| 1 | Acid–base properties of an antivirally active acyclic nucleoside phosphonate: (S)-9-[3-hydroxy-2-(phosphonomethoxy)propyl]adenine (HPMPA) | 2.4 | 5 | Citations (PDF) |
| 2 | Coordination Chemistry of Nucleotides and Antivirally Active Acyclic Nucleoside Phosphonates, including Mechanistic Considerations | 4.2 | 9 | Citations (PDF) |
| 3 | Metal Ion‐Coordinating Properties in Aqueous Solutions of the Antivirally Active Nucleotide Analogue (S)‐9‐[3‐Hydroxy‐2‐(phosphonomethoxy)propyl]adenine (HPMPA) – Quantification of Complex Isomeric Equilibria | 1.8 | 4 | Citations (PDF) |
| 4 | The bio-relevant metals of the periodic table of the elements | 0.8 | 26 | Citations (PDF) |
| 5 | Metal-ion binding properties of (S)-1-[3-hydroxy-2-(phosphonomethoxy)propyl]cytosine (HPMPC, Cidofovir). A nucleotide analogue with activity against DNA viruses | 2.8 | 5 | Citations (PDF) |
| 6 | Intramolecular π-stacks in mixed-ligand copper(II) complexes formed by heteroaromatic amines and antivirally active acyclic nucleotide analogs carrying a hydroxy-2-(phosphonomethoxy)propyl residue‡ | 2.5 | 4 | Citations (PDF) |
| 7 | Acid–base and metal ion-binding properties of thiopyrimidine derivatives | 23.1 | 5 | Citations (PDF) |
| 8 | (N7)-Platination and its effect on (N1)H-acidification in nucleoside phosphate derivatives | 2.8 | 4 | Citations (PDF) |
| 9 | Extent of intramolecular π stacks in aqueous solution in mixed-ligand copper(II) complexes formed by heteroaromatic amines and the anticancer and antivirally active 9-[2-(phosphonomethoxy)ethyl]guanine (PMEG). A comparison with related acyclic nucleotide analogues | 2.4 | 5 | Citations (PDF) |
| 10 | Connectivity patterns and rotamer states of nucleobases determine acid–base properties of metalated purine quartets | 3.0 | 7 | Citations (PDF) |
| 11 | Solution properties of metal ion complexes formed with the antiviral and cytostatic nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]-2-amino-6-dimethylaminopurine (PME2A6DMAP) | 1.7 | 6 | Citations (PDF) |
| 12 | Comparison of the π-stacking properties of purine versus pyrimidine residues. Some generalizations regarding selectivity | 2.5 | 19 | Citations (PDF) |
| 13 | Intrinsic Acid–Base Properties of a Hexa‐2′‐deoxynucleoside Pentaphosphate, d(ApGpGpCpCpT): Neighboring Effects and Isomeric Equilibria | 3.4 | 19 | Citations (PDF) |
| 14 | Extent of Intramolecular π Stacks in Aqueous Solution in Mixed‐Ligand Copper(II) Complexes Formed by Heteroaromatic Amines and 1‐[2‐(Phosphonomethoxy)ethyl]cytosine (PMEC), a Relative of Antivirally Active Acyclic Nucleotide Analogues (Part 72)[1, 2] | 0.9 | 3 | Citations (PDF) |
| 15 | Extent of Intramolecularπ‐Stacks in Aqueous Solution in Mixed‐Ligand Copper(II) Complexes Formed by Heteroaromatic Amines and Several 2‐Aminopurine Derivatives of the Antivirally Active Nucleotide Analog 9‐[2‐(Phosphonomethoxy)ethyl]adenine (PMEA) | 2.2 | 11 | Citations (PDF) |
| 16 | Steric guiding of metal ion binding to a purine residue by a non-coordinating amino group: Examplified by 9-[(2-phosphonomethoxy)ethyl]-2-aminopurine (PME2AP), an isomer of the antiviral nucleotide analogue 9-[(2-phosphonomethoxy)ethyl]adenine (PMEA), and by related compounds | 23.1 | 22 | Citations (PDF) |
| 17 | Probing the Metal-Ion-Binding Strength of the Hydroxyl Group | 52.5 | 66 | Citations (PDF) |
| 18 | Stability and Structure of Mixed‐Ligand Metal Ion Complexes That Contain Ni
2+
, Cu
2+
, or Zn
2+
, and Histamine, as well as Adenosine 5′‐Triphosphate (ATP
4−
) or Uridine 5′‐Triphosphate (UTP
4−
): An Intricate Network of Equilibria | 3.4 | 24 | Citations (PDF) |
| 19 | Understanding the Acid–Base Properties of Adenosine: The Intrinsic Basicities of N1, N3 and N7 | 3.4 | 77 | Citations (PDF) |
| 20 | A Stability Concept for Metal Ion Coordination to Single-Stranded Nucleic Acids and Affinities of Individual Sites | 17.0 | 246 | Citations (PDF) |
| 21 | Metal ion-binding properties of 9-[(2-phosphonomethoxy)ethyl]-2-aminopurine (PME2AP), an isomer of the antiviral nucleotide analogue 9-[(2-phosphonomethoxy)ethyl]adenine (PMEA). Steric guiding of metal ion-coordination by the purine-amino group | 3.0 | 16 | Citations (PDF) |
