Literature DB >> 15485839

Regulation of the HscA ATPase reaction cycle by the co-chaperone HscB and the iron-sulfur cluster assembly protein IscU.

Jonathan J Silberg1, Tim L Tapley, Kevin G Hoff, Larry E Vickery.   

Abstract

The ATPase activity of HscA, a specialized hsp70 molecular chaperone from Escherichia coli, is regulated by the iron-sulfur cluster assembly protein IscU and the J-type co-chaperone HscB. IscU behaves as a substrate for HscA, and HscB enhances the binding of IscU to HscA. To better understand the mechanism by which HscB and IscU regulate HscA, we examined binding of HscB to the different conformational states of HscA and the effects of HscB and IscU on the kinetics of the individual steps of the HscA ATPase reaction cycle. Affinity sensor studies revealed that whereas IscU binds both ADP (R-state) and ATP (T-state) HscA complexes, HscB interacts only with an ATP-bound state. Studies of ATPase activity under single-turnover and rapid mixing conditions showed that both IscU and HscB interact with the low peptide affinity T-state of HscA (HscA++.ATP) and that both modestly accelerate (3-10-fold) the rate-determining steps in the HscA reaction cycle, k(hyd) and k(T-->R). When present together, IscU and HscB synergistically stimulate both k(hyd) (approximately = 500-fold) and k(T-->R) (approximately = 60-fold), leading to enhanced formation of the HscA.ADP-IscU complex (substrate capture). Following ADP/ATP exchange, IscU also stimulates k(R-->T) (approximately = 50-fold) and thereby accelerates the rate at which the low peptide affinity HscA++.ATP T-state is regenerated. Because HscA nucleotide exchange is fast, the overall rate of the chaperone cycle in vivo will be determined by the availability of the IscU-HscB substrate-co-chaperone complex.

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Year:  2004        PMID: 15485839     DOI: 10.1074/jbc.M410117200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  34 in total

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Authors:  Michael T Vu; Peng Zhai; Juhye Lee; Cecilia Guerra; Shirley Liu; Michael C Gustin; Jonathan J Silberg
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2.  Functional implications of the interaction between HscB and IscU in the biosynthesis of FeS clusters.

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3.  Modeling Hsp70-mediated protein folding.

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Authors:  Alistair Harrison; William C Ray; Beth D Baker; David W Armbruster; Lauren O Bakaletz; Robert S Munson
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Review 5.  Tangled web of interactions among proteins involved in iron-sulfur cluster assembly as unraveled by NMR, SAXS, chemical crosslinking, and functional studies.

Authors:  Jin Hae Kim; Jameson R Bothe; T Reid Alderson; John L Markley
Journal:  Biochim Biophys Acta       Date:  2014-11-22

6.  The N-terminal Domain of Escherichia coli Assimilatory NADPH-Sulfite Reductase Hemoprotein Is an Oligomerization Domain That Mediates Holoenzyme Assembly.

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Journal:  J Biol Chem       Date:  2015-06-18       Impact factor: 5.157

7.  The unique regulation of iron-sulfur cluster biogenesis in a Gram-positive bacterium.

Authors:  Joana A Santos; Noelia Alonso-García; Sandra Macedo-Ribeiro; Pedro José Barbosa Pereira
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Review 8.  Hsp70 chaperones: cellular functions and molecular mechanism.

Authors:  M P Mayer; B Bukau
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9.  Regulated release of ERdj3 from unfolded proteins by BiP.

Authors:  Yi Jin; Walid Awad; Kseniya Petrova; Linda M Hendershot
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Review 10.  Metamorphic protein IscU alternates conformations in the course of its role as the scaffold protein for iron-sulfur cluster biosynthesis and delivery.

Authors:  John L Markley; Jin Hae Kim; Ziqi Dai; Jameson R Bothe; Kai Cai; Ronnie O Frederick; Marco Tonelli
Journal:  FEBS Lett       Date:  2013-01-16       Impact factor: 4.124

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