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106 peer-reviewed articles • 12,324 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1The role of the FKBP51–Hsp90 complex in Alzheimer’s disease: An emerging new drug target
Cell Stress and Chaperones, 2024, 29, 792-804
2.521Citations (PDF)
2Malachite Green Assay for the Discovery of Heat-Shock Protein 90 Inhibitors0.25Citations (PDF)
3The Crystal Structure of the Hsp90-LA1011 Complex and the Mechanism by Which LA1011 May Improve the Prognosis of Alzheimer’s Disease
Biomolecules, 2023, 13, 1051
3.115Citations (PDF)
4Advances towards Understanding the Mechanism of Action of the Hsp90 Complex
Biomolecules, 2022, 12, 600
3.150Citations (PDF)
5Recognition of BRAF by CDC37 and Re-Evaluation of the Activation Mechanism for the Class 2 BRAF-L597R Mutant
Biomolecules, 2022, 12, 905
3.13Citations (PDF)
6Structure of the TELO2-TTI1-TTI2 complex and its function in TOR recruitment to the R2TP chaperone
Cell Reports, 2021, 36, 109317
4.438Citations (PDF)
7Two-colour single-molecule photoinduced electron transfer fluorescence imaging microscopy of chaperone dynamics11.033Citations (PDF)
8Clinical and functional analyses of AIPL1 variants reveal mechanisms of pathogenicity linked to different forms of retinal degeneration
Scientific Reports, 2020, 10,
2.720Citations (PDF)
9The structure-function relationship of oncogenic LMTK3
Science Advances, 2020, 6,
8.238Citations (PDF)
10Chemical Perturbation of Oncogenic Protein Folding: from the Prediction of Locally Unstable Structures to the Design of Disruptors of Hsp90–Client Interactions
Chemistry - A European Journal, 2020, 26, 9459-9465
2.454Citations (PDF)
11Post-translational Regulation of FNIP1 Creates a Rheostat for the Molecular Chaperone Hsp90
Cell Reports, 2019, 26, 1344-1356.e5
4.453Citations (PDF)
12Hsp90 middle domain phosphorylation initiates a complex conformational program to recruit the ATPase-stimulating cochaperone Aha111.056Citations (PDF)
13Structural mechanism for regulation of the AAA-ATPases RUVBL1-RUVBL2 in the R2TP co-chaperone revealed by cryo-EM
Science Advances, 2019, 5,
8.255Citations (PDF)
14In vivo bioassay to test the pathogenicity of missense human AIP variants
Journal of Medical Genetics, 2018, 55, 522-529
2.224Citations (PDF)
15RPAP3 provides a flexible scaffold for coupling HSP90 to the human R2TP co-chaperone complex11.076Citations (PDF)
16The integrity and organization of the human AIPL1 functional domains is critical for its role as a HSP90-dependent co-chaperone for rod PDE6
Human Molecular Genetics, 2018, 27, 1309-1309
2.16Citations (PDF)
17The Stoichiometric Interaction of the Hsp90-Sgt1-Rar1 Complex by CD and SRCD Spectroscopy2.415Citations (PDF)
18Dihydropyridines Allosterically Modulate Hsp90 Providing a Novel Mechanism for Heat Shock Protein Co-induction and Neuroprotection2.435Citations (PDF)
19HECTD3 Mediates an HSP90-Dependent Degradation Pathway for Protein Kinase Clients
Cell Reports, 2017, 19, 2515-2528
4.430Citations (PDF)
20Differential Regulation of G1 CDK Complexes by the Hsp90-Cdc37 Chaperone System
Cell Reports, 2017, 21, 1386-1398
4.464Citations (PDF)
21The integrity and organization of the human AIPL1 functional domains is critical for its role as a HSP90-dependent co-chaperone for rod PDE6
Human Molecular Genetics, 2017, 26, 4465-4480