| 22 | Xanthosine 5′-monophosphate (XMP). Acid–base and metal ion-binding properties of a chameleon-like nucleotide | 37.7 | 30 | Citations (PDF) |
| 23 | Intramolecular π–π stacking interactions in aqueous solution in mixed-ligand copper(II) complexes formed by heteroaromatic amines and the nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]-2-aminopurine (PME2AP), an isomer of the antivirally active 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA) | 2.8 | 19 | Citations (PDF) |
| 24 | Influence of decreasing solvent polarity (1,4-dioxane/water mixtures) on the stability and structure of complexes formed by copper(II), 2,2′-bipyridine or 1,10-phenanthroline and guanosine 5′-diphosphate: evaluation of isomeric equilibria | 2.5 | 18 | Citations (PDF) |
| 25 | Acid–base and metal ion binding properties of 2-thiocytidine in aqueous solution | 2.5 | 12 | Citations (PDF) |
| 26 | Comparison of the Surprising Metal‐Ion‐Binding Properties of 5‐ and 6‐Uracilmethylphosphonate (5Umpa2− and 6Umpa2−) in Aqueous Solution and Crystal Structures of the Dimethyl and Di(isopropyl) Esters of H2(6Umpa) | 3.4 | 11 | Citations (PDF) |
| 27 | Inosylyl(3′→5′)inosine (IpI–). Acid–Base and Metal Ion-Binding Properties of a Dinucleoside Monophosphate in Aqueous Solution | 4.6 | 10 | Citations (PDF) |
| 28 | Extent of metal ion-sulfur binding in complexes of thiouracil nucleosides and nucleotides in aqueous solution | 3.0 | 0 | Citations (PDF) |
| 29 | Metal-Ion-Coordinating Properties of the Dinucleotide 2′-Deoxyguanylyl(5′→3′)-2′-deoxy-5′-guanylate (d(pGpG)3−): Isomeric Equilibria Including Macrochelated Complexes Relevant for Nucleic Acids | 3.4 | 24 | Citations (PDF) |
| 30 | New Ternary Complexes of Copper(II) with 2,2′-Bipyridine (Bpy) and Phosphocholine (PCh–) or the Quaternary 1-(2-Phosphonomethoxy)ethyl Derivative of 2,4-Diaminopyrimidine (PMEDAPy–) | 1.8 | 8 | Citations (PDF) |
| 31 | Extent of metal ion–sulfur binding in complexes of thiouracil nucleosides and nucleotides in aqueous solution | 3.0 | 26 | Citations (PDF) |
| 32 | Evidence for intramolecular aromatic-ring stacking in the physiological pH range of the monodeprotonated xanthine residue in mixed-ligand complexes containing xanthosinate 5′-monophosphate (XMP) | 3.0 | 22 | Citations (PDF) |
| 33 | Acid–base properties of the nucleic-acid model 2′-deoxyguanylyl(5′→3′)-2′-deoxy-5′-guanylate, d(pGpG)3–, and of related guanine derivatives | 2.6 | 29 | Citations (PDF) |
| 34 | Acid–Base and Metal-Ion-Binding Properties of Xanthosine 5′-Monophosphate (XMP) in Aqueous Solution: Complex Stabilities, Isomeric Equilibria, and Extent of Macrochelation | 3.4 | 19 | Citations (PDF) |
| 35 | Nucleoside 5′-triphosphates: self-association, acid–base, and metal ion-binding properties in solution | 37.7 | 231 | Citations (PDF) |
| 36 | Influence of Decreasing Solvent Polarity (1,4-Dioxane/Water Mixtures) on the Acid-Base and Copper(II)-Binding Properties of Guanosine 5?-Diphosphate | 1.8 | 24 | Citations (PDF) |
| 37 | Metal ion-binding properties of (N3)-deprotonated uridine, thymidine, and related pyrimidine nucleosides in aqueous solution | 7.5 | 70 | Citations (PDF) |
| 38 | Acid−Base and Metal-Ion-Binding Properties of 9-[2-(2-Phosphonoethoxy)ethyl]adenine (PEEA), a Relative of the Antiviral Nucleotide Analogue 9-[2-(Phosphonomethoxy)ethyl]adenine (PMEA). An Exercise on the Quantification of Isomeric Complex Equilibria in Solution | 4.6 | 38 | Citations (PDF) |
| 39 | Acid-base properties of purine residues and the effect of metal ions: Quantification of rare nucleobase tautomers | 1.9 | 76 | Citations (PDF) |
| 40 | Adenosine 5'-triphosphate (ATP4-): Aspects of the coordination chemistry of a multitalented biological substrate | 1.9 | 55 | Citations (PDF) |
| 41 | A quantitative appraisal of the ambivalent metal ion binding properties of cytidine in aqueous solution and an estimation of the anti–syn energy barrier of cytidine derivatives | 2.5 | 29 | Citations (PDF) |
