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171 peer-reviewed articles • 6,221 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1Preferential survival of prebiotic metallopeptides in the presence of ultraviolet light
Chemical Science, 2025, 16, 11246-11254
7.14Citations (PDF)
2Kinetic and structural details of urease inactivation by thiuram disulphides3.07Citations (PDF)
3Metal selectivity and translocation mechanism characterization in proteoliposomes of the transmembrane NiCoT transporter NixA from Helicobacter pylori
Chemical Science, 2024, 15, 651-665
7.16Citations (PDF)
4Is bismuth(iii) able to inhibit the activity of urease? Puzzling results in the quest for soluble urease complexes for agrochemical and medicinal applications
Dalton Transactions, 2024, 53, 10553-10562
3.07Citations (PDF)
5Exploring the conformational space of the mobile flap in Sporosarcina pasteurii urease by cryo-electron microscopy8.14Citations (PDF)
6An isothermal calorimetry assay for determining steady state kinetic and Ensitrelvir inhibition parameters for SARS-CoV-2 3CL-protease
Scientific Reports, 2024, 14,
3.43Citations (PDF)
7The structure of the high-affinity nickel-binding site in the Ni,Zn-HypA•UreE2 complex
Metallomics, 2023, 15,
2.513Citations (PDF)
8Optimized Ebselen-Based Inhibitors of Bacterial Ureases with Nontypical Mode of Action
Journal of Medicinal Chemistry, 2023, 66, 2054-2063
5.627Citations (PDF)
9Functional contacts for activation of urease from Helicobacter pylori: an integrated approach using evolutionary couplings, in-cell enzymatic assays, and computational docking0.810Citations (PDF)
10Pro5 is not essential for the formation of ‘Ni-hook’ in nickel superoxide dismutase3.04Citations (PDF)
11Thiocarbamoyl Disulfides as Inhibitors of Urease and Ammonia Monooxygenase: Crystal Engineering for Novel Materials
Crystal Growth and Design, 2022, 22, 4528-4537
3.44Citations (PDF)
12Inhibition of Urease by Hydroquinones: A Structural and Kinetic Study3.416Citations (PDF)
13The Ni(II)-Binding Activity of the Intrinsically Disordered Region of Human NDRG1, a Protein Involved in Cancer Development
Biomolecules, 2022, 12, 1272
4.27Citations (PDF)
14Inhibition of Urease, a Ni‐Enzyme: The Reactivity of a Key Thiol With Mono‐ and Di‐Substituted Catechols Elucidated by Kinetic, Structural, and Theoretical Studies14.423Citations (PDF)
15Inhibition of Urease, a Ni‐Enzyme: The Reactivity of a Key Thiol With Mono‐ and Di‐Substituted Catechols Elucidated by Kinetic, Structural, and Theoretical Studies
Angewandte Chemie, 2021, 133, 6094-6100
1.48Citations (PDF)
16Nickel as a virulence factor in the Class I bacterial carcinogen, Helicobacter pylori
Seminars in Cancer Biology, 2021, 76, 143-155
13.728Citations (PDF)
17Kinetic and structural analysis of the inactivation of urease by mixed-ligand phosphine halide Ag(I) complexes3.018Citations (PDF)
18Facilitating Nitrification Inhibition through Green, Mechanochemical Synthesis of a Novel Nitrapyrin Complex
Crystal Growth and Design, 2021, 21, 5792-5799
3.415Citations (PDF)
19Probing the transport of Ni(II) ions through the internal tunnels of the Helicobacter pylori UreDFG multimeric protein complex3.09Citations (PDF)
20Revisiting the CooJ family, a potential chaperone for nickel delivery to [NiFe]‑carbon monoxide dehydrogenase3.04Citations (PDF)
21Medicinal Au(i) compounds targeting urease as prospective antimicrobial agents: unveiling the structural basis for enzyme inhibition
Dalton Transactions, 2021, 50, 14444-14452
3.016Citations (PDF)
22Structure, dynamics, and function of SrnR, a transcription factor for nickel-dependent gene expression
Metallomics, 2021, 13,
2.56Citations (PDF)
23Nickel import and export in the human pathogenHelicobacter pylori, perspectives from molecular modelling
Metallomics, 2021, 13,
2.513Citations (PDF)
24Targeting the Protein Tunnels of the Urease Accessory Complex: A Theoretical Investigation
Molecules, 2020, 25, 2911
4.223Citations (PDF)
25Nickel and GTP Modulate Helicobacter pylori UreG Structural Flexibility
