microRNAs associated with hyperthermia-induced cellular stress response. Cell Stress Chaperones 2010; 15: 1027–1038
  • Yu J, Liu F, Yin P, Zhu X, Cheng G, Wang N, et al. Integrating miRNA and mRNA expressions profiles in response to heat stress-induced injury in rat small intestine. Funct Integr Genomics 2011; 11: 203–213
  • Kaur P, Hurwitz MD, Krishnan S, Asea A. Combined Hyperthermia and Radiotherapy for the Treatment of Cancer. Cancers 2011; 3: 3799–3823
  • Gandellini P, Profumo V, Folini M, Zaffaroni N. MicroRNAs as new therapeutic targets and tools in cancer. Expert Opin Ther Targets 2011; 15: 265–279
  • Wiesen JL, Tomasi TB. Dicer is regulated by cellular stresses and interferons. Mol Immunol 2008; 46: 1222–1228
  • Payne J, Nair MP, Ambrus JL, Chadha KC. Mild hyperthermia modulates biological activities of interferons. Int J Hyperthermia 2000; 16: 492–507
  • Detzer A, Engel C, Wiinsche W, Sczakiel G. Cell stress is related to the re-localization of Argonaute 2 and to decreased RNA interference in human cells. Nucl Acids Res 2011; 39: 2727–2741
  • Iwasaki S, Kobayashi M, Yoda M, Sakaguchi Y, Katsuma S, Suzuki T, et al. Hsc70/Hsp90 chaperone machinery mediates ATP-dependent RISC loading of small RNA duplexes. Mol Cell 2010; 39: 292–299
  • McKendry R, John J, Flavell D, Muller M, Kerr IM, Stark GR. High-frequency mutagenesis of human cells and characterization of a mutant unresponsive to both alpha and gamma interferons. Proc Natl Acad Sci USA 1991; 88: 11455–11459
  • Hunt JS, Banerjee S, Pace JL. Differential expression and regulation of a human transgene, HLA-B27, in mouse placental and embryonic cell lines. Mol Human Reprod 1998; 4: 817–825
  • Khandrika L, Kim FJ, Campagna A, Koul S, Meacham RB, Koul HK. Primary culture and characterization of human renal inner medullary collecting duct epithelial cells. J Urol 2008; 179: 2057–2063
  • Karube Y, Tanaka H, Osada H, Tomida S, Tatematsu Y, Yanagisawa K, et al. Reduced expression of Dicer associated with poor prognosis in lung cancer patients. Cancer Sci 2005; 96: 111–115
  • Nelson DE, Ihekwaba AE, Elliott M, Johnson JR, Gibney CA, Foreman BE, et al. Oscillations in NF-kappaB signaling control the dynamics of gene expression. Science 2004; 306: 704–708
  • Avraham R, Yarden Y. Regulation of signaling by microRNAs. Biochem Soc Trans 2012; 40: 26–30
  • Kadener S, Menet JS, Sugino K, Horwich MD, Weissbein U, Nawathean P, et al. A role for microRNAs in the Drosophila circadian clock. Genes Dev 2009; 23: 2179–2191
  • Saini C, Morf J, Stratmann M, Gos P, Schibler U. Simulated body temperature rhythms reveal the phase-shifting behavior and plasticity of mammalian circadian oscillators. Genes Dev 2012; 26: 567–580
  • Bartfeld S, Hess S, Bauer B, Machuy N, Ogilvie LA, Schuchhardt J, et al. High-throughput and single-cell imaging of NF-kappaB oscillations using monoclonal cell lines. BMC Cell Biol 2010; 11: 21
  • Sun L, Yang G, Zaidi M, Iqbal J. TNF-induced gene expression oscillates in time. Biochem Biophys Res Commun 2008; 371: 900–905
  • Shankaran H, Ippolito DL, Chrisler WB, Resat H, Bollinger N, Opresko LK, et al. Rapid and sustained nuclear-cytoplasmic ERK oscillations induced by epidermal growth factor. Mol Syst Biol 2009; 5: 332
  • Wang SM, Khandekar JD, Kaul KL, Winchester DJ, Morimoto RI. A method for the quantitative analysis of human heat shock gene expression using a multiplex RT-PCR assay. Cell Stress Chaperones 1999; 4: 153–161
  • Zobeck KL, Buckley MS, Zipfel WR, Lis JT. Recruitment timing and dynamics of transcription factors at the Hsp70 loci in living cells. Mol Cell 2010; 40: 965–975
  • Iki T, Yoshikawa M, Nishikiori M, Jaudal MC, Matsumoto-Yokoyama E, Mitsuhara I, et al. In vitro assembly of plant RNA-induced silencing complexes facilitated by molecular chaperone Hsp90. Mol Cell 2010; 39: 282–291
  • Landthaler M. Chaperones get RISC loaded. Mol Cell 2010; 39: 161–162
  • Leung AK, Sharp PA. Quantitative analysis of Argonaute protein reveals microRNA-dependent localization to stress granules. Proc Natl Acad Sci USA 2006; 103: 18125–18130
  • Cazalla D, Yario T. Steitz JA. Down-regulation of a host microRNA by a Herpes virus saimiri noncoding RNA. Science 2010; 328: 1563–1566
  • Krol J, Busskamp V, Markiewicz I, Stadler MB, Ribi S, Richter J, et al. Characterizing light-regulated retinal microRNAs reveals rapid turnover as a common property of neuronal microRNAs. Cell 2010; 141: 618–631
  • Crosby ME, Kulshreshtha R, Ivan M, Glazer PM. MicroRNA regulation of DNA repair gene expression in hypoxic stress. Cancer Res 2009; 69: 1221–1229
  • Strum JC, Johnson JH, Ward J, Xie H, Feild J, Hester A, et al. MicroRNA 132 regulates nutritional stress-induced chemokine production through repression of SIRT1. Mol Endocrinol 2009; 23: 1876–1884
  • Sangokoya C, Telen MJ, Chi JT. MicroRNA miR-144 modulates oxidative stress tolerance and associates with anemia severity in sickle cell disease. Blood 2010; 116: 4338–4348
  • Saleh AD, Savage JE, Cao L, Soule BP, Ly D, DeGraff W, et al. Cellular stress induced alterations in microRNA let-7a and let-7b expression are dependent on p53. PLoS One 2011; 6: e24429
  • Leung AK, Sharp PA. MicroRNAs: A safeguard against turmoil?. Cell 2007; 130: 581–585
  • Krol J, Loedige I, Filipowicz W. The widespread regulation of microRNA biogenesis, function and decay. Nat Rev Genet 2010; 11: 597–610
  • Kawai S, Amano A. BRCA1 regulates microRNA biogenesis via the DROSHA microprocessor complex. J Cell Biol 2012; 197: 201–208

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.