| 42 | Quantification of isomeric equilibria formed by metal ion complexes of 8-[2-(phosphonomethoxy)ethyl]-8-azaadenine (8,8aPMEA) and 9-[2-(phosphonomethoxy)ethyl]-8-azaadenine (9,8aPMEA). Derivatives of the antiviral nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA) | 2.5 | 11 | Citations (PDF) |
| 43 | Two Metal Ions Coordinated to a Purine Residue Tolerate Each Other Well | 14.4 | 38 | Citations (PDF) |
| 44 | Zwei Metallionen behindern sich kaum bei der Koordination an ein Purin | 1.4 | 5 | Citations (PDF) |
| 45 | Perturbation of the NH2 pKa Value of Adenine in Platinum(II) Complexes: Distinct Stereochemical Internucleobase Effects | 3.4 | 44 | Citations (PDF) |
| 46 | Acid–Base Properties of Xanthosine 5′-Monophosphate (XMP) and of Some Related Nucleobase Derivatives in Aqueous Solution: Micro Acidity Constant Evaluations of the (N1)H versus the (N3)H Deprotonation Ambiguity | 3.4 | 18 | Citations (PDF) |
| 47 | Intramolecular stacking interactions in ternary copper(II) complexes formed by a heteroaromatic amine and 9-[2-(2-phosphonoethoxy)ethyl]adenine, a relative of the antiviral nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]adenine☆ | 3.0 | 18 | Citations (PDF) |
| 48 | Metal Ion-Binding Properties of (1H-Benzimidazol-2-yl-methyl)phosphonate (Bimp2-) in Aqueous Solution.⊥Isomeric Equilibria, Extent of Chelation, and a New Quantification Method for the Chelate Effect | 4.6 | 52 | Citations (PDF) |
| 49 | Metal ion complexes of antivirally active nucleotide analogues. Conclusions regarding their biological action | 37.7 | 70 | Citations (PDF) |
| 50 | Title is missing! | 0.2 | 0 | Citations (PDF) |
| 51 | Solution Structures of Binary and Ternary Metal Ion Complexes of 9-(5-Phosphonopentyl)adenine (3′-deoxa-PEEA). A Nucleotide Analogue Related to the Antivirally Active 9-[2-(Phosphonomethoxy)ethyl]adenine (PMEA) | 1.8 | 5 | Citations (PDF) |
| 52 | Stabilities and Isomeric Equilibria in Aqueous Solution of Monomeric Metal Ion Complexes of Adenosine 5′-Diphosphate (ADP3) in Comparison with Those of Adenosine 5′-Monophosphate (AMP2) | 3.4 | 86 | Citations (PDF) |
| 53 | Complex Formation of Divalent Metal Ions with Uridine 5′-O-Thiomonophosphate or Methyl Thiophosphate: Comparison of Complex Stabilities with Those of the Parent Phosphate Ligands | 2.6 | 29 | Citations (PDF) |
| 54 | Stability and structure of binary and ternary metal ion complexes in aqueous solution of the quaternary 1-[2-(phosphonomethoxy)ethyl] derivative of 2,4-diaminopyrimidine (PMEDAPy−). Properties of an acyclic nucleotide analogue | 2.4 | 16 | Citations (PDF) |
| 55 | Stability constants of metal ion complexes formed with N3-deprotonated uridine in aqueous solution | 4.8 | 26 | Citations (PDF) |
| 56 | Intrinsic Acid−Base Properties of Purine Derivatives in Aqueous Solution and Comparison of the Acidifying Effects of Platinum(II) Coordinated to N1 or N7: Acidifying Effects Are Reciprocal and the Proton “Outruns” Divalent Metal Ions | 4.6 | 72 | Citations (PDF) |
| 57 | Acid−Base and Metal Ion Binding Properties of Guanylyl(3‘→5‘)guanosine (GpG-) and 2‘-Deoxyguanylyl(3‘→5‘)-2‘-deoxyguanosine [d(GpG)-] in Aqueous Solution | 4.6 | 54 | Citations (PDF) |
| 58 | Synthesis and acid–base properties of (1H-benzimidazol-2-yl-methyl)phosphonate (Bimp2−). Evidence for intramolecular hydrogen-bond formation in aqueous solution between (N-1)H and the phosphonate group | 2.6 | 19 | Citations (PDF) |
| 59 | Comparison of the acid–base properties of purine derivatives in aqueous solution. Determination of intrinsic proton affinities of various basic sitesElectronic supplementary information (ESI) available: Figures S1 (UV absorption spectra of 9-methyladenine), S2 (spectra of 1,9-dimethyladenine), S3 (plot of absorption versus H0/pH for 1,9-dimethyladenine), S4 (spectra of 1-methyladenosine), S5 (absorption versus H0/pH for 1-methyladenosine), S6 (spectra of 7,9-dimethyladenine), S7 (absorption versus H0/pH for | 1.0 | 79 | Citations (PDF) |
| 60 | Stabilities of lead(II) complexes formed in aqueous solution with methyl thiophosphate (MeOPS2–), uridine 5'-O-thiomonophosphate (UMPS2–) or adenosine 5'-O-thiomonophosphate (AMPS2–) | 2.5 | 18 | Citations (PDF) |
