| 1 | Preferential survival of prebiotic metallopeptides in the presence of ultraviolet light | 7.1 | 4 | Citations (PDF) |
| 2 | Kinetic and structural details of urease inactivation by thiuram disulphides | 3.0 | 7 | Citations (PDF) |
| 3 | Metal selectivity and translocation mechanism characterization in proteoliposomes of the transmembrane NiCoT transporter NixA from
Helicobacter pylori | 7.1 | 6 | Citations (PDF) |
| 4 | Is bismuth(iii) able to inhibit the activity of urease? Puzzling results in the quest for soluble urease complexes for agrochemical and medicinal applications | 3.0 | 7 | Citations (PDF) |
| 5 | Exploring the conformational space of the mobile flap in Sporosarcina pasteurii urease by cryo-electron microscopy | 8.1 | 4 | Citations (PDF) |
| 6 | An isothermal calorimetry assay for determining steady state kinetic and Ensitrelvir inhibition parameters for SARS-CoV-2 3CL-protease | 3.4 | 3 | Citations (PDF) |
| 7 | The structure of the high-affinity nickel-binding site in the Ni,Zn-HypA•UreE2 complex | 2.5 | 13 | Citations (PDF) |
| 8 | Optimized Ebselen-Based Inhibitors of Bacterial Ureases with Nontypical Mode of Action | 5.6 | 27 | Citations (PDF) |
| 9 | Functional contacts for activation of urease from Helicobacter pylori: an integrated approach using evolutionary couplings, in-cell enzymatic assays, and computational docking | 0.8 | 10 | Citations (PDF) |
| 10 | Pro5 is not essential for the formation of ‘Ni-hook’ in nickel superoxide dismutase | 3.0 | 4 | Citations (PDF) |
| 11 | Thiocarbamoyl Disulfides as Inhibitors of Urease and Ammonia Monooxygenase: Crystal Engineering for Novel Materials | 3.4 | 4 | Citations (PDF) |
| 12 | Inhibition of Urease by Hydroquinones: A Structural and Kinetic Study | 3.4 | 16 | Citations (PDF) |
| 13 | The Ni(II)-Binding Activity of the Intrinsically Disordered Region of Human NDRG1, a Protein Involved in Cancer Development | 4.2 | 7 | Citations (PDF) |
| 14 | Inhibition of Urease, a Ni‐Enzyme: The Reactivity of a Key Thiol With Mono‐ and Di‐Substituted Catechols Elucidated by Kinetic, Structural, and Theoretical Studies | 14.4 | 23 | Citations (PDF) |
| 15 | Inhibition of Urease, a Ni‐Enzyme: The Reactivity of a Key Thiol With Mono‐ and Di‐Substituted Catechols Elucidated by Kinetic, Structural, and Theoretical Studies | 1.4 | 8 | Citations (PDF) |
| 16 | Nickel as a virulence factor in the Class I bacterial carcinogen, Helicobacter pylori | 13.7 | 28 | Citations (PDF) |
| 17 | Kinetic and structural analysis of the inactivation of urease by mixed-ligand phosphine halide Ag(I) complexes | 3.0 | 18 | Citations (PDF) |
| 18 | Facilitating Nitrification Inhibition through Green, Mechanochemical Synthesis of a Novel Nitrapyrin Complex | 3.4 | 15 | Citations (PDF) |
| 19 | Probing the transport of Ni(II) ions through the internal tunnels of the Helicobacter pylori UreDFG multimeric protein complex | 3.0 | 9 | Citations (PDF) |
| 20 | Revisiting the CooJ family, a potential chaperone for nickel delivery to [NiFe]‑carbon monoxide dehydrogenase | 3.0 | 4 | Citations (PDF) |
| 21 | Medicinal Au(i) compounds targeting urease as prospective antimicrobial agents: unveiling the structural basis for enzyme inhibition | 3.0 | 16 | Citations (PDF) |
| 22 | Structure, dynamics, and function of SrnR, a transcription factor for nickel-dependent gene expression | 2.5 | 6 | Citations (PDF) |
| 23 | Nickel import and export in the human pathogenHelicobacter pylori, perspectives from molecular modelling | 2.5 | 13 | Citations (PDF) |