2.122Citations (PDF)
22Tumor suppressor Tsc1 is a new Hsp90 co‐chaperone that facilitates folding of kinase and non‐kinase clients
EMBO Journal, 2017, 36, 3650-3665
5.285Citations (PDF)
23The Structure of the R2TP Complex Defines a Platform for Recruiting Diverse Client Proteins to the HSP90 Molecular Chaperone System
Structure, 2017, 25, 1145-1152.e4
2.565Citations (PDF)
24Regulatory Mechanisms of Hsp900.030Citations (PDF)
25The structure of FKBP38 in complex with the MEEVD tetratricopeptide binding-motif of Hsp90
PLoS ONE, 2017, 12, e0173543
1.539Citations (PDF)
26Dihydropyridine Derivatives Modulate Heat Shock Responses and have a Neuroprotective Effect in a Transgenic Mouse Model of Alzheimer’s Disease1.741Citations (PDF)
27Mechanisms of Hsp90 regulation
Biochemical Journal, 2016, 473, 2439-2452
2.3309Citations (PDF)
28Rapid Proteasomal Degradation of Mutant Proteins Is the Primary Mechanism Leading to Tumorigenesis in Patients With MissenseAIPMutations3.360Citations (PDF)
29The FNIP co-chaperones decelerate the Hsp90 chaperone cycle and enhance drug binding11.076Citations (PDF)
30Cooperation of local motions in the Hsp90 molecular chaperone ATPase mechanism
Nature Chemical Biology, 2016, 12, 628-635
9.592Citations (PDF)
31Mps1 Mediated Phosphorylation of Hsp90 Confers Renal Cell Carcinoma Sensitivity and Selectivity to Hsp90 Inhibitors
Cell Reports, 2016, 14, 872-884
4.478Citations (PDF)
32Tah1 helix-swap dimerization prevents mixed Hsp90 co-chaperone complexes3.217Citations (PDF)
33c-Abl Mediated Tyrosine Phosphorylation of Aha1 Activates Its Co-chaperone Function in Cancer Cells
Cell Reports, 2015, 12, 1006-1018
4.463Citations (PDF)
34Asymmetric Hsp90 N Domain SUMOylation Recruits Aha1 and ATP-Competitive Inhibitors
Molecular Cell, 2014, 53, 317-329
8.7123Citations (PDF)
35Synthesis of macrolactam analogues of radicicol and their binding to heat shock protein Hsp901.825Citations (PDF)
36Structural Basis for Phosphorylation-Dependent Recruitment of Tel2 to Hsp90 by Pih1
Structure, 2014, 22, 805-818
2.599Citations (PDF)
37Structural basis for the interaction of HSP90 with R2TP and TTT complexes0.00Citations (PDF)
38Synthesis of 19-substituted geldanamycins with altered conformations and their binding to heat shock protein Hsp90
Nature Chemistry, 2013, 5, 307-314
15.984Citations (PDF)
39ATP-competitive inhibitors block protein kinase recruitment to the Hsp90-Cdc37 system
Nature Chemical Biology, 2013, 9, 307-312
9.5153Citations (PDF)
40Restricting direct interaction of CDC37 with HSP90 does not compromise chaperoning of client proteins
Oncogene, 2013, 34, 15-26
5.243Citations (PDF)
41Charged linker sequence modulates eukaryotic heat shock protein 90 (Hsp90) chaperone activity5.3125Citations (PDF)
42CDK-Dependent Hsp70 Phosphorylation Controls G1 Cyclin Abundance and Cell-Cycle Progression
Cell, 2012, 151, 1308-1318
23.8144Citations (PDF)
43Dynamic Tyrosine Phosphorylation Modulates Cycling of the HSP90-P50CDC37-AHA1 Chaperone Machine
Molecular Cell, 2012, 47, 434-443
8.7132Citations (PDF)
44Structure of the TPR Domain of AIP: Lack of Client Protein Interaction with the C-Terminal α-7 Helix of the TPR Domain of AIP Is Sufficient for Pituitary Adenoma Predisposition
PLoS ONE, 2012, 7, e53339
1.574Citations (PDF)