| 61 | Metal-ion binding properties of O-phosphonatomethylcholine (PMCh−). | 2.8 | 14 | Citations (PDF) |
| 62 | Acid–base and metal ion binding properties of pyridine-type ligands in aqueous solution. | 2.8 | 84 | Citations (PDF) |
| 63 | Metal Ion-Binding Properties of 1-Methyl-4-aminobenzimidazole (=9-Methyl-1,3-dideazaadenine) and 1,4-Dimethylbenzimidazole (=6,9-Dimethyl-1,3-dideazapurine). Quantification of the Steric Effect of the 6-Amino Group on Metal Ion Binding at the N7 Site of the Adenine Residue | 4.6 | 46 | Citations (PDF) |
| 64 | Title is missing! | 1.0 | 1 | Citations (PDF) |
| 65 | Acid–base properties of the 5′-triphosphates of guanosine and inosine (GTP4− and ITP4−) and of several related nucleobase derivatives | 1.0 | 24 | Citations (PDF) |
| 66 | Properties of the Magnesium(II) and Calcium(II) Complexes of 5- and 6-Uracilmethylphosphonate (5 Umpa2- and 6 Umpa2-) in Aqueous Solution | 0.9 | 12 | Citations (PDF) |
| 67 | Formation of Ternary Complexes by Coordination of (Diethylenetriamine)Platinum(II) to N1 or N7 of the Adenine Moiety of the Antiviral Nucleotide Analogue 9-[2-(Phosphonomethoxy)ethyl]adenine (PMEA): Comparison of the Acid-Base and Metal-Ion-Binding Properties of PMEA, (Dien)Pt(PMEA-N1), and (Dien)Pt(PMEA-N7) | 3.4 | 19 | Citations (PDF) |
| 68 | Stabilities and Isomeric Equilibria in Solutions of Monomeric Metal-Ion Complexes of Guanosine 5′-Triphosphate (GTP4−) and Inosine 5′-Triphosphate (ITP4−) in Comparison with Those of Adenosine 5′-Triphosphate (ATP4−) | 3.4 | 52 | Citations (PDF) |
| 69 | Intramolecular stacking interactions in ternary copper(II) complexes1 formed with 2,2′-bipyridine or 1,10-phenanthroline and 9-(4-phosphonobutyl)adenine (dPMEA), the carba relative of the antiviral nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA) | 3.0 | 15 | Citations (PDF) |
| 70 | Metal ion–carbonyl oxygen recognition in complexes of acetyl phosphate | 3.0 | 9 | Citations (PDF) |
| 71 | Evaluation of intramolecular equilibria in complexes formed between substituted imidazole ligands and nickel(II), copper(II) or zinc(II) | 3.0 | 33 | Citations (PDF) |
| 72 | Quantification of isomeric equilibria for metal ion complexes formed in solution by phosphate or phosphonate ligands with a weakly coordinating second site | 23.1 | 61 | Citations (PDF) |
| 73 | Intramolecular stacking interactions in mixed ligand complexes formed by copper(II), 2,2′-bipyridine or 1,10-phenanthroline, and monoprotonated or deprotonated adenosine 5′-diphosphate (ADP3−). Evaluation of isomeric equilibria | 2.8 | 25 | Citations (PDF) |
| 74 | Properties of the Ternary (Dien)Pt(PMEA-N7) Complex Containing Diethylenetriamine (Dien) and the Antiviral 9-[2-(Phosphonomethoxy)ethyl]adenine (PMEA). Synthesis, Biological Screening, Acid-Base Behaviour, and Metal Ion-Binding in Aqueous Solution | 0.8 | 5 | Citations (PDF) |
| 75 | Intramolecular chelate formation involving the carbonyl oxygen of acetyl phosphate or acetonylphosphonate in mixed ligand copper(II) complexes containing also 2,2′-bipyridine or 1,10-phenanthroline. A decreased solvent polarity favours the metal ion–carbonyl oxygen recognition † | 2.2 | 15 | Citations (PDF) |
| 76 | Metal ion-binding properties of 9-(4-phosphonobutyl)adenine (dPMEA), a sister compound of the antiviral nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA), and quantification of the equilibria involving four Cu(PMEA) isomers | 2.2 | 30 | Citations (PDF) |
| 77 | Isomeric Equilibria in Aqueous Solution Involving Aromatic Ring Stacking in the Sexternary Complexes Formed by the Quaternarycis-(NH3)2Pt(2‘-deoxyguanosine-N7)(dGMP-N7) Complex and the Binary Cu(2,2‘-bipyridine)2+or Cu(1,10-phenanthroline)2+Complexes (dGMP2-= 2‘-Deoxyguanosine 5‘-monophosphate) | 4.6 | 20 | Citations (PDF) |
| 78 | Lead(II)-Binding Properties of the 5‘-Monophosphates of Adenosine (AMP2-), Inosine (IMP2-), and Guanosine (GMP2-) in Aqueous Solution. Evidence for Nucleobase−Lead(II) Interactions | 4.6 | 46 | Citations (PDF) |