| 24 | Targeting the Protein Tunnels of the Urease Accessory Complex: A Theoretical Investigation | 4.2 | 23 | Citations (PDF) |
| 25 | Nickel and GTP Modulate Helicobacter pylori UreG Structural Flexibility | 4.2 | 16 | Citations (PDF) |
| 26 | The model structure of the copper-dependent ammonia monooxygenase | 2.5 | 54 | Citations (PDF) |
| 27 | The structure-based reaction mechanism of urease, a nickel dependent enzyme: tale of a long debate | 2.5 | 192 | Citations (PDF) |
| 28 | Multifunctional Urea Cocrystal with Combined Ureolysis and Nitrification Inhibiting Capabilities for Enhanced Nitrogen Management | 6.9 | 50 | Citations (PDF) |
| 29 | The Impact of pH on Catalytically Critical Protein Conformational Changes: The Case of the Urease, a Nickel Enzyme | 3.4 | 37 | Citations (PDF) |
| 30 | Soyuretox, an Intrinsically Disordered Polypeptide Derived from Soybean (Glycine Max) Ubiquitous Urease with Potential Use as a Biopesticide | 4.4 | 9 | Citations (PDF) |
| 31 | A Solvent‐Exposed Cysteine Forms a Peculiar NiII‐Binding Site in the Metallochaperone CooT from Rhodospirillum rubrum | 3.4 | 11 | Citations (PDF) |
| 32 | Urease Inhibitory Potential and Soil Ecotoxicity of Novel “Polyphenols–Deep Eutectic Solvents” Formulations | 6.9 | 36 | Citations (PDF) |
| 33 | The carbon monoxide dehydrogenase accessory protein CooJ is a histidine-rich multidomain dimer containing an unexpected Ni(II)-binding site | 2.2 | 20 | Citations (PDF) |
| 34 | The Structure of the Elusive Urease–Urea Complex Unveils the Mechanism of a Paradigmatic Nickel‐Dependent Enzyme | 14.4 | 105 | Citations (PDF) |
| 35 | The Structure of the Elusive Urease–Urea Complex Unveils the Mechanism of a Paradigmatic Nickel‐Dependent Enzyme | 1.4 | 12 | Citations (PDF) |
| 36 | Insights into Urease Inhibition by N-(n-Butyl) Phosphoric Triamide through an Integrated Structural and Kinetic Approach | 6.0 | 52 | Citations (PDF) |
| 37 | Novel Dual-Action Plant Fertilizer and Urease Inhibitor: Urea·Catechol Cocrystal. Characterization and Environmental Reactivity | 6.9 | 62 | Citations (PDF) |
| 38 | Inhibition Mechanism of Urease by Au(III) Compounds Unveiled by X-ray Diffraction Analysis | 3.3 | 35 | Citations (PDF) |
| 39 | An Evaluation of Maleic‐Itaconic Copolymers as Urease Inhibitors | 2.4 | 11 | Citations (PDF) |
| 40 | Structure and dynamics of Helicobacter pylori nickel-chaperone HypA: an integrated approach using NMR spectroscopy, functional assays and computational tools | 2.5 | 25 | Citations (PDF) |
| 41 | The structure of urease inactivated by Ag(i): a new paradigm for enzyme inhibition by heavy metals | 3.0 | 66 | Citations (PDF) |
| 42 | Targeting Helicobacter pylori urease activity and maturation: In-cell high-throughput approach for drug discovery | 2.0 | 33 | Citations (PDF) |
| 43 | Smart urea ionic co-crystals with enhanced urease inhibition activity for improved nitrogen cycle management | 3.4 | 60 | Citations (PDF) |
| 44 | Protein Tunnels: The Case of Urease Accessory Proteins | 5.1 | 30 | Citations (PDF) |
| 45 | The CO dehydrogenase accessory protein CooT is a novel nickel-binding protein | 2.5 | 21 | Citations (PDF) |
| 46 | Glutamate Ligation in the Ni(II)- and Co(II)-Responsive Escherichia coli Transcriptional Regulator, RcnR | 4.6 | 17 | Citations (PDF) |
| 47 | Development of a multisite model for Ni(II) ion in solution from thermodynamic and kinetic data | 4.8 | 12 | Citations (PDF) |
| 48 | Urease Inhibition in the Presence of N-(n-Butyl)thiophosphoric Triamide, a Suicide Substrate: Structure and Kinetics | 2.4 | 75 | Citations (PDF) |