Biomolecules, 2020, 10, 1062
4.216Citations (PDF)
26The model structure of the copper-dependent ammonia monooxygenase2.554Citations (PDF)
27The structure-based reaction mechanism of urease, a nickel dependent enzyme: tale of a long debate2.5192Citations (PDF)
28Multifunctional Urea Cocrystal with Combined Ureolysis and Nitrification Inhibiting Capabilities for Enhanced Nitrogen Management6.950Citations (PDF)
29The Impact of pH on Catalytically Critical Protein Conformational Changes: The Case of the Urease, a Nickel Enzyme
Chemistry - A European Journal, 2019, 25, 12145-12158
3.437Citations (PDF)
30Soyuretox, an Intrinsically Disordered Polypeptide Derived from Soybean (Glycine Max) Ubiquitous Urease with Potential Use as a Biopesticide4.49Citations (PDF)
31A Solvent‐Exposed Cysteine Forms a Peculiar NiII‐Binding Site in the Metallochaperone CooT from Rhodospirillum rubrum
Chemistry - A European Journal, 2019, 25, 15351-15360
3.411Citations (PDF)
32Urease Inhibitory Potential and Soil Ecotoxicity of Novel “Polyphenols–Deep Eutectic Solvents” Formulations6.936Citations (PDF)
33The carbon monoxide dehydrogenase accessory protein CooJ is a histidine-rich multidomain dimer containing an unexpected Ni(II)-binding site
Journal of Biological Chemistry, 2019, 294, 7601-7614
2.220Citations (PDF)
34The Structure of the Elusive Urease–Urea Complex Unveils the Mechanism of a Paradigmatic Nickel‐Dependent Enzyme14.4105Citations (PDF)
35The Structure of the Elusive Urease–Urea Complex Unveils the Mechanism of a Paradigmatic Nickel‐Dependent Enzyme
Angewandte Chemie, 2019, 131, 7493-7497
1.412Citations (PDF)
36Insights into Urease Inhibition by N-(n-Butyl) Phosphoric Triamide through an Integrated Structural and Kinetic Approach6.052Citations (PDF)
37Novel Dual-Action Plant Fertilizer and Urease Inhibitor: Urea·Catechol Cocrystal. Characterization and Environmental Reactivity6.962Citations (PDF)
38Inhibition Mechanism of Urease by Au(III) Compounds Unveiled by X-ray Diffraction Analysis3.335Citations (PDF)
39An Evaluation of Maleic‐Itaconic Copolymers as Urease Inhibitors2.411Citations (PDF)
40Structure and dynamics of Helicobacter pylori nickel-chaperone HypA: an integrated approach using NMR spectroscopy, functional assays and computational tools2.525Citations (PDF)
41The structure of urease inactivated by Ag(i): a new paradigm for enzyme inhibition by heavy metals
Dalton Transactions, 2018, 47, 8240-8247
3.066Citations (PDF)
42Targeting Helicobacter pylori urease activity and maturation: In-cell high-throughput approach for drug discovery2.033Citations (PDF)
43Smart urea ionic co-crystals with enhanced urease inhibition activity for improved nitrogen cycle management
Chemical Communications, 2018, 54, 7637-7640
3.460Citations (PDF)
44Protein Tunnels: The Case of Urease Accessory Proteins5.130Citations (PDF)
45The CO dehydrogenase accessory protein CooT is a novel nickel-binding protein
Metallomics, 2017, 9, 575-583
2.521Citations (PDF)
46Glutamate Ligation in the Ni(II)- and Co(II)-Responsive Escherichia coli Transcriptional Regulator, RcnR
Inorganic Chemistry, 2017, 56, 6459-6476
4.617Citations (PDF)
47Development of a multisite model for Ni(II) ion in solution from thermodynamic and kinetic data4.812Citations (PDF)
48Urease Inhibition in the Presence of N-(n-Butyl)thiophosphoric Triamide, a Suicide Substrate: Structure and Kinetics
Biochemistry, 2017, 56, 5391-5404
2.475Citations (PDF)
49Structural analysis of the interaction between Jaburetox, an intrinsically disordered protein, and membrane models5.310Citations (PDF)
50The relationship between folding and activity in UreG, an intrinsically disordered enzyme3.437Citations (PDF)
51Inactivation of urease by catechol: Kinetics and structure3.073Citations (PDF)
52Surface plasmon resonance and isothermal titration calorimetry to monitor the Ni(II)-dependent binding of Helicobacter pylori NikR to DNA3.415Citations (PDF)
53Nickel impact on human health: An intrinsic disorder perspective2.0216Citations (PDF)