| 79 | Metal Ion-Binding Properties of the Nucleotide Analogue 1-[2-(Phosphonomethoxy)ethyl]cytosine (PMEC) in Aqueous Solution | 0.0 | 26 | Citations (PDF) |
| 80 | Stabilities of complexes formed between lead(II) and simple phosphonate or phosphate monoester ligands including some pyrimidine-nucleoside 5′-monophosphates (CMP2–, UMP2–, dTMP2–) | 2.5 | 20 | Citations (PDF) |
| 81 | On the Metal-Ion-Coordinating Properties of the Benzimidazolate Residue in Aqueous Solution – Extent of Acidification of Benzimidazole-(N3)H Sites by (N1)-Coordinated Divalent Metal Ions | 1.8 | 9 | Citations (PDF) |
| 82 | Acid-Base and Metal-Ion-Coordinating Properties of Benzimidazole and Derivatives (= 1,3-Dideazapurines) in Aqueous Solution: Interrelation between Complex Stability and Ligand Basicity | 3.4 | 67 | Citations (PDF) |
| 83 | Effects of (N7)-Coordinated Nickel(II), Copper(II), or Platinum(II) on the Acid-Base Properties of Guanine Derivatives and Other Related Purines[≠] | 3.4 | 116 | Citations (PDF) |
| 84 | Extent of intramolecular stacking interactions in the mixed-ligand complexes formed in aqueous solution by copper(II), 2,2′-bipyridine or 1,10-phenanthroline and 2′-deoxyguanosine 5′-monophosphate † | 1.7 | 35 | Citations (PDF) |
| 85 | Aspects of the co-ordination chemistry of the antiviral nucleotide analogue, 9-[2-(phosphonomethoxy)ethyl]-2,6-diaminopurine (PMEDAP) | 1.7 | 30 | Citations (PDF) |
| 86 | Why is the antiviral nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]adenine in its diphosphorylated form (PMEApp4−) initially a better substrate for polymerases than (2′-deoxy)adenosine 5′-triphosphate (dATP4−/ATP4−)? Considerations on the mechanism of nucleic acid polymerases | 3.4 | 22 | Citations (PDF) |
| 87 | Acid−Base and Metal Ion-Coordinating Properties of Pyrimidine-Nucleoside 5‘-Diphosphates (CDP, UDP, dTDP) and of Several Simple Diphosphate Monoesters. Establishment of Relations between Complex Stability and Diphosphate Basicity | 4.6 | 65 | Citations (PDF) |
| 88 | Stability and Structure of Metal Ion Complexes Formed in Solution with Acetyl Phosphate and Acetonylphosphonate: Quantification of Isomeric Equilibria | 15.0 | 60 | Citations (PDF) |
| 89 | Metal ion-binding properties of the antiviral nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA). Why is its diphosphorylated form, PMEApp4-, initially a better substrate for nucleic acid polymerases than (2'-deoxy)-adenosine 5'-triphosphate (dATP4-/ATP4-)? | 1.9 | 49 | Citations (PDF) |
| 90 | Stability of binary and ternary copper(II) complexes of the diphosphate analogue, methylphosphonylphosphate, in aqueous solution | 2.8 | 16 | Citations (PDF) |
| 91 | Metal ion-coordinating properties of imidazole and derivatives in aqueous solution: interrelation between complex stability and ligand basicity | 2.8 | 73 | Citations (PDF) |
| 92 | Ternary complexes in solution. Intramolecular stacking interactions in mixed ligand complexes formed by copper(II), 2,2′-bipyridyl or 1,10-phenanthroline and a pyrimidine-nucleoside 5′-diphosphate (CDP3−, UDP3−, dTDP3−) | 2.8 | 20 | Citations (PDF) |
| 93 | Acid-Base and Metal-Ion-Binding Properties of the Quaternary [cis-(NH3)2Pt(dGuo)(dGMP)] Complex Formed Betweencis-Diammineplatinum(II), 2′-Deoxyguanosine (dGuo), and 2′-Deoxyguanosine 5′-Monophosphate (dGMP2−) in Aqueous Solution | 3.4 | 34 | Citations (PDF) |
| 94 | Cis-diammineplatinum(II) forms a macrochelate with 2′-deoxycytidine 5′-monophosphate (dCMP2–)! Reactivity and acid-base properties of cis-Pt(NH3)2(dCMP) | 2.5 | 7 | Citations (PDF) |
| 95 | Magnesium complexes of the antiviral 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA) and of its 1-, 3-, and 7-deaza analogues in aqueous solution | 2.5 | 19 | Citations (PDF) |
| 96 | Facilitation of the copper(II)-promoted dephosphorylation of adenosine 5′-triphosphate (ATP4−) by the antiviral nucleotide analogue, 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA)‡ | 3.4 | 6 | Citations (PDF) |