45The ‘active life’ of Hsp90 complexes2.5173Citations (PDF)
46Co-Crystalization and In Vitro Biological Characterization of 5-Aryl-4-(5-Substituted-2-4-Dihydroxyphenyl)-1,2,3-Thiadiazole Hsp90 Inhibitors
PLoS ONE, 2012, 7, e44642
1.520Citations (PDF)
47Targeting the Hsp90 Molecular Chaperone with Novel Macrolactams. Synthesis, Structural, Binding, and Cellular Studies
ACS Chemical Biology, 2011, 6, 1339-1347
2.527Citations (PDF)
48Threonine 22 Phosphorylation Attenuates Hsp90 Interaction with Cochaperones and Affects Its Chaperone Activity
Molecular Cell, 2011, 41, 672-681
8.7165Citations (PDF)
49Cloning, expression and structure determination of the major extracellular domain of the PepT***1 oligopeptide transporter2.50Citations (PDF)
50Features of the Streptomyces hygroscopicus HtpG reveal how partial geldanamycin resistance can arise with mutation to the ATP binding pocket of a eukaryotic Hsp90
FASEB Journal, 2011, 25, 3828-3837
2.335Citations (PDF)
51A Combinatorial Method to Enable Detailed Investigation of Protein–Protein Interactions
Future Medicinal Chemistry, 2011, 3, 271-282
1.85Citations (PDF)
52A simple yeast-based system for analyzing inhibitor resistance in the human cancer drug targets Hsp90α/β
Biochemical Pharmacology, 2010, 79, 1581-1588
3.820Citations (PDF)
53Inhibition of Hsp90 with Resorcylic Acid Macrolactones: Synthesis and Binding Studies
Chemistry - A European Journal, 2010, 16, 10366-10372
2.424Citations (PDF)
54Detection of the ATPase Activity of the Molecular Chaperones Hsp90 and Hsp72 Using the Transcreener™ ADP Assay Kit
SLAS Discovery, 2010, 15, 279-286
2.032Citations (PDF)
55Swe1Wee1-Dependent Tyrosine Phosphorylation of Hsp90 Regulates Distinct Facets of Chaperone Function
Molecular Cell, 2010, 37, 333-343
8.7190Citations (PDF)
56Structural Basis for Assembly of Hsp90-Sgt1-CHORD Protein Complexes: Implications for Chaperoning of NLR Innate Immunity Receptors
Molecular Cell, 2010, 39, 269-281
8.7124Citations (PDF)
57Hsp90 charged-linker truncation reverses the functional consequences of weakened hydrophobic contacts in the N domain5.985Citations (PDF)
58A common conformationally coupled ATPase mechanism for yeast and human cytoplasmic HSP90s
FEBS Journal, 2009, 276, 199-209
3.353Citations (PDF)
59Structural–Thermodynamic Relationships of Interactions in the N-Terminal ATP-Binding Domain of Hsp90
Journal of Molecular Biology, 2009, 392, 923-936
3.020Citations (PDF)
60Structural Basis of the Radicicol Resistance Displayed by a Fungal Hsp90
ACS Chemical Biology, 2009, 4, 289-297
2.554Citations (PDF)
61Structural and functional coupling of Hsp90- and Sgt1-centred multi-protein complexes
EMBO Journal, 2008, 27, 2789-2798
5.2120Citations (PDF)
624,5-Diarylisoxazole Hsp90 Chaperone Inhibitors: Potential Therapeutic Agents for the Treatment of Cancer4.7421Citations (PDF)
63Hsp90-Dependent Activation of Protein Kinases Is Regulated by Chaperone-Targeted Dephosphorylation of Cdc37
Molecular Cell, 2008, 31, 886-895
8.7200Citations (PDF)
64Optimizing Natural Products by Biosynthetic Engineering: Discovery of Nonquinone Hsp90 Inhibitors
Journal of Medicinal Chemistry, 2008, 51, 5494-5497
4.785Citations (PDF)
65Molecular Characterization of Macbecin as an Hsp90 Inhibitor
Journal of Medicinal Chemistry, 2008, 51, 2853-2857
4.761Citations (PDF)