54On the role of a specific insert in acetate permeases (ActP) for tellurite uptake in bacteria: Functional and structural studies3.011Citations (PDF)
55Inactivation of urease by 1,4-benzoquinone: chemistry at the protein surface
Dalton Transactions, 2016, 45, 5455-5459
3.071Citations (PDF)
56Kinetic and structural studies reveal a unique binding mode of sulfite to the nickel center in urease3.049Citations (PDF)
57Evolution of Macromolecular Docking Techniques: The Case Study of Nickel and Iron Metabolism in Pathogenic Bacteria
Molecules, 2015, 20, 14265-14292
4.23Citations (PDF)
58On the interaction of Helicobacter pylori NikR, a Ni(II)-responsive transcription factor, with the urease operator: in solution and in silico studies2.518Citations (PDF)
59Intrinsic disorder and metal binding in UreG proteins from Archae hyperthermophiles: GTPase enzymes involved in the activation of Ni(II) dependent urease2.522Citations (PDF)
60Pliable natural biocide: Jaburetox is an intrinsically disordered insecticidal and fungicidal polypeptide derived from jack bean urease
FEBS Journal, 2015, 282, 1043-1064
5.432Citations (PDF)
61Nickel-responsive transcriptional regulators
Metallomics, 2015, 7, 1305-1318
2.543Citations (PDF)
62Structure-based rationalization of urease inhibition by phosphate: novel insights into the enzyme mechanism2.582Citations (PDF)
63FeON-FeOFF: the Helicobacter pylori Fur regulator commutates iron-responsive transcription by discriminative readout of opposed DNA grooves
Nucleic Acids Research, 2014, 42, 3138-3151
15.542Citations (PDF)
64The conformational response to Zn(II) and Ni(II) binding of Sporosarcina pasteurii UreG, an intrinsically disordered GTPase2.522Citations (PDF)
65Fluoride inhibition of Sporosarcina pasteurii urease: structure and thermodynamics2.572Citations (PDF)
66Molecular landscape of the interaction between the urease accessory proteins UreE and UreG2.047Citations (PDF)
67Promiscuous Nickel Import in Human Pathogens: Structure, Thermodynamics, and Evolution of Extracytoplasmic Nickel-Binding Proteins
Structure, 2014, 22, 1421-1432
3.842Citations (PDF)
68Nonredox Nickel Enzymes
Chemical Reviews, 2014, 114, 4206-4228
52.5274Citations (PDF)
69Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions0.39Citations (PDF)
70Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions0.31Citations (PDF)
71Structure of the UreD–UreF–UreG–UreE complex in Helicobacter pylori: a model study2.519Citations (PDF)
72The crystal structure of Sporosarcina pasteurii urease in a complex with citrate provides new hints for inhibitor design2.564Citations (PDF)
73Selectivity of Ni(II) and Zn(II) binding to Sporosarcina pasteurii UreE, a metallochaperone in the urease assembly: a calorimetric and crystallographic study2.525Citations (PDF)
74Conformational Fluctuations of UreG, an Intrinsically Disordered Enzyme
Biochemistry, 2013, 52, 2949-2954
2.433Citations (PDF)
75Nickel binding properties of Helicobacter pylori UreF, an accessory protein in the nickel-based activation of urease2.547Citations (PDF)
76Crystallographic and X-ray absorption spectroscopic characterization of Helicobacter pylori UreE bound to Ni2+ and Zn2+ reveals a role for the disordered C-terminal arm in metal trafficking
Biochemical Journal, 2012, 441, 1017-1035
3.861Citations (PDF)
77Insights in the (un)structural organization of Bacillus pasteurii UreG, an intrinsically disordered GTPaseenzyme
Molecular BioSystems, 2012, 8, 220-228
3.145Citations (PDF)
78Engineered biosealant strains producing inorganic and organic biopolymers
Journal of Biotechnology, 2012, 161, 181-189
3.824Citations (PDF)
79Biochemical and structural studies on native and recombinant Glycine max UreG: a detailed characterization of a plant urease accessory protein
Plant Molecular Biology, 2012, 78, 461-475
3.234Citations (PDF)
80Holo-Ni2+Helicobacter pylori NikR contains four square-planar nickel-binding sites at physiological pH
Dalton Transactions, 2011, 40, 7831
3.026Citations (PDF)
81Zinc Inhibition of Bacterial Cytochrome bc1 Reveals the Role of Cytochrome b E295 in Proton Release at the Qo Site
