Asymmetric nucleotide transactions of the HslUV protease.
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[1] J. Berger,et al. Evolutionary relationships and structural mechanisms of AAA+ proteins. , 2006, Annual review of biophysics and biomolecular structure.
[2] J. Wang,et al. Crystal structures of the HslVU peptidase-ATPase complex reveal an ATP-dependent proteolysis mechanism. , 2001, Structure.
[3] Matthias Bochtler,et al. Characterization of the HslU chaperone affinity for HslV protease , 2005, Protein science : a publication of the Protein Society.
[4] A. Goldberg,et al. The heat-shock protein HslVU from Escherichia coli is a protein-activated ATPase as well as an ATP-dependent proteinase. , 1997, European journal of biochemistry.
[5] T. Baker,et al. Effects of protein stability and structure on substrate processing by the ClpXP unfolding and degradation machine , 2001, The EMBO journal.
[6] D. Mckay,et al. Crystal structure of HslUV complexed with a vinyl sulfone inhibitor: corroboration of a proposed mechanism of allosteric activation of HslV by HslU. , 2002, Journal of molecular biology.
[7] Christine B. Trame,et al. Crystal and Solution Structures of an HslUV Protease–Chaperone Complex , 2000, Cell.
[8] Hector H. Huang,et al. ATP ground- and transition states of bacterial enhancer binding AAA+ ATPases support complex formation with their target protein, sigma54. , 2007, Structure.
[9] Andreas Martin,et al. Distinct static and dynamic interactions control ATPase-peptidase communication in a AAA+ protease. , 2007, Molecular cell.
[10] Dong Young Kim,et al. Crystal Structure of ClpX Molecular Chaperone from Helicobacter pylori* , 2003, Journal of Biological Chemistry.
[11] R. Huber,et al. Crystal structure of heat shock locus V (HslV) from Escherichia coli. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[12] Tania A. Baker,et al. Asymmetric Interactions of ATP with the AAA+ ClpX6 Unfoldase: Allosteric Control of a Protein Machine , 2005, Cell.
[13] Robert Huber,et al. The structures of HslU and the ATP-dependent protease HslU–HslV , 2000, Nature.
[14] Kenji Takahashi,et al. Determination of the cleavage sites in SulA, a cell division inhibitor, by the ATP‐dependent HslVU protease from Escherichia coli , 2003, FEBS letters.
[15] Robert T Sauer,et al. Nucleotide-dependent substrate recognition by the AAA+ HslUV protease , 2005, Nature Structural &Molecular Biology.
[16] S. Eom,et al. The C-terminal Tails of HslU ATPase Act as a Molecular Switch for Activation of HslV Peptidase* , 2002, The Journal of Biological Chemistry.
[17] Jimin Wang,et al. The Structure of ClpP at 2.3 Å Resolution Suggests a Model for ATP-Dependent Proteolysis , 1997, Cell.
[18] Robert E. Cohen,et al. Proteasomes and their kin: proteases in the machine age , 2004, Nature Reviews Molecular Cell Biology.
[19] D. Mckay,et al. Structure and reactivity of an asymmetric complex between HslV and I-domain deleted HslU, a prokaryotic homolog of the eukaryotic proteasome. , 2003, Journal of molecular biology.
[20] J. Wang,et al. Nucleotide-dependent conformational changes in a protease-associated ATPase HsIU. , 2001, Structure.
[21] D. Mckay,et al. Kinetics of protein substrate degradation by HslUV. , 2004, Journal of structural biology.
[22] Wolfgang Baumeister,et al. The ATP-dependent HslVU protease from Escherichia coli is a four-ring structure resembling the proteasome , 1997, Nature Structural Biology.
[23] I. Marín,et al. Proteasome-Related HslU and HslV Genes Typical of Eubacteria Are Widespread in Eukaryotes , 2006, Journal of Molecular Evolution.
[24] E V Koonin,et al. AAA+: A class of chaperone-like ATPases associated with the assembly, operation, and disassembly of protein complexes. , 1999, Genome research.
[25] J. Seol,et al. ATP binding, but not its hydrolysis, is required for assembly and proteolytic activity of the HslVU protease in Escherichia coli. , 1997, Biochemical and biophysical research communications.
[26] R. Huber,et al. Isolation and characterization of the prokaryotic proteasome homolog HslVU (ClpQY) from Thermotoga maritima and the crystal structure of HslV. , 2002, Biophysical chemistry.
[27] A. Goldberg,et al. HslV-HslU: A novel ATP-dependent protease complex in Escherichia coli related to the eukaryotic proteasome. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[28] D. Mckay,et al. Structure of Haemophilus influenzae HslU protein in crystals with one-dimensional disorder twinning. , 2001, Acta crystallographica. Section D, Biological crystallography.
[29] A. Goldberg,et al. Purification and Characterization of the Heat Shock Proteins HslV and HslU That Form a New ATP-dependent Protease in Escherichia coli* , 1996, The Journal of Biological Chemistry.
[30] P. Hanson,et al. AAA+ proteins: have engine, will work , 2005, Nature Reviews Molecular Cell Biology.
[31] Greg L. Hersch,et al. Sculpting the Proteome with AAA+ Proteases and Disassembly Machines , 2004, Cell.
[32] A. Goldberg,et al. Proteolytic Activity of the ATP-dependent Protease HslVU Can Be Uncoupled from ATP Hydrolysis* , 1997, The Journal of Biological Chemistry.
[33] Sukyeong Lee,et al. Visualizing the ATPase cycle in a protein disaggregating machine: structural basis for substrate binding by ClpB. , 2007, Molecular cell.
[34] D. Gai,et al. Mechanisms of Conformational Change for a Replicative Hexameric Helicase of SV40 Large Tumor Antigen , 2004, Cell.
[35] A C Steven,et al. Six‐fold rotational symmetry of ClpQ, the E. coli homolog of the 20S proteasome, and its ATP‐dependent activator, ClpY , 1996, FEBS letters.
[36] R. Huber,et al. Mutational studies on HslU and its docking mode with HslV. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[37] R. Huber,et al. Functional interactions of HslV (ClpQ) with the ATPase HslU (ClpY) , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[38] D. Mckay,et al. Structure of Haemophilus influenzae HslV protein at 1.9 A resolution, revealing a cation-binding site near the catalytic site. , 2001, Acta crystallographica. Section D, Biological crystallography.
[39] Tania A. Baker,et al. Rebuilt AAA + motors reveal operating principles for ATP-fuelled machines , 2005, Nature.