Conserved, Disordered C Terminus of DnaK Enhances Cellular Survival upon Stress and DnaK in Vitro Chaperone Activity*
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Lila M Gierasch | L. Gierasch | R. G. Smock | Mandy E. Blackburn | Robert G Smock | Mandy E Blackburn
[1] C. Georgopoulos,et al. Trigger Factor can antagonize both SecB and DnaK/DnaJ chaperone functions in Escherichia coli , 2007, Proceedings of the National Academy of Sciences.
[2] Abderrahim Malki,et al. The thioredoxin homolog YbbN functions as a chaperone rather than as an oxidoreductase. , 2008, Biochemical and biophysical research communications.
[3] Shawn Y. Stevens,et al. Structural insights into substrate binding by the molecular chaperone DnaK , 2000, Nature Structural Biology.
[4] Arturo Muga,et al. Interdomain interaction through helices A and B of DnaK peptide binding domain , 2003, FEBS letters.
[5] Peter Tompa,et al. The role of structural disorder in the function of RNA and protein chaperones , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[6] Zsuzsanna Dosztányi,et al. ANCHOR: web server for predicting protein binding regions in disordered proteins , 2009, Bioinform..
[7] H. Dyson,et al. Intrinsically unstructured proteins and their functions , 2005, Nature Reviews Molecular Cell Biology.
[8] Jack H. Freed,et al. Nonlinear-Least-Squares Analysis of Slow-Motion EPR Spectra in One and Two Dimensions Using a Modified Levenberg–Marquardt Algorithm , 1996 .
[9] Wayne A. Hendrickson,et al. Insights into Hsp70 Chaperone Activity from a Crystal Structure of the Yeast Hsp110 Sse1 , 2007, Cell.
[10] L. Randall,et al. SecB, one small chaperone in the complex milieu of the cell , 2002, Cellular and Molecular Life Sciences CMLS.
[11] Craig M. Ogata,et al. Structural Analysis of Substrate Binding by the Molecular Chaperone DnaK , 1996, Science.
[12] E. Zuiderweg,et al. Solution conformation of wild-type E. coli Hsp70 (DnaK) chaperone complexed with ADP and substrate , 2009, Proceedings of the National Academy of Sciences.
[13] J Kuriyan,et al. Crystal structure of the nucleotide exchange factor GrpE bound to the ATPase domain of the molecular chaperone DnaK. , 1997, Science.
[14] Thomas I. Milac,et al. Disorder targets misorder in nuclear quality control degradation: a disordered ubiquitin ligase directly recognizes its misfolded substrates. , 2011, Molecular cell.
[15] D. E. Anderson,et al. Tobacco etch virus protease: mechanism of autolysis and rational design of stable mutants with wild-type catalytic proficiency. , 2001, Protein engineering.
[16] J. E. D. Esteves da Silva,et al. Coenzyme A affects firefly luciferase luminescence because it acts as a substrate and not as an allosteric effector , 2005, The FEBS journal.
[17] L. Gierasch,et al. Evolutionary coupling of structural and functional sequence information in the intracellular lipid‐binding protein family , 2006, Proteins.
[18] G. Crooks,et al. WebLogo: a sequence logo generator. , 2004, Genome research.
[19] E. Craig,et al. Getting Newly Synthesized Proteins into Shape , 2000, Cell.
[20] Lila M Gierasch,et al. Hsp70 chaperone ligands control domain association via an allosteric mechanism mediated by the interdomain linker. , 2007, Molecular cell.
[21] Stanislas Leibler,et al. An interdomain sector mediating allostery in Hsp70 molecular chaperones , 2010, Molecular systems biology.
[22] F. Hartl,et al. Successive action of DnaK, DnaJ and GroEL along the pathway of chaperone-mediated protein folding , 1992, Nature.
[23] J. Hoskins,et al. Heat shock protein 90 from Escherichia coli collaborates with the DnaK chaperone system in client protein remodeling , 2011, Proceedings of the National Academy of Sciences.
[24] C. Georgopoulos,et al. SecB is a bona fide generalized chaperone in Escherichia coli. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[25] H. Mori,et al. Construction of Escherichia coli K-12 in-frame, single-gene knockout mutants: the Keio collection , 2006, Molecular systems biology.
[26] Kengo Kinoshita,et al. Prediction of disordered regions in proteins based on the meta approach , 2008, Bioinform..
[27] D. Court,et al. Recombineering: a homologous recombination-based method of genetic engineering , 2009, Nature Protocols.
[28] B. Bukau,et al. Mutations altering heat shock specific subunit of RNA polymerase suppress major cellular defects of E. coli mutants lacking the DnaK chaperone. , 1990, The EMBO journal.
[29] M. Tsai,et al. Uncoupling of peptide-stimulated ATPase and clathrin-uncoating activity in deletion mutant of hsc70. , 1994, The Journal of biological chemistry.
[30] C. Georgopoulos,et al. Initiation of lambda DNA replication. The Escherichia coli small heat shock proteins, DnaJ and GrpE, increase DnaK's affinity for the lambda P protein. , 1993, The Journal of biological chemistry.