| 97 | Quantification of Outer-Sphere Macrochelate Formation in the Ternarycis-Diammine−Platinum(II)−Bis-2‘-deoxyguanosine 5‘-Monophosphate Complex,cis-(NH3)2Pt(dGMP)22-, and Formation of Quaternary Mixed Metal Ion Species with Magnesium(II), Copper(II), or Zinc(II) in Aqueous Solution | 4.6 | 15 | Citations (PDF) |
| 98 | Metal Ion-Binding Properties in Aqueous Solution of the Nucleoside Analogue, 5,6-Dichloro-1-(β-ᴅ-ribofuranosyl)benzimidazole (DRB) | 0.8 | 4 | Citations (PDF) |
| 99 | The effects of N7-coordinated cis-diammine-platinum(ii) on the acid-base properties of guanine derivatives | 1.9 | 48 | Citations (PDF) |
| 100 | Metal ion-assisted stacking interactions and the facilitated hydrolysis of nucleoside 5 ¢ -triphosphates | 1.9 | 42 | Citations (PDF) |
| 101 | Solution properties of antiviral adenine-nucleotide analogues. The acid–base properties of 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA) † and of its N1, N3 and N7 deaza derivatives in aqueous solution | 1.2 | 36 | Citations (PDF) |
| 102 | Stabilities and Structures of Metal Ion Complexes of Adenosine 5‘-O-Thiomonophosphate (AMPS2-) in Comparison with Those of Its Parent Nucleotide (AMP2-) in Aqueous Solution | 15.0 | 116 | Citations (PDF) |
| 103 | Extent of Intramolecular Aromatic-Ring Stacking in Ternary Cu2+Complexes Formed by 2,2‘-Bipyridyl or 1,10-Phenanthroline and Flavin Mononucleotide (FMN2-)1,2 | 4.6 | 24 | Citations (PDF) |
| 104 | Metal ion-assisted stacking interactions and the facilitated hydrolysis of nucleoside Di- and triphosphates | 3.0 | 1 | Citations (PDF) |
| 105 | The self-association of flavin mononucleotide (FMN2−) as determined by 1H NMR shift measurements | 2.1 | 27 | Citations (PDF) |
| 106 | Acid‐Base Properties of Adenosine 5′‐O‐Thiomonophosphate in Aqueous Solution | 3.4 | 41 | Citations (PDF) |
| 107 | Complex Formation of the Antiviral 9‐[2‐(Phosphonomethoxy)Ethyl]Adenine (PMEA) and of Its N 1, N 3, and N 7 Deaza Derivatives with Copper(II) in Aqueous Solution | 3.4 | 54 | Citations (PDF) |
| 108 | The N3 Position of N9‐Substituted Adenine as a Metal Ion Binding Site: Structural and Solution Studies with PdII and PtII Complexes of N6′, N6′,N 9‐Trimethyladenine | 3.4 | 75 | Citations (PDF) |
| 109 | Stability of metal ion complexes formed with methyl phosphate and hydrogen phosphate | 2.5 | 83 | Citations (PDF) |
| 110 | The Assisted Self-Association of ATP4- by a Poly(Amino Acid) [Poly(Lys)] and Its Significance for Cell Organelles That Contain High Concentrations of Nucleotides | 0.2 | 21 | Citations (PDF) |
| 111 | Ternary complexes in solution1 with hydrogen phosphate and methyl phosphate as ligands | 2.8 | 21 | Citations (PDF) |
| 112 | Acid-base and metal ion-binding properties of flavin mononucleotide (FMN2−). Is a ‘dielectric’ effect responsible for the increased complex stability? | 2.8 | 21 | Citations (PDF) |
| 113 | Acid-base and metal ion-binding properties of 2′-deoxycytidine 5′-monophosphate (dCMP2−) alone and coordinated to cis-diammine-platinum(II). Formation of mixed metal ion nucleotide complexes | 2.8 | 31 | Citations (PDF) |
| 114 | The self-association of nucleotides and the effects of metal ions, protons, and polyamino acids | 3.0 | 1 | Citations (PDF) |
| 115 | Stabilities of metal ion complexes of adenosine 5′-diphosphate (ADP3−) and uridine 5′-diphosphate (UDP3−) | 3.0 | 4 | Citations (PDF) |
| 116 | Metal ion complexes of the antiviral (S)-9-[3-hydroxy-2-(phosphonomethoxy)propyl]adenine (HPMPA) in solution | 3.0 | 0 | Citations (PDF) |
| 117 | Effect of N-7 coordination of platinum(II) on the acid-base properties of guanine derivatives | 3.0 | 0 | Citations (PDF) |
| 118 | Acid-base and metal ion-binding properties of adenosine 5′-[α-thio]-monophosphate (AMPS2−) | 3.0 | 3 | Citations (PDF) |
| 119 | Intramolecular equilibria in metal ion complexes of artificial nucleotide analogues with antiviral properties. A case study | 23.1 | 71 | Citations (PDF) |
| 120 | Facilitated formation of high-molecular-weight associates of adenosine 5?-triphosphate (ATP) | 1.6 | 9 | Citations (PDF) |
| 121 | Unusual hydrogen bonding patterns of N7metallated, N1deprotonated guanine nucleobases: acidity constants of cis-[Pt(NH3)2(Hegua)2]2+and crystal structures of cis-[Pt(NH3)2(egua)2]·4H2O and cis-[Pt(NH3)2(egua)2]· Hegua·7H2O (Hegua = 9-ethylguanine) | 1.7 | 53 | Citations (PDF) |