Biochemistry, 2011, 50, 4263-4272
2.431Citations (PDF)
82Chemistry of Ni2+ in Urease: Sensing, Trafficking, and Catalysis17.0284Citations (PDF)
83Model Structures of Helicobacter pylori UreD(H) Domains: A Putative Molecular Recognition Platform4.514Citations (PDF)
84Interaction of Selenoprotein W with 14-3-3 Proteins: A Computational Approach
Journal of Proteome Research, 2011, 10, 968-976
3.432Citations (PDF)
85Unraveling the Helicobacter pylori UreG zinc binding site using X-ray absorption spectroscopy (XAS) and structural modeling2.533Citations (PDF)
86Computational Study of the DNA-Binding ProteinHelicobacter pyloriNikR: The Role of Ni2+2 Francesco Musiani and Branimir Bertoša contributed equally to the simulations presented here.5.130Citations (PDF)
87The RNA Hydrolysis and the Cytokinin Binding Activities of PR-10 Proteins Are Differently Performed by Two Isoforms of the Pru p 1 Peach Major Allergen and Are Possibly Functionally Related
Plant Physiology, 2009, 150, 1235-1247
5.572Citations (PDF)
88Helicobacter pylori UreE, a urease accessory protein: specific Ni2+- and Zn2+-binding properties and interaction with its cognate UreG
Biochemical Journal, 2009, 422, 91-100
3.894Citations (PDF)
89Zn2+‐linked dimerization of UreG from Helicobacter pylori, a chaperone involved in nickel trafficking and urease activation2.675Citations (PDF)
90High resolution crystal structure of Rubrivivax gelatinosus cytochrome c′
Journal of Inorganic Biochemistry, 2008, 102, 1322-1328
3.08Citations (PDF)
91Structural Characterization of Binding of Cu(II) to Tau Protein
Biochemistry, 2008, 47, 10841-10851
2.499Citations (PDF)
92High-Affinity Ni2+ Binding Selectively Promotes Binding of Helicobacter pylori NikR to Its Target Urease Promoter
Journal of Molecular Biology, 2008, 383, 1129-1143
4.163Citations (PDF)
93The Ni2+ binding properties of Helicobacter pylori NikR3.447Citations (PDF)
94Biochemical Studies onMycobacterium tuberculosisUreG and Comparative Modeling Reveal Structural and Functional Conservation among the Bacterial UreG Family†
Biochemistry, 2007, 46, 3171-3182
2.457Citations (PDF)
95A model-based proposal for the role of UreF as a GTPase-activating protein in the urease active site biosynthesis2.638Citations (PDF)
96The Nickel Site of Bacillus pasteurii UreE, a Urease Metallo-Chaperone, As Revealed by Metal-Binding Studies and X-ray Absorption Spectroscopy
Biochemistry, 2006, 45, 6495-6509
2.454Citations (PDF)
97Intrinsically Disordered Structure of Bacillus pasteurii UreG As Revealed by Steady-State and Time-Resolved Fluorescence Spectroscopy
Biochemistry, 2006, 45, 8918-8930
2.449Citations (PDF)
98An Italian contribution to structural genomics: Understanding metalloproteins
Coordination Chemistry Reviews, 2006, 250, 1419-1450
23.115Citations (PDF)
99Low-Temperature EPR and Mössbauer Spectroscopy of Two Cytochromes with His–Met Axial Coordination Exhibiting HALS Signals
ChemPhysChem, 2006, 7, 1258-1267
1.918Citations (PDF)
100Jack bean (Canavalia ensiformis) urease. Probing acid–base groups of the active site by pH variation5.483Citations (PDF)
101High potential iron–sulfur proteins and their role as soluble electron carriers in bacterial photosynthesis: tale of a discovery
Photosynthesis Research, 2005, 85, 115-131
3.425Citations (PDF)
102UreG, a Chaperone in the Urease Assembly Process, Is an Intrinsically Unstructured GTPase That Specifically Binds Zn2+
Journal of Biological Chemistry, 2005, 280, 4684-4695
2.295Citations (PDF)
103Structure of the Intermolecular Complex between Plastocyanin and Cytochrome f from Spinach*
Journal of Biological Chemistry, 2005, 280, 18833-18841
2.221Citations (PDF)
104Preparation and reactivity studies of synthetic microperoxidases containing b-type heme2.545Citations (PDF)
105Nickel trafficking: insights into the fold and function of UreE, a urease metallochaperone3.045Citations (PDF)
106The Asn 38−Cys 84 H-Bond in Plastocyanin
Journal of Physical Chemistry B, 2004, 108, 7495-7499
2.77Citations (PDF)
