The crystal structure of the peptide-binding fragment from the yeast Hsp40 protein Sis1.
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[1] T. Rapoport,et al. J proteins catalytically activate Hsp70 molecules to trap a wide range of peptide sequences. , 1998, Molecular cell.
[2] P. Sigler,et al. The Crystal Structure of a GroEL/Peptide Complex Plasticity as a Basis for Substrate Diversity , 1999, Cell.
[3] K. Flaherty,et al. Three-dimensional structure of the ATPase fragment of a 70K heat-shock cognate protein , 1990, Nature.
[4] C. Georgopoulos,et al. Structure-Function Analysis of the Zinc Finger Region of the DnaJ Molecular Chaperone* , 1996, The Journal of Biological Chemistry.
[5] K. Arndt,et al. The yeast SIS1 protein, a DnaJ homolog, is required for the initiation of translation , 1993, Cell.
[6] C. Georgopoulos,et al. Genetic and biochemical characterization of mutations affecting the carboxy‐terminal domain of the Escherichia coli molecular chaperone DnaJ , 1998, Molecular microbiology.
[7] K. Arndt,et al. Characterization of SIS1, a Saccharomyces cerevisiae homologue of bacterial dnaJ proteins , 1991, The Journal of cell biology.
[8] J. Zou,et al. Improved methods for building protein models in electron density maps and the location of errors in these models. , 1991, Acta crystallographica. Section A, Foundations of crystallography.
[9] R J Read,et al. Crystallography & NMR system: A new software suite for macromolecular structure determination. , 1998, Acta crystallographica. Section D, Biological crystallography.
[10] Mike Carson,et al. Ribbon models of macromolecules , 1987 .
[11] F. Hartl,et al. A zinc finger‐like domain of the molecular chaperone DnaJ is involved in binding to denatured protein substrates. , 1996, The EMBO journal.
[12] D. McRee,et al. A visual protein crystallographic software system for X11/Xview , 1992 .
[13] C. Georgopoulos,et al. The NH2-terminal 108 amino acids of the Escherichia coli DnaJ protein stimulate the ATPase activity of DnaK and are sufficient for lambda replication. , 1994, The Journal of biological chemistry.
[14] Y. Kashi,et al. Residues in chaperonin GroEL required for polypeptide binding and release , 1994, Nature.
[15] C. Gross,et al. Interaction of the Hsp70 molecular chaperone, DnaK, with its cochaperone DnaJ. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[16] D. Cyr,et al. The Conserved Carboxyl Terminus and Zinc Finger-like Domain of the Co-chaperone Ydj1 Assist Hsp70 in Protein Folding* , 1998, The Journal of Biological Chemistry.
[17] J. Hoskins,et al. Monomerization of RepA dimers by heat shock proteins activates binding to DNA replication origin. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[18] J. Reinstein,et al. Mechanism of regulation of hsp70 chaperones by DnaJ cochaperones. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[19] F. Hartl,et al. Molecular chaperones in cellular protein folding. , 1995, BioEssays : news and reviews in molecular, cellular and developmental biology.
[20] P. Christen,et al. Kinetics of molecular chaperone action. , 1994, Science.
[21] A. Caplan,et al. Characterization of YDJ1: a yeast homologue of the bacterial dnaJ protein , 1991, The Journal of cell biology.
[22] T. Langer,et al. DnaJ-like proteins: molecular chaperones and specific regulators of Hsp70. , 1994, Trends in biochemical sciences.
[23] D. Cyr,et al. Protein Folding Activity of Hsp70 Is Modified Differentially by the Hsp40 Co-chaperones Sis1 and Ydj1* , 1998, The Journal of Biological Chemistry.
[24] J. Höhfeld,et al. The Carboxy-Terminal Domain of Hsc70 Provides Binding Sites for a Distinct Set of Chaperone Cofactors , 1998, Molecular and Cellular Biology.
[25] F. Hartl,et al. Successive action of DnaK, DnaJ and GroEL along the pathway of chaperone-mediated protein folding , 1992, Nature.
[26] D. Cyr,et al. Purification, crystallization and preliminary X-ray crystallographic studies of S. cerevisiae Hsp40 Sis1. , 1999, Acta crystallographica. Section D, Biological crystallography.
[27] W. Hendrickson. Determination of macromolecular structures from anomalous diffraction of synchrotron radiation. , 1991, Science.
[28] Craig M. Ogata,et al. Structural Analysis of Substrate Binding by the Molecular Chaperone DnaK , 1996, Science.
[29] A. Horwich,et al. The Hsp 70 and Hsp 60 Review Chaperone Machines , 1998 .
[30] G Vriend,et al. WHAT IF: a molecular modeling and drug design program. , 1990, Journal of molecular graphics.
[31] C. Sander,et al. Searching protein structure databases has come of age , 1994, Proteins.
[32] R. Huber,et al. Accurate Bond and Angle Parameters for X-ray Protein Structure Refinement , 1991 .
[33] A. Karzai,et al. A Bipartite Signaling Mechanism Involved in DnaJ-mediated Activation of the Escherichia coli DnaK Protein (*) , 1996, The Journal of Biological Chemistry.
[34] R. Morimoto,et al. Identification of a regulatory motif in Hsp70 that affects ATPase activity, substrate binding and interaction with HDJ‐1. , 1995, The EMBO journal.
[35] B. Matthews. Solvent content of protein crystals. , 1968, Journal of molecular biology.
[36] L. Lally. The CCP 4 Suite — Computer programs for protein crystallography , 1998 .
[37] T. Rapoport,et al. Proteins Catalytically Activate Hsp 70 Molecules to Trap a Wide Range of Peptide Sequences for extended hydrophobic peptide segments of at least seven residues , 1998 .
[38] Bernd Bukau,et al. The Hsp70 and Hsp60 Chaperone Machines , 1998, Cell.
[39] E. Eisenberg,et al. Polymerization of 70-kDa Heat Shock Protein by Yeast DnaJ in ATP (*) , 1995, The Journal of Biological Chemistry.
[40] K. Sharp,et al. Protein folding and association: Insights from the interfacial and thermodynamic properties of hydrocarbons , 1991, Proteins.
[41] F. Hartl. Molecular chaperones in cellular protein folding , 1996, Nature.