| 122 | Metals in biological systems | 2.8 | 3 | Citations (PDF) |
| 123 | Metal-Ion-Coordinating Properties of a Viral Inhibitor, a pyrophosphate analogue, and a herbicide metabolite, a glycinate analogue: The solution properties of the potentially five-membered chelates derived from phosphonoformic acid and (aminomethyl)phosphonic acid | 1.8 | 35 | Citations (PDF) |
| 124 | Comparison of the Extent of Macrochelate Formation in Complexes of Divalent Metal Ions with Guanosine (GMP2-), Inosine (IMP2-), and Adenosine 5'-Monophosphate (AMP2-). The Crucial Role of N-7 Basicity in Metal Ion-Nucleic Base Recognition | 15.0 | 298 | Citations (PDF) |
| 125 | The colourless ‘chameleon’ or the peculiar properties of Zn2+in complexes in solution. Quantification of equilibria involving a change of the coordination number of the metal ion | 37.7 | 102 | Citations (PDF) |
| 126 | Metal ion coordinating properties of an antiviral adenosine monophosphate (AMP2−) analogue | 3.0 | 0 | Citations (PDF) |
| 127 | Stability of ternary metal ion complexes formed by imidazole and the anion of N, N-bis(2-hydroxyethyl)glycine (Bicine). Observation of a relatively high stability of the Zn(Bicinate) (imidazole)+ complex | 2.8 | 19 | Citations (PDF) |
| 128 | Quantification of successive intramolecular equilibria in binary metal ion complexes of N,N-bis(2-hydroxyethyl)glycinate (Bicinate). A case study | 23.1 | 26 | Citations (PDF) |
| 129 | Ternary complexes in solution (part 551) with phosphonates as ligands. Various intramolecular equilibria in mixed-ligand complexes containing the antiviral 9-(2-phosphonomethoxyethyl)adenine, an adenosine monophosphate analogue | 1.7 | 29 | Citations (PDF) |
| 130 | Interactions of metal ions with nucleotides and nucleic acids and their constituents | 37.7 | 378 | Citations (PDF) |
| 131 | Solvent-dependent metal ion-adenine recognition. Quantification of the intramolecular equilibria between various isomers of the copper(2+) complexes formed in water-dioxane mixtures with the anions of the antiviral 9-(2-(phosphonomethoxy)ethyl)adenine (PMEA), an adenosine monophosphate (AMP) analog | 4.6 | 17 | Citations (PDF) |
| 132 | Ternary Complexes in Solution+ with Phosphonates as Ligands. Intramolecular Equilibria in the Mixed Ligand Cu2+ Complexes Formed by 2,2′-Bipyridyl or 1,10-Phenanthroline and the Dianion of Phosphonylmethoxyethane in Water-Dioxane Mixtures | 0.8 | 18 | Citations (PDF) |
| 133 | On the Dichotomy of Metal Ion Binding in Adenosine Complexes | 2.1 | 54 | Citations (PDF) |
| 134 | Metal ion binding properties of dihydroxyacetone phosphate and glycerol 1-phosphate | 15.0 | 30 | Citations (PDF) |
| 135 | Have adenosine 5′-triphosphate ATP4− and related purine-nucleotides played a role in early evolution? ATP, its own ‘enzyme’ in metal ion facilitated hydrolysis! | 2.8 | 56 | Citations (PDF) |
| 136 | Metal-ion-coordinating properties of various phosphonate derivatives, including 9−[2−(phosphonylmethoxy)ethyl]adenine (PMEA) - an adenosine monophosphate (AMP) analogue with antiviral properties | 1.8 | 90 | Citations (PDF) |
| 137 | Stability of some metal-ion complexes of tubercidin (= 7-deazaadenosine) in aqueous solution. An o-amino group inhibits complexation at N1of purines! | 1.7 | 18 | Citations (PDF) |
| 138 | Comparison of the extent of macrochelate formation in metal ion(M2+) complexes of inosine 5′-monophosphate(IMP2−) and inosine 5′-triphosphate (ITP4−) | 3.0 | 2 | Citations (PDF) |
| 139 | Stability and structure of the Mg2+, Ca2+ and Cu2+ complexes of orotidinate 5′-monophosphate (OMP)3− in various aqueous 1,4-dioxane mixtures | 2.8 | 9 | Citations (PDF) |
| 140 | Acid-base properties of nucleosides and nucleotides as a function of concentration. Comparison of the proton affinity of the nucleic base residues in the monomeric and self-associated, oligomeric 5'-triphosphates of inosine (ITP), guanosine (GTP), and adenosine (ATP) | 0.2 | 69 | Citations (PDF) |