107Molecular Details of Urease Inhibition by Boric Acid:  Insights into the Catalytic Mechanism15.0164Citations (PDF)
108Electron Transfer from HiPIP to the Photooxidized Tetraheme Cytochrome Subunit of Allochromatium vinosum Reaction Center:  New Insights from Site-Directed Mutagenesis and Computational Studies
Biochemistry, 2004, 43, 437-445
2.412Citations (PDF)
109Structure ofRhodoferax fermentanshigh-potential iron–sulfur protein solved by MAD3.114Citations (PDF)
110Structural Basis for the Molecular Properties of Cytochromec6†
Biochemistry, 2002, 41, 14689-14699
2.424Citations (PDF)
111New Insights into the Mechanism of Purple Acid Phosphatase through1H NMR Spectroscopy of the Recombinant Human Enzyme15.019Citations (PDF)
112Molecular characterization of Bacillus pasteurii UreE, a metal-binding chaperone for the assembly of the urease active site2.541Citations (PDF)
113NMR Solution Structure, Backbone Mobility, and Homology Modeling ofc-Type Cytochromes from Gram-Positive Bacteria
ChemBioChem, 2002, 3, 299-310
2.623Citations (PDF)
114The First Solution Structure of a Paramagnetic Copper(II) Protein:  The Case of Oxidized Plastocyanin from the CyanobacteriumSynechocystisPCC680315.066Citations (PDF)
115Structure-based computational study of the catalytic and inhibition mechanisms of urease2.5116Citations (PDF)
116Backbone Dynamics of Plastocyanin in Both Oxidation States
Journal of Biological Chemistry, 2001, 276, 47217-47226
2.251Citations (PDF)
117Structural Basis for Ni2+Transport and Assembly of the Urease Active Site by the Metallochaperone UreE from Bacillus pasteurii
Journal of Biological Chemistry, 2001, 276, 49365-49370
2.280Citations (PDF)
118The complex of Bacillus pasteurii urease with acetohydroxamate anion from X-ray data at 1.55 Å resolution2.5194Citations (PDF)
119Crystal Structure of OxidizedBacillus pasteuriiCytochromec553at 0.97-Å Resolution†
Biochemistry, 2000, 39, 13115-13126
2.460Citations (PDF)
120Structural properties of the nickel ions in urease: novel insights into the catalytic and inhibition mechanisms
Coordination Chemistry Reviews, 1999, 190-192, 331-355
23.1155Citations (PDF)
121A new proposal for urease mechanism based on the crystal structures of the native and inhibited enzyme from Bacillus pasteurii: why urea hydrolysis costs two nickels
Structure, 1999, 7, 205-216
3.8503Citations (PDF)
122On the role of high-potential iron–sulfur proteins and cytochromes in the respiratory chain of two facultative phototrophs0.918Citations (PDF)
123High-Field NMR Studies of Oxidized Blue Copper Proteins:  The Case of Spinach Plastocyanin15.0105Citations (PDF)
124Probing Structural and Electronic Properties of the Oxidized [Fe4S4]3+Cluster ofEctothiorhodospirahalophilaiso-II High-Potential Iron−Sulfur Protein by ENDOR Spectroscopy15.037Citations (PDF)
125Cytochrome c-553 from the Alkalophilic Bacterium Bacillus pasteurii Has the Primary Structure Characteristics of a Lipoprotein2.112Citations (PDF)
126The complex of Bacillus pasteurii urease with β-mercaptoethanol from X-ray data at 1.65-Å resolution2.5131Citations (PDF)
127Modulation of Bacillus pasteurii cytochrome c 553 reduction potential by structural and solution parameters2.530Citations (PDF)
128Kinetic properties and stability of potato acid phosphatase immobilized on Ca-polygalacturonate5.018Citations (PDF)
129Crystallization and preliminary X-ray diffraction analysis of cytochromec′ fromRubrivivax gelatinosusat 1.3 Å resolution3.10Citations (PDF)
130Crystallization and preliminary high-resolution X-ray diffraction analysis of native and β-mercaptoethanol-inhibited urease from Bacillus pasteurii3.122Citations (PDF)
131Immobilization of jack bean urease on hydroxyapatite: urease immobilization in alkaline soils
Soil Biology and Biochemistry, 1998, 30, 1485-1490
10.570Citations (PDF)
132The Primary Structure of Rhodoferax fermentans High-Potential Iron-Sulfur Protein, an Electron Donor to the Photosynthetic Reaction Center
FEBS Journal, 1997, 244, 371-377
0.212Citations (PDF)
133Title is missing!