66The Hsp90 molecular chaperone: an open and shut case for treatment
Biochemical Journal, 2008, 410, 439-453
2.3430Citations (PDF)
67The ATPase-dependent chaperoning activity of Hsp90a regulates thick filament formation and integration during skeletal muscle myofibrillogenesis
Development (Cambridge), 2008, 135, 1147-1156
2.098Citations (PDF)
68Chaperone ligand-discrimination by the TPR-domain protein Tah1
Biochemical Journal, 2008, 413, 261-268
2.350Citations (PDF)
69In the Yeast Heat Shock Response, Hsf1-Directed Induction of Hsp90 Facilitates the Activation of the Slt2 (Mpk1) Mitogen-Activated Protein Kinase Required for Cell Integrity
Eukaryotic Cell, 2007, 6, 744-752
2.759Citations (PDF)
70DNA fragmentation-based combinatorial approaches to soluble protein expression
Drug Discovery Today, 2007, 12, 931-938
5.120Citations (PDF)
71DNA fragmentation based combinatorial approaches to soluble protein expression
Drug Discovery Today, 2007, 12, 939-947
5.111Citations (PDF)
72Structure and Mechanism of the Hsp90 Molecular Chaperone Machinery14.11,058Citations (PDF)
73Structure of an Hsp90-Cdc37-Cdk4 Complex
Molecular Cell, 2006, 23, 697-707
8.7295Citations (PDF)
74Crystal structure of an Hsp90–nucleotide–p23/Sba1 closed chaperone complex
Nature, 2006, 440, 1013-1017
31.3943Citations (PDF)
75Inhibition of Hsp90 with Synthetic Macrolactones: Synthesis and Structural and Biological Evaluation of Ring and Conformational Analogs of Radicicol
Chemistry and Biology, 2006, 13, 1203-1215
4.765Citations (PDF)
76Combinatorial Domain Hunting: An effective approach for the identification of soluble protein domains adaptable to high-throughput applications
Protein Science, 2006, 15, 2356-2365
3.535Citations (PDF)
77Expressed in the Yeast Saccharomyces cerevisiae , Human ERK5 Is a Client of the Hsp90 Chaperone That Complements Loss of the Slt2p (Mpk1p) Cell Integrity Stress-Activated Protein Kinase
Eukaryotic Cell, 2006, 5, 1914-1924
2.768Citations (PDF)
78The identification, synthesis, protein crystal structure and in vitro biochemical evaluation of a new 3,4-diarylpyrazole class of Hsp90 inhibitors1.5234Citations (PDF)
79Qri2/Nse4, a component of the essential Smc5/6 DNA repair complex
Molecular Microbiology, 2005, 55, 1735-1750
1.943Citations (PDF)
80A Two-Hybrid Screen of the Yeast Proteome for Hsp90 Interactors Uncovers a Novel Hsp90 Chaperone Requirement in the Activity of a Stress-Activated Mitogen-Activated Protein Kinase, Slt2p (Mpk1p)
Eukaryotic Cell, 2005, 4, 849-860
2.7170Citations (PDF)
81Chaperoned Ubiquitylation—Crystal Structures of the CHIP U Box E3 Ubiquitin Ligase and a CHIP-Ubc13-Uev1a Complex
Molecular Cell, 2005, 20, 525-538
8.7420Citations (PDF)
82Investigating the protein-protein interactions of the yeast Hsp90 chaperone system by two-hybrid analysis: potential uses and limitations of this approach2.542Citations (PDF)
83Co-chaperone Regulation of Conformational Switching in the Hsp90 ATPase Cycle
Journal of Biological Chemistry, 2004, 279, 51989-51998
1.3199Citations (PDF)
84Structural basis for recruitment of the ATPase activator Aha1 to the Hsp90 chaperone machinery
EMBO Journal, 2004, 23, 511-519
5.2176Citations (PDF)
85High-throughput screening assay for inhibitors of heat-shock protein 90 ATPase activity
Analytical Biochemistry, 2004, 327, 176-183
2.0206Citations (PDF)