| 49 | Structural analysis of the interaction between Jaburetox, an intrinsically disordered protein, and membrane models | 5.3 | 10 | Citations (PDF) |
| 50 | The relationship between folding and activity in UreG, an intrinsically disordered enzyme | 3.4 | 37 | Citations (PDF) |
| 51 | Inactivation of urease by catechol: Kinetics and structure | 3.0 | 73 | Citations (PDF) |
| 52 | Surface plasmon resonance and isothermal titration calorimetry to monitor the Ni(II)-dependent binding of Helicobacter pylori NikR to DNA | 3.4 | 15 | Citations (PDF) |
| 53 | Nickel impact on human health: An intrinsic disorder perspective | 2.0 | 216 | Citations (PDF) |
| 54 | On the role of a specific insert in acetate permeases (ActP) for tellurite uptake in bacteria: Functional and structural studies | 3.0 | 11 | Citations (PDF) |
| 55 | Inactivation of urease by 1,4-benzoquinone: chemistry at the protein surface | 3.0 | 71 | Citations (PDF) |
| 56 | Kinetic and structural studies reveal a unique binding mode of sulfite to the nickel center in urease | 3.0 | 49 | Citations (PDF) |
| 57 | Evolution of Macromolecular Docking Techniques: The Case Study of Nickel and Iron Metabolism in Pathogenic Bacteria | 4.2 | 3 | Citations (PDF) |
| 58 | On the interaction of Helicobacter pylori NikR, a Ni(II)-responsive transcription factor, with the urease operator: in solution and in silico studies | 2.5 | 18 | Citations (PDF) |
| 59 | Intrinsic disorder and metal binding in UreG proteins from Archae hyperthermophiles: GTPase enzymes involved in the activation of Ni(II) dependent urease | 2.5 | 22 | Citations (PDF) |
| 60 | Pliable natural biocide: Jaburetox is an intrinsically disordered insecticidal and fungicidal polypeptide derived from jack bean urease | 5.4 | 32 | Citations (PDF) |
| 61 | Nickel-responsive transcriptional regulators | 2.5 | 43 | Citations (PDF) |
| 62 | Structure-based rationalization of urease inhibition by phosphate: novel insights into the enzyme mechanism | 2.5 | 82 | Citations (PDF) |
| 63 | FeON-FeOFF: the Helicobacter pylori Fur regulator commutates iron-responsive transcription by discriminative readout of opposed DNA grooves | 15.5 | 42 | Citations (PDF) |
| 64 | The conformational response to Zn(II) and Ni(II) binding of Sporosarcina pasteurii UreG, an intrinsically disordered GTPase | 2.5 | 22 | Citations (PDF) |
| 65 | Fluoride inhibition of Sporosarcina pasteurii urease: structure and thermodynamics | 2.5 | 72 | Citations (PDF) |
| 66 | Molecular landscape of the interaction between the urease accessory proteins UreE and UreG | 2.0 | 47 | Citations (PDF) |
| 67 | Promiscuous Nickel Import in Human Pathogens: Structure, Thermodynamics, and Evolution of Extracytoplasmic Nickel-Binding Proteins | 3.8 | 42 | Citations (PDF) |
| 68 | Nonredox Nickel Enzymes | 52.5 | 274 | Citations (PDF) |
| 69 | Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions | 0.3 | 9 | Citations (PDF) |
| 70 | Hot Biological Catalysis: Isothermal Titration Calorimetry to Characterize Enzymatic Reactions | 0.3 | 1 | Citations (PDF) |
| 71 | Structure of the UreD–UreF–UreG–UreE complex in Helicobacter pylori: a model study | 2.5 | 19 | Citations (PDF) |
| 72 | The crystal structure of Sporosarcina pasteurii urease in a complex with citrate provides new hints for inhibitor design | 2.5 | 64 | Citations (PDF) |
| 73 | Selectivity of Ni(II) and Zn(II) binding to Sporosarcina pasteurii UreE, a metallochaperone in the urease assembly: a calorimetric and crystallographic study | 2.5 | 25 | Citations (PDF) |
| 74 | Conformational Fluctuations of UreG, an Intrinsically Disordered Enzyme | 2.4 | 33 | Citations (PDF) |