Photosynthesis Research, 1997, 53, 13-21
3.417Citations (PDF)
134Crystals of cytochrome c-553 fromBacillus pasteurii show diffraction to 0.97 å resolution2.68Citations (PDF)
135Cyclic voltammetry and spectroelectrochemistry of cytochrome c8 from Rubrivivax gelatinosus. Implications in photosynthetic electron transfer
Inorganica Chimica Acta, 1997, 263, 379-384
2.85Citations (PDF)
136Bacillus pasteurii urease: A heteropolymeric enzyme with a binuclear nickel active site10.558Citations (PDF)
137Urease from the soil bacterium Bacillus pasteurii: Immobilization on Ca-polygalacturonate10.5108Citations (PDF)
138Kinetics of photo-induced electron transfer from high-potential iron-sulfur protein to the photosynthetic reaction center of the purple phototroph Rhodoferax fermentans.7.569Citations (PDF)
1391H NMR of High-Potential Iron-Sulfur Protein from the Purple Non-Sulfur Bacterium Rhodoferax fermentans
FEBS Journal, 1996, 236, 405-411
0.215Citations (PDF)
140X-ray Absorption Spectroscopy Study of Native and Phenylphosphorodiamidate-Inhibited Bacillus pasteurii Urease
FEBS Journal, 1996, 239, 61-66
0.233Citations (PDF)
141Rationalization of the reduction potentials within the series of the high potential iron-sulfur proteins
Inorganica Chimica Acta, 1995, 240, 251-256
2.823Citations (PDF)
142The HiPIP from Rhodoferax fermentans is competent in light-induced electron transfer in bacterial photosynthesis3.00Citations (PDF)
143Oxidized and Reduced [Fe2Q2] (Q = S, Se) Cores of Spinach Ferredoxin: a Comparative Study Using 1H NMR Spectroscopy
Inorganic Chemistry, 1995, 34, 417-420
4.613Citations (PDF)
144Isolation, Characterization, and Functional Role of the High-Potential Iron-Sulfur Protein (HiPIP) from Rhodoferax fermentans2.830Citations (PDF)
145The high potential iron-sulfur protein (HiPIP) fromRhodoferax fermentansis competent in photosynthetic electron transfer
FEBS Letters, 1995, 357, 70-74
2.763Citations (PDF)
146Electronic structure of the [Fe4Se4]3+ clusters in C. vinosum HiPIP and Ectothiorhodospiza halophila HiPIP II through NMR and EPR studies15.027Citations (PDF)
147The iron-sulfur cluster in the oxidized high-potential iron protein from Ectothiorhodospira halophila15.071Citations (PDF)
148The electronic structure of iron-sulfur [Fe4S4]3+ clusters in proteins. An investigation of the oxidized high-potential iron-sulfur protein II from Ectothiorhodospira vacuolata
Biochemistry, 1993, 32, 9387-9397
2.491Citations (PDF)
149On the structure of the nickel/iron/sulfur center of the carbon monoxide dehydrogenase from Rhodospirillum rubrum: an x-ray absorption spectroscopy study.7.560Citations (PDF)
150Synthetic nickel-containing heterometal cubane-type clusters with NiFe3Q4 cores (Q = sulfur, selenium)15.077Citations (PDF)
151Identification of the iron ions of high potential iron protein from Chromatium vinosum within the protein frame through two-dimensional NMR experiments15.099Citations (PDF)
152Heterometal cubane-type clusters: a rhenium-iron-sulfur (ReFe3S4) single-cubane cluster by cleavage of an iron-bridged double cubane and the site-voided cubane [Fe3S4] as a cluster ligand
Inorganic Chemistry, 1991, 30, 743-750