[31] J. Reinstein,et al. The role of ATP in the functional cycle of the DnaK chaperone system. , 1995, Journal of molecular biology.
[32] C. Georgopoulos,et al. Genetic analysis of two genes, dnaJ and dnaK, necessary for Escherichia coli and bacteriophage lambda DNA replication , 1978, Molecular and General Genetics MGG.
[33] F. Hartl,et al. Molecular Chaperones in the Cytosol: from Nascent Chain to Folded Protein , 2002, Science.
[34] M. Mayer,et al. Hsp70 chaperones: Cellular functions and molecular mechanism , 2005, Cellular and Molecular Life Sciences.
[35] A Keith Dunker,et al. Signal transduction via unstructured protein conduits. , 2008, Nature chemical biology.
[36] H. Carlson,et al. Mutagenesis Reveals the Complex Relationships between ATPase Rate and the Chaperone Activities of Escherichia coli Heat Shock Protein 70 (Hsp70/DnaK)* , 2010, The Journal of Biological Chemistry.
[37] Lila M Gierasch,et al. Segmental isotopic labeling of the Hsp70 molecular chaperone DnaK using expressed protein ligation. , 2010, Biopolymers.
[38] J. Cupp-Vickery,et al. Molecular Chaperones HscA/Ssq1 and HscB/Jac1 and Their Roles in Iron-Sulfur Protein Maturation , 2007, Critical reviews in biochemistry and molecular biology.
[39] E. Zuiderweg,et al. High-throughput screen for small molecules that modulate the ATPase activity of the molecular chaperone DnaK. , 2008, Analytical biochemistry.
[40] Carol A. Gross,et al. Structural Features Required for the Interaction of the Hsp70 Molecular Chaperone DnaK with Its Cochaperone DnaJ* , 1999, The Journal of Biological Chemistry.
[41] F. Hartl,et al. DnaK, DnaJ and GrpE form a cellular chaperone machinery capable of repairing heat‐induced protein damage. , 1993, The EMBO journal.
[42] Z. Obradovic,et al. Identification and functions of usefully disordered proteins. , 2002, Advances in protein chemistry.
[43] D Thirumalai,et al. Chaperonin-facilitated protein folding: optimization of rate and yield by an iterative annealing mechanism. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[44] F. Blattner,et al. Versatile insertion plasmids for targeted genome manipulations in bacteria: isolation, deletion, and rescue of the pathogenicity island LEE of the Escherichia coli O157:H7 genome , 1997, Journal of bacteriology.
[45] L. Gierasch,et al. Mutations in the substrate binding domain of the Escherichia coli 70 kDa molecular chaperone, DnaK, which alter substrate affinity or interdomain coupling. , 1999, Journal of molecular biology.
[46] Lila M. Gierasch,et al. Sending Signals Dynamically , 2009, Science.
[47] A Valencia,et al. Mutations in the DnaK chaperone affecting interaction with the DnaJ cochaperone. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[48] E. Vierling,et al. Substrate binding site flexibility of the small heat shock protein molecular chaperones , 2009, Proceedings of the National Academy of Sciences.
[49] D. Shortle,et al. Structure and dynamics of a denatured 131-residue fragment of staphylococcal nuclease: a heteronuclear NMR study. , 1994, Biochemistry.
[50] S. Hu,et al. Involvement of the 10-kDa C-terminal fragment of hsc70 in complexing with unfolded protein. , 1996, Archives of biochemistry and biophysics.
[51] A. Fink,et al. hsp70-protein complexes. Complex stability and conformation of bound substrate protein. , 1994, The Journal of biological chemistry.
[52] C. Georgopoulos,et al. Lon Protease Quality Control of Presecretory Proteins in Escherichia coli and Its Dependence on the SecB and DnaJ (Hsp40) Chaperones* , 2010, The Journal of Biological Chemistry.
[53] M. Mayer,et al. Amide Hydrogen Exchange Reveals Conformational Changes in Hsp70 Chaperones Important for Allosteric Regulation* , 2006, Journal of Biological Chemistry.
[54] G. Walker,et al. Escherichia coli dnaK null mutants are inviable at high temperature , 1987, Journal of bacteriology.
[55] J. Reinstein,et al. Nucleotide-induced Conformational Changes in the ATPase and Substrate Binding Domains of the DnaK Chaperone Provide Evidence for Interdomain Communication (*) , 1995, The Journal of Biological Chemistry.
[56] J. Reinstein,et al. Directed evolution of the DnaK chaperone: mutations in the lid domain result in enhanced chaperone activity. , 2010, Journal of molecular biology.
[57] M. Wilson,et al. Escherichia coli Thioredoxin-like Protein YbbN Contains an Atypical Tetratricopeptide Repeat Motif and Is a Negative Regulator of GroEL* , 2011, The Journal of Biological Chemistry.
[58] L. Gierasch,et al. Direct Comparison of a Stable Isolated Hsp70 Substrate-binding Domain in the Empty and Substrate-bound States* , 2006, Journal of Biological Chemistry.
[59] J. Reinstein,et al. The second step of ATP binding to DnaK induces peptide release. , 1996, Journal of molecular biology.