| 75 | Nickel binding properties of Helicobacter pylori UreF, an accessory protein in the nickel-based activation of urease | 2.5 | 47 | Citations (PDF) |
| 76 | Crystallographic 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 | 3.8 | 61 | Citations (PDF) |
| 77 | Insights in the (un)structural organization of
Bacillus pasteurii
UreG, an intrinsically disordered GTPaseenzyme | 3.1 | 45 | Citations (PDF) |
| 78 | Engineered biosealant strains producing inorganic and organic biopolymers | 3.8 | 24 | Citations (PDF) |
| 79 | Biochemical and structural studies on native and recombinant Glycine max UreG: a detailed characterization of a plant urease accessory protein | 3.2 | 34 | Citations (PDF) |
| 80 | Holo-Ni2+Helicobacter pylori NikR contains four square-planar nickel-binding sites at physiological pH | 3.0 | 26 | Citations (PDF) |
| 81 | Zinc Inhibition of Bacterial Cytochrome bc1 Reveals the Role of Cytochrome b E295 in Proton Release at the Qo Site | 2.4 | 31 | Citations (PDF) |
| 82 | Chemistry of Ni2+ in Urease: Sensing, Trafficking, and Catalysis | 17.0 | 284 | Citations (PDF) |
| 83 | Model Structures of Helicobacter pylori UreD(H) Domains: A Putative Molecular Recognition Platform | 4.5 | 14 | Citations (PDF) |
| 84 | Interaction of Selenoprotein W with 14-3-3 Proteins: A Computational Approach | 3.4 | 32 | Citations (PDF) |
| 85 | Unraveling the Helicobacter pylori UreG zinc binding site using X-ray absorption spectroscopy (XAS) and structural modeling | 2.5 | 33 | Citations (PDF) |
| 86 | Computational Study of the DNA-Binding ProteinHelicobacter pyloriNikR: The Role of Ni2+2 Francesco Musiani and Branimir Bertoša contributed equally to the simulations presented here. | 5.1 | 30 | Citations (PDF) |
| 87 | The 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 | 5.5 | 72 | Citations (PDF) |
| 88 | Helicobacter pylori
UreE, a urease accessory protein: specific Ni2+- and Zn2+-binding properties and interaction with its cognate UreG | 3.8 | 94 | Citations (PDF) |
| 89 | Zn2+‐linked dimerization of UreG from Helicobacter pylori, a chaperone involved in nickel trafficking and urease activation | 2.6 | 75 | Citations (PDF) |
| 90 | High resolution crystal structure of Rubrivivax gelatinosus cytochrome c′ | 3.0 | 8 | Citations (PDF) |
| 91 | Structural Characterization of Binding of Cu(II) to Tau Protein | 2.4 | 99 | Citations (PDF) |
| 92 | High-Affinity Ni2+ Binding Selectively Promotes Binding of Helicobacter pylori NikR to Its Target Urease Promoter | 4.1 | 63 | Citations (PDF) |
| 93 | The Ni2+ binding properties of Helicobacter pylori NikR | 3.4 | 47 | Citations (PDF) |
| 94 | Biochemical Studies onMycobacterium tuberculosisUreG and Comparative Modeling Reveal Structural and Functional Conservation among the Bacterial UreG Family† | 2.4 | 57 | Citations (PDF) |
| 95 | A model-based proposal for the role of UreF as a GTPase-activating protein in the urease active site biosynthesis | 2.6 | 38 | Citations (PDF) |
| 96 | The Nickel Site of Bacillus pasteurii UreE, a Urease Metallo-Chaperone, As Revealed by Metal-Binding Studies and X-ray Absorption Spectroscopy | 2.4 | 54 | Citations (PDF) |
| 97 | Intrinsically Disordered Structure of Bacillus pasteurii UreG As Revealed by Steady-State and Time-Resolved Fluorescence Spectroscopy | 2.4 | 49 | Citations (PDF) |
| 98 | An Italian contribution to structural genomics: Understanding metalloproteins | 23.1 | 15 | Citations (PDF) |