4.627Citations (PDF)
153Synthetic nickel-iron NiFe3Q4 cubane-type clusters (S = 3/2) by reductive rearrangement of linear [Fe3Q4(SEt)4]3- (Q = sulfur, selenium)15.061Citations (PDF)
154Clusters containing the iron-rhenium-sulfur [ReFe3(.mu.3-S)4] core: an expansion of the heterometal cubane-type cluster series MFe3S4
Inorganic Chemistry, 1990, 29, 3493-3501
4.617Citations (PDF)
155Subsite-differentiated analogs of native iron sulfide [4Fe-4S]2+ clusters: preparation of clusters with five- and six-coordinate subsites and modulation of redox potentials and charge distributions15.087Citations (PDF)
156Effects of pentacoordination at a single iron atom of site-functionalized Fe4S4 clusters3.00Citations (PDF)
157Stability range of heterometal cubane-type clusters MFe3S4: assembly of double-cubane clusters with the rhenium-iron-sulfur [[ReFe3S4]] core
Inorganic Chemistry, 1989, 28, 2696-2698
4.628Citations (PDF)
158Insertion of vanadium-iron-sulfur, [VFe3S4]2+, and molybdenum-iron-sulfur, [MoFe3S4]3+, cores into a semirigid trithiolate cavitand ligand: regiospecific reactions at a vanadium site similar to that in nitrogenase
Inorganic Chemistry, 1989, 28, 1685-1690
4.656Citations (PDF)
159cis- and trans-Dichloro chelate complexes of niobium(IV): synthesis and structure of trans-dichloro[NN′-ethylenebis(acetylacetonylideneiminato)-(2–)]niobium(IV) and cis-dichloro{7,16-dihydro-6,8,15,17-tetramethyldibenzo-[b,i][1,4,8,11]tetra-azacyclotetradecinato(2–)}niobium(IV)–acetonitrile (1/2)1.712Citations (PDF)
160Five-co-ordinate magnesium complexes: synthesis and structure of quadridentate Schiff-base derivatives1.722Citations (PDF)
161Ion pair complexes form the reduction of metal(II)-dibenzotetramethyltetra-aza[14]annulene complexes1.914Citations (PDF)
162A New Class of Organozirconium(IV) Compounds: Alkyl Derivatives of Tetramethyltetraazadibenzo[14]annulenatozirconium(IV)4.748Citations (PDF)
163Eine neue Klasse von Organozirconium(IV)-Verbindungen: Alkylderivate von Tetramethyltetraazadibenzo[14]annulenatozirconium(IV)
Angewandte Chemie, 1987, 99, 86-88
1.410Citations (PDF)
164? and ? Organometallic derivatives of titanium(III) and vanadium(III) bonded to a dibenzotetramethyletetra-aza[14]annulene ligand1.922Citations (PDF)
165Reduced Cobalt-meso-Tetraphenylporphyrin Complexes: Synthesis and Structure of[Na(thf)3]2[Co(TPP)]4.718Citations (PDF)
166Reduzierte Cobalt-meso-tetraphenylporphyrin-Komplexe: Synthese und Struktur von [Na(thf)3]2[Co(TPP)]
Angewandte Chemie, 1986, 98, 553-555
1.411Citations (PDF)
167Structural determinants underlying the supramolecular binding between carborane and proteins in water9.91Citations (PDF)
168Structure-activity studies reveal efficient inactivation of urease by Ebsulfur-based compounds3.00Citations (PDF)
169Phosphorylation disrupts the interaction between the intrinsically disordered region of the oncogenic NDRG1 and lipid vesicles5.90Citations (PDF)
170Nickel binding shifts Helicobacter pylori HypA toward compact conformations3.00Citations (PDF)
171Decoding Enzyme–Inhibitor Kinetic Mechanisms by Isothermal Titration Calorimetry: The Case of SARS-CoV-2 3CL pro6.50Citations (PDF)