| 141 | Comments on potentiometric pH titrations and the relationship between pH-meter reading and hydrogen ion concentration | 5.7 | 175 | Citations (PDF) |
| 142 | Stability and Structure of Binary and Ternary Metal Ion Complexes of Orotidinate 5′-Monophosphate (OMP3-) in Aqueous Solution | 2.5 | 64 | Citations (PDF) |
| 143 | Metal-ion-governed molecular recognition: extent of intramolecular stack formation in mixed-ligand-copper(II) complexes containing a heteroaromatic N base and an adenosine monophosphate (2'AMP, 3'AMP, or 5'AMP). A structuring effect of the metal-ion bridge | 0.2 | 50 | Citations (PDF) |
| 144 | Comparison of the self-association properties of the 5'-triphosphates of inosine (ITP), guanosine (GTP), and adenosine (ATP). Further evidence for ionic interactions in the highly stable dimeric [H2(ATP)]4-2 stack | 0.2 | 36 | Citations (PDF) |
| 145 | Mechanistic aspects of the metal ion promoted hydrolysis of nucleoside 5'-triphosphates (NTPs) | 23.1 | 120 | Citations (PDF) |
| 146 | On the metal ion binding properties of orotidine | 2.8 | 31 | Citations (PDF) |
| 147 | Handbook on toxicity of inorganic compounds | 5.7 | 121 | Citations (PDF) |
| 148 | Synergism between different metal ions in the dephosphorylation of adenosine 5′-triphosphate (ATP) in mixed metal ion/ATP systems, and influence of a decreasing solvent polarity (dioxane-water mixtures) on the dephosphorylation rate. Effects of Mg2+, Na+, and NH4+ ions | 3.0 | 22 | Citations (PDF) |
| 149 | The Imidazole Group and Its Stacking Properties in Mixed Ligand Metal Ion Complexes | 2.1 | 47 | Citations (PDF) |
| 150 | Solvent dependent metal ion-nucleic base recognition. Extent of macrochelate formation in the binary copper(II) complexes of adenosine 5'-monophosphate (AMP) and adenosine 5'-triphosphate (ATP) in water-dioxane mixtures | 4.6 | 25 | Citations (PDF) |
| 151 | Influence of Decreasing Solvent Polarity (Dioxane-Water Mixtures) on the Stability of Metal Ion Complexes Formed with Phosphate Monoesters | 0.8 | 16 | Citations (PDF) |
| 152 | Self-association of nucleotides | 3.0 | 54 | Citations (PDF) |
| 153 | Guanosine monophosphates (GMPs): Protonation and metal ion (M2+) coordination | 3.0 | 1 | Citations (PDF) |
| 154 | Isomeric equilibria in metal ion (M2+) complexes of inosine 5′-triphosphate (ITP4−) and guanosine 5′-triphosphate (GTP4−) | 3.0 | 1 | Citations (PDF) |
| 155 | Evaluation of the metal-ion-coordinating differences between the 2'-, 3'- and 5'-monophosphates of adenosine | 0.2 | 52 | Citations (PDF) |
| 156 | Ternary complexes in solution. Part 51. Intramolecular hydrophobic and stacking interactions in mixed ligand complexes containing Cu(II), 2,2′-bipyridyl or 1,10-phenanthroline, and a simple phosphate monoester, D-ribose 5′-monophosphate or a nucleoside 5′-monophosphate (CMP, UMP, TMP, TuMP) with a non-coordinating base residue | 2.8 | 26 | Citations (PDF) |
| 157 | Influence of dioxane on the extent of intramolecular hydrophobic ligand-ligand interactions in the binary Cu2+ 1:2 complexes of L-leucinate, L-valinate and L-norvalinate | 2.8 | 13 | Citations (PDF) |
| 158 | Metal ion (M2+) promoted hydrolysis of nucleoside 5′-triphosphates (NTPs) | 3.0 | 0 | Citations (PDF) |
| 159 | Influence of Solvent Composition (Water—Dioxane Mixtures) on the Formation Degree of Intramolecular Aromatic-Ring Stacks in Binary Cu(L-Phenylalaninate)2, Cu(L-Tryptophanate)2, and Related Complexes | 0.8 | 8 | Citations (PDF) |
| 160 | Hydrophobic interactions in biological systems: some background information based on ligand-ligand interactions in metal ion complexes | 1.9 | 111 | Citations (PDF) |
| 161 | Influence of the protonation degree on the self-association properties of adenosine 5'-triphosphate (ATP) | 0.2 | 54 | Citations (PDF) |
| 162 | Ternary complexes in solution. 50. Dependence of intramolecular hydrophobic ligand-ligand interactions on ligand structure, geometry of the coordination sphere of the metal ion, and solvent composition. Opposing solvent effects | 4.6 | 49 | Citations (PDF) |
| 163 | Comparison of the metal ion coordinating properties of tubