Literature DB >> 9222587

Evidence for a role of Hsp70 in the regulation of the heat shock response in mammalian cells.

R Baler1, J Zou, R Voellmy.   

Abstract

Heat and other environmental insults (stress) cause unfolding of proteins, triggering the activation of heat shock transcription factor HSF (HSF1 in vertebrates) that, in higher eukaryotes, involves trimerization of the factor and acquisition of heat shock element (HSE) DNA-binding ability. Interaction of activated HSF1 with HSEs in promoters of genes encoding heat shock proteins (Hsps) enhances their expression. It was suggested that Hsp70 may function as the negative regulator of HSF1. In the simplest model, stress-unfolded proteins would compete with monomeric HSF1 for Hsp70 binding. This competition would result in dissociation of an HSF1-Hsp70 complex, allowing trimerization of released HSF1 monomers. In support of this model, we present evidence herein that 1) non-activated HSF1 forms a 1:1 complex with Hsp70, 2) both rates of heat-induced appearance of HSF1 oligomers and rates of disappearance of HSF1 heterodimers and monomers decrease when concentrations of unengaged Hsps are increased, and 3) transient overexpression of Hsp70 inhibits heat activation of HSF1.

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Year:  1996        PMID: 9222587      PMCID: PMC313015          DOI: 10.1379/1466-1268(1996)001<0033:efaroh>2.3.co;2

Source DB:  PubMed          Journal:  Cell Stress Chaperones        ISSN: 1355-8145            Impact factor:   3.667


  36 in total

Review 1.  Heat shock factor function and regulation in response to cellular stress, growth, and differentiation signals.

Authors:  K A Morano; D J Thiele
Journal:  Gene Expr       Date:  1999

2.  Multiple components of the HSP90 chaperone complex function in regulation of heat shock factor 1 In vivo.

Authors:  S Bharadwaj; A Ali; N Ovsenek
Journal:  Mol Cell Biol       Date:  1999-12       Impact factor: 4.272

3.  The septic shock associated HSPA1B1267 polymorphism influences production of HSPA1A and HSPA1B.

Authors:  Suzanna E L Temple; Karey Y Cheong; Kristin G Ardlie; David Sayer; Grant W Waterer
Journal:  Intensive Care Med       Date:  2004-06-30       Impact factor: 17.440

Review 4.  On mechanisms that control heat shock transcription factor activity in metazoan cells.

Authors:  Richard Voellmy
Journal:  Cell Stress Chaperones       Date:  2004       Impact factor: 3.667

5.  Characterization of goldfish heat shock protein-30 induced upon severe heat shock in cultured cells.

Authors:  Hidehiro Kondo; Ryohei Harano; Misako Nakaya; Shugo Watabe
Journal:  Cell Stress Chaperones       Date:  2004       Impact factor: 3.667

6.  Regulation of the Hsf1-dependent transcriptome via conserved bipartite contacts with Hsp70 promotes survival in yeast.

Authors:  Sara Peffer; Davi Gonçalves; Kevin A Morano
Journal:  J Biol Chem       Date:  2019-06-25       Impact factor: 5.157

Review 7.  The exercise-induced stress response of skeletal muscle, with specific emphasis on humans.

Authors:  James P Morton; Anna C Kayani; Anne McArdle; Barry Drust
Journal:  Sports Med       Date:  2009       Impact factor: 11.136

8.  HSP90 interacts with and regulates the activity of heat shock factor 1 in Xenopus oocytes.

Authors:  A Ali; S Bharadwaj; R O'Carroll; N Ovsenek
Journal:  Mol Cell Biol       Date:  1998-09       Impact factor: 4.272

9.  Role of Hsp17.4-CII as coregulator and cytoplasmic retention factor of tomato heat stress transcription factor HsfA2.

Authors:  Markus Port; Joanna Tripp; Dirk Zielinski; Christian Weber; Dirk Heerklotz; Sybille Winkelhaus; Daniela Bublak; Klaus-Dieter Scharf
Journal:  Plant Physiol       Date:  2004-07-09       Impact factor: 8.340

10.  Two different heat shock transcription factors regulate immediate early expression of stress genes in Arabidopsis.

Authors:  C Lohmann; G Eggers-Schumacher; M Wunderlich; F Schöffl
Journal:  Mol Genet Genomics       Date:  2003-12-04       Impact factor: 3.291

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