Literature DB >> 18457423

Two distinct disulfide bonds formed in human heat shock transcription factor 1 act in opposition to regulate its DNA binding activity.

Ming Lu1, Hee-Eun Kim, Chun-Ri Li, Sol Kim, Im-Jung Kwak, Yun-Ju Lee, So-Sun Kim, Ji-Young Moon, Cho Hee Kim, Dong-Kyoo Kim, Ho Sung Kang, Jang-Su Park.   

Abstract

Under circumstances of heat stress, heat shock transcription factor 1 (HSF1) plays important roles in heat shock protein expression. In this study, an increasing concentration of dithiothreitol (DTT) was found to either enhance or inhibit the heat-induced trimerization of HSF1, suggesting the involvement of dual redox-dependent HSF1 activation mechanisms. Our in vitro experiments show that the heat-induced bonding between the cysteine C36 and C103 residues of HSF1 forms an intermolecular disulfide covalent bond (SS-I bond) and that it directly causes HSF1 to trimerize and bond to DNA. Gel filtration assays show that HSF1 can form intermolecular hydrophobic interaction-mediated (iHI-m) noncovalent oligomers. However, the lack of a trimerization domain prevents HSF1 activation, which suggests that iHI-m noncovalent trimerization is a precondition of SS-I bond formation. On the other hand, intramolecular SS-II bond (in which the C153, C373, and C378 residues of HSF1 participate) formation inhibits this iHI-m trimerization, thereby preventing SS-I bond formation and DNA binding. Thus, HSF1 activation is regulated positively by intermolecular SS-I bond formation and negatively by intramolecular SS-II bond formation. Importantly, these two SS bonds confer different DTT sensitivities (the SS-II bond is more sensitive). Therefore, a low concentration of DTT cleaves the SS-II bond but not the SS-I bond and thus improves DNA binding of HSF1, whereas a high concentration DTT cuts both SS bonds and inhibits HSF1 activation. We propose that these interesting effects further explain cellular HSF1 trimerization, DNA binding, and transcription when cells are under stress.

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Year:  2008        PMID: 18457423     DOI: 10.1021/bi702185u

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  18 in total

Review 1.  Cellular stress responses, the hormesis paradigm, and vitagenes: novel targets for therapeutic intervention in neurodegenerative disorders.

Authors:  Vittorio Calabrese; Carolin Cornelius; Albena T Dinkova-Kostova; Edward J Calabrese; Mark P Mattson
Journal:  Antioxid Redox Signal       Date:  2010-08-28       Impact factor: 8.401

Review 2.  Cellular stress mechanisms of prenatal maternal stress: Heat shock factors and oxidative stress.

Authors:  Jonathan Dowell; Benjamin A Elser; Rachel E Schroeder; Hanna E Stevens
Journal:  Neurosci Lett       Date:  2019-07-09       Impact factor: 3.046

3.  HSF1-dependent upregulation of Hsp70 by sulfhydryl-reactive inducers of the KEAP1/NRF2/ARE pathway.

Authors:  Ying Zhang; Young-Hoon Ahn; Ivor J Benjamin; Tadashi Honda; Ronald J Hicks; Vittorio Calabrese; Philip A Cole; Albena T Dinkova-Kostova
Journal:  Chem Biol       Date:  2011-11-23

4.  Structure of human heat-shock transcription factor 1 in complex with DNA.

Authors:  Tobias Neudegger; Jacob Verghese; Manajit Hayer-Hartl; F Ulrich Hartl; Andreas Bracher
Journal:  Nat Struct Mol Biol       Date:  2016-01-04       Impact factor: 15.369

5.  Functional HSF1 requires aromatic-participant interactions in protecting mouse embryonic fibroblasts against apoptosis via G2 cell cycle arrest.

Authors:  Ziwei Chang; Ming Lu; Sung-Min Park; Hyun-Kyung Park; Ho Sung Kang; Youngshang Pak; Jang-Su Park
Journal:  Mol Cells       Date:  2012-04-17       Impact factor: 5.034

6.  Differential correlations between changes to glutathione redox state, protein ubiquitination, and stress-inducible HSPA chaperone expression after different types of oxidative stress.

Authors:  Pierre-Marie Girard; Nathalie Peynot; Jean-Marc Lelièvre
Journal:  Cell Stress Chaperones       Date:  2018-05-12       Impact factor: 3.667

7.  TG2 regulates the heat-shock response by the post-translational modification of HSF1.

Authors:  Federica Rossin; Valeria Rachela Villella; Manuela D'Eletto; Maria Grazia Farrace; Speranza Esposito; Eleonora Ferrari; Romina Monzani; Luca Occhigrossi; Vittoria Pagliarini; Claudio Sette; Giorgio Cozza; Nikolai A Barlev; Laura Falasca; Gian Maria Fimia; Guido Kroemer; Valeria Raia; Luigi Maiuri; Mauro Piacentini
Journal:  EMBO Rep       Date:  2018-05-11       Impact factor: 8.807

8.  HSF1 protects neurons through a novel trimerization- and HSP-independent mechanism.

Authors:  Pragya Verma; Jason A Pfister; Sathi Mallick; Santosh R D'Mello
Journal:  J Neurosci       Date:  2014-01-29       Impact factor: 6.167

9.  The long noncoding RNA NEAT1 and nuclear paraspeckles are up-regulated by the transcription factor HSF1 in the heat shock response.

Authors:  S Mohammad Lellahi; Ingrid Arctander Rosenlund; Annica Hedberg; Liv Torill Kiær; Ingvild Mikkola; Erik Knutsen; Maria Perander
Journal:  J Biol Chem       Date:  2018-10-10       Impact factor: 5.157

Review 10.  Small molecule activators of the heat shock response: chemical properties, molecular targets, and therapeutic promise.

Authors:  James D West; Yanyu Wang; Kevin A Morano
Journal:  Chem Res Toxicol       Date:  2012-07-31       Impact factor: 3.739

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