86The Mechanism of Hsp90 Regulation by the Protein Kinase-Specific Cochaperone p50cdc37
Cell, 2004, 116, 87-98
23.8346Citations (PDF)
87Sensitivity to Hsp90-targeting drugs can arise with mutation to the Hsp90 chaperone, cochaperones and plasma membrane ATP binding cassette transporters of yeast
FEBS Journal, 2003, 270, 4689-4695
0.256Citations (PDF)
88Yeast is selectively hypersensitised to heat shock protein 90 (Hsp90)-targetting drugs with heterologous expression of the human Hsp90β, a property that can be exploited in screens for new Hsp90 chaperone inhibitors
Gene, 2003, 302, 165-170
1.652Citations (PDF)
89Structural and Functional Analysis of the Middle Segment of Hsp90: Implications for ATP Hydrolysis and Client Protein and Cochaperone Interactions
Molecular Cell, 2003, 11, 647-658
8.7482Citations (PDF)
90Regulation of Hsp90 ATPase Activity by the Co-chaperone Cdc37p/p50
Journal of Biological Chemistry, 2002, 277, 20151-20159
1.3259Citations (PDF)
91Activation of the ATPase Activity of Hsp90 by the Stress-Regulated Cochaperone Aha1
Molecular Cell, 2002, 10, 1307-1318
8.7532Citations (PDF)
92Title is missing!
Journal of Biomolecular NMR, 2002, 23, 327-328
1.619Citations (PDF)
93Structure, function, and mechanism of the Hsp90 molecular chaperone4.5179Citations (PDF)
94Structure and in vivo function of Hsp904.8301Citations (PDF)
95The ATPase cycle of Hsp90 drives a molecular clamp' via transient dimerization of the N-terminal domains
EMBO Journal, 2000, 19, 4383-4392
5.2460Citations (PDF)
96Structural Basis for Inhibition of the Hsp90 Molecular Chaperone by the Antitumor Antibiotics Radicicol and Geldanamycin4.71,000Citations (PDF)
97Regulation of Hsp90 ATPase activity by tetratricopeptide repeat (TPR)-domain co-chaperones
EMBO Journal, 1999, 18, 754-762
5.2399Citations (PDF)
98ATP binding and hydrolysis are essential to the function of the Hsp90 molecular chaperone invivo
EMBO Journal, 1998, 17, 4829-4836
5.2696Citations (PDF)
99Identification and Structural Characterization of the ATP/ADP-Binding Site in the Hsp90 Molecular Chaperone
Cell, 1997, 90, 65-75
23.81,253Citations (PDF)
100A molecular clamp in the crystal structure of the N-terminal domain of the yeast Hsp90 chaperone
Nature Structural Biology, 1997, 4, 477-482
11.0230Citations (PDF)
101Synthesis of a modified gene encoding human ornithine transcarbamylase for expression in mammalian mitochondrial and universal translation systems: a novel approach towards correction of a genetic defect
Gene, 1996, 169, 251-255
1.615Citations (PDF)
102Recursive PCR: a novel technique for total gene synthesis2.2228Citations (PDF)
103The aconitase of Escherichia coli. Nucleotide sequence of the aconitase gene and amino acid sequence similarity with mitochondrial aconitases, the iron-responsive-element-binding protein and isopropylmalate isomerases
FEBS Journal, 1992, 204, 599-609
0.276Citations (PDF)
104Cloning of theHIS3 gene ofYarrowia lipolytica
Antonie Van Leeuwenhoek, 1991, 60, 95-99
1.23Citations (PDF)
105The aconitase of Escherichia coli: purification of the enzyme and molecular cloning and map location of the gene (acn)
Journal of General Microbiology, 1991, 137, 2505-2515
1.538Citations (PDF)
106The dihydropyridine LA1011 modulates multiple Hsp90—co-chaperone interactions relevant to Alzheimer’s disease2.50Citations (PDF)