| 99 | Low-Temperature EPR and Mössbauer Spectroscopy of Two Cytochromes with His–Met Axial Coordination Exhibiting HALS Signals | 1.9 | 18 | Citations (PDF) |
| 100 | Jack bean (Canavalia ensiformis) urease. Probing acid–base groups of the active site by pH variation | 5.4 | 83 | Citations (PDF) |
| 101 | High potential iron–sulfur proteins and their role as soluble electron carriers in bacterial photosynthesis: tale of a discovery | 3.4 | 25 | Citations (PDF) |
| 102 | UreG, a Chaperone in the Urease Assembly Process, Is an Intrinsically Unstructured GTPase That Specifically Binds Zn2+ | 2.2 | 95 | Citations (PDF) |
| 103 | Structure of the Intermolecular Complex between Plastocyanin and Cytochrome f from Spinach* | 2.2 | 21 | Citations (PDF) |
| 104 | Preparation and reactivity studies of synthetic microperoxidases containing b-type heme | 2.5 | 45 | Citations (PDF) |
| 105 | Nickel trafficking: insights into the fold and function of UreE, a urease metallochaperone | 3.0 | 45 | Citations (PDF) |
| 106 | The Asn 38−Cys 84 H-Bond in Plastocyanin | 2.7 | 7 | Citations (PDF) |
| 107 | Molecular Details of Urease Inhibition by Boric Acid: Insights into the Catalytic Mechanism | 15.0 | 164 | Citations (PDF) |
| 108 | Electron Transfer from HiPIP to the Photooxidized Tetraheme Cytochrome Subunit of Allochromatium vinosum Reaction Center: New Insights from Site-Directed Mutagenesis and Computational Studies | 2.4 | 12 | Citations (PDF) |
| 109 | Structure ofRhodoferax fermentanshigh-potential iron–sulfur protein solved by MAD | 3.1 | 14 | Citations (PDF) |
| 110 | Structural Basis for the Molecular Properties of Cytochromec6† | 2.4 | 24 | Citations (PDF) |
| 111 | New Insights into the Mechanism of Purple Acid Phosphatase through1H NMR Spectroscopy of the Recombinant Human Enzyme | 15.0 | 19 | Citations (PDF) |
| 112 | Molecular characterization of Bacillus pasteurii UreE, a metal-binding chaperone for the assembly of the urease active site | 2.5 | 41 | Citations (PDF) |
| 113 | NMR Solution Structure, Backbone Mobility, and Homology Modeling ofc-Type Cytochromes from Gram-Positive Bacteria | 2.6 | 23 | Citations (PDF) |
| 114 | The First Solution Structure of a Paramagnetic Copper(II) Protein: The Case of Oxidized Plastocyanin from the CyanobacteriumSynechocystisPCC6803 | 15.0 | 66 | Citations (PDF) |
| 115 | Structure-based computational study of the catalytic and inhibition mechanisms of urease | 2.5 | 116 | Citations (PDF) |
| 116 | Backbone Dynamics of Plastocyanin in Both Oxidation States | 2.2 | 51 | Citations (PDF) |
| 117 | Structural Basis for Ni2+Transport and Assembly of the Urease Active Site by the Metallochaperone UreE from Bacillus pasteurii | 2.2 | 80 | Citations (PDF) |
| 118 | The complex of Bacillus pasteurii urease with acetohydroxamate anion from X-ray data at 1.55 Å resolution | 2.5 | 194 | Citations (PDF) |
| 119 | Crystal Structure of OxidizedBacillus pasteuriiCytochromec553at 0.97-Å Resolution† | 2.4 | 60 | Citations (PDF) |
| 120 | Structural properties of the nickel ions in urease: novel insights into the catalytic and inhibition mechanisms | 23.1 | 155 | Citations (PDF) |
| 121 | A 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 | 3.8 | 503 | Citations (PDF) |
| 122 | On the role of high-potential iron–sulfur proteins and cytochromes in the respiratory chain of two facultative phototrophs | 0.9 | 18 | Citations (PDF) |
| 123 | High-Field NMR Studies of Oxidized Blue Copper Proteins: The Case of Spinach Plastocyanin | 15.0 | 105 | Citations (PDF) |
| 124 | Probing Structural and Electronic Properties of the Oxidized [Fe4S4]3+Cluster ofEctothiorhodospirahalophilaiso-II High-Potential Iron−Sulfur Protein by ENDOR Spectroscopy | 15.0 | 37 | Citations (PDF) |
| 125 | Cytochrome c-553 from the Alkalophilic Bacterium Bacillus pasteurii Has the Primary Structure Characteristics of a Lipoprotein | 2.1 | 12 | Citations (PDF) |
| 126 | The complex of Bacillus pasteurii urease with β-mercaptoethanol from X-ray data at 1.65-Å resolution | 2.5 | 131 | Citations (PDF) |
| 127 | Modulation of Bacillus pasteurii cytochrome c
553 reduction potential by structural and solution parameters | 2.5 | 30 | Citations (PDF) |
| 128 | Kinetic properties and stability of potato acid phosphatase immobilized on Ca-polygalacturonate | 5.0 | 18 | Citations (PDF) |
| 129 | Crystallization and preliminary X-ray diffraction analysis of cytochromec′ fromRubrivivax gelatinosusat 1.3 Å resolution | 3.1 | 0 | Citations (PDF) |
| 130 | Crystallization and preliminary high-resolution X-ray diffraction analysis of native and β-mercaptoethanol-inhibited urease from Bacillus pasteurii | 3.1 | 22 | Citations (PDF) |
| 131 | Immobilization of jack bean urease on hydroxyapatite: urease immobilization in alkaline soils | 10.5 | 70 | Citations (PDF) |
| 132 | The Primary Structure of Rhodoferax fermentans High-Potential Iron-Sulfur Protein, an Electron Donor to the Photosynthetic Reaction Center | 0.2 | 12 | Citations (PDF) |
| 133 | Title is missing! | 3.4 | 17 | Citations (PDF) |
| 134 | Crystals of cytochrome c-553 fromBacillus pasteurii show diffraction to 0.97 å resolution | 2.6 | 8 | Citations (PDF) |
| 135 | Cyclic voltammetry and spectroelectrochemistry of cytochrome c8 from Rubrivivax gelatinosus. Implications in photosynthetic electron transfer | 2.8 | 5 | Citations (PDF) |
| 136 | Bacillus pasteurii urease: A heteropolymeric enzyme with a binuclear nickel active site | 10.5 | 58 | Citations (PDF) |
| 137 | Urease from the soil bacterium Bacillus pasteurii: Immobilization on Ca-polygalacturonate | 10.5 | 108 | Citations (PDF) |
| 138 | Kinetics of photo-induced electron transfer from high-potential iron-sulfur protein to the photosynthetic reaction center of the purple phototroph Rhodoferax fermentans. | 7.5 | 69 | Citations (PDF) |
| 139 | 1H NMR of High-Potential Iron-Sulfur Protein from the Purple Non-Sulfur Bacterium Rhodoferax fermentans | 0.2 | 15 | Citations (PDF) |
| 140 | X-ray Absorption Spectroscopy Study of Native and Phenylphosphorodiamidate-Inhibited Bacillus pasteurii Urease | 0.2 | 33 | Citations (PDF) |
| 141 | Rationalization of the reduction potentials within the series of the high potential iron-sulfur proteins | 2.8 | 23 | Citations (PDF) |
| 142 | The HiPIP from Rhodoferax fermentans is competent in light-induced electron transfer in bacterial photosynthesis | 3.0 | 0 | Citations (PDF) |
| 143 | Oxidized and Reduced [Fe2Q2] (Q = S, Se) Cores of Spinach Ferredoxin: a Comparative Study Using 1H NMR Spectroscopy | 4.6 | 13 | Citations (PDF) |
| 144 | Isolation, Characterization, and Functional Role of the High-Potential Iron-Sulfur Protein (HiPIP) from Rhodoferax fermentans | 2.8 | 30 | Citations (PDF) |
| 145 | The high potential iron-sulfur protein (HiPIP) fromRhodoferax fermentansis competent in photosynthetic electron transfer | 2.7 | 63 | Citations (PDF) |
| 146 | Electronic structure of the [Fe4Se4]3+ clusters in C. vinosum HiPIP and Ectothiorhodospiza halophila HiPIP II through NMR and EPR studies | 15.0 | 27 | Citations (PDF) |
| 147 | The iron-sulfur cluster in the oxidized high-potential iron protein from Ectothiorhodospira halophila | 15.0 | 71 | Citations (PDF) |
| 148 | The electronic structure of iron-sulfur [Fe4S4]3+ clusters in proteins. An investigation of the oxidized high-potential iron-sulfur protein II from Ectothiorhodospira vacuolata | 2.4 | 91 | Citations (PDF) |
| 149 | On the structure of the nickel/iron/sulfur center of the carbon monoxide dehydrogenase from Rhodospirillum rubrum: an x-ray absorption spectroscopy study. | 7.5 | 60 | Citations (PDF) |
| 150 | Synthetic nickel-containing heterometal cubane-type clusters with NiFe3Q4 cores (Q = sulfur, selenium) | 15.0 | 77 | Citations (PDF) |
| 151 | Identification of the iron ions of high potential iron protein from Chromatium vinosum within the protein frame through two-dimensional NMR experiments | 15.0 | 99 | Citations (PDF) |
| 152 | Heterometal 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 | 4.6 | 27 | Citations (PDF) |
| 153 | Synthetic nickel-iron NiFe3Q4 cubane-type clusters (S = 3/2) by reductive rearrangement of linear [Fe3Q4(SEt)4]3- (Q = sulfur, selenium) | 15.0 | 61 | Citations (PDF) |
| 154 | Clusters containing the iron-rhenium-sulfur [ReFe3(.mu.3-S)4] core: an expansion of the heterometal cubane-type cluster series MFe3S4 | 4.6 | 17 | Citations (PDF) |
| 155 | Subsite-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 distributions | 15.0 | 87 | Citations (PDF) |
| 156 | Effects of pentacoordination at a single iron atom of site-functionalized Fe4S4 clusters | 3.0 | 0 | Citations (PDF) |
| 157 | Stability range of heterometal cubane-type clusters MFe3S4: assembly of double-cubane clusters with the rhenium-iron-sulfur [[ReFe3S4]] core | 4.6 | 28 | Citations (PDF) |
| 158 | Insertion 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 | 4.6 | 56 | Citations (PDF) |
| 159 | cis- 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) | 1.7 | 12 | Citations (PDF) |
| 160 | Five-co-ordinate magnesium complexes: synthesis and structure of quadridentate Schiff-base derivatives | 1.7 | 22 | Citations (PDF) |
| 161 | Ion pair complexes form the reduction of metal(II)-dibenzotetramethyltetra-aza[14]annulene complexes | 1.9 | 14 | Citations (PDF) |
| 162 | A New Class of Organozirconium(IV) Compounds: Alkyl Derivatives of Tetramethyltetraazadibenzo[14]annulenatozirconium(IV) | 4.7 | 48 | Citations (PDF) |
| 163 | Eine neue Klasse von Organozirconium(IV)-Verbindungen: Alkylderivate von Tetramethyltetraazadibenzo[14]annulenatozirconium(IV) | 1.4 | 10 | Citations (PDF) |
| 164 | ? and ? Organometallic derivatives of titanium(III) and vanadium(III) bonded to a dibenzotetramethyletetra-aza[14]annulene ligand | 1.9 | 22 | Citations (PDF) |
| 165 | Reduced Cobalt-meso-Tetraphenylporphyrin Complexes: Synthesis and Structure of[Na(thf)3]2[Co(TPP)] | 4.7 | 18 | Citations (PDF) |
| 166 | Reduzierte Cobalt-meso-tetraphenylporphyrin-Komplexe: Synthese und Struktur von [Na(thf)3]2[Co(TPP)] | 1.4 | 11 | Citations (PDF) |
| 167 | Structural determinants underlying the supramolecular binding between carborane and proteins in water | 9.9 | 1 | Citations (PDF) |
| 168 | Structure-activity studies reveal efficient inactivation of urease by Ebsulfur-based compounds | 3.0 | 0 | Citations (PDF) |
| 169 | Phosphorylation disrupts the interaction between the intrinsically disordered region of the oncogenic
NDRG1
and lipid vesicles | 5.9 | 0 | Citations (PDF) |
| 170 | Nickel binding shifts Helicobacter pylori HypA toward compact conformations | 3.0 | 0 | Citations (PDF) |
| 171 | Decoding Enzyme–Inhibitor Kinetic Mechanisms by Isothermal Titration Calorimetry: The Case of SARS-CoV-2 3CL
pro | 6.5 | 0 | Citations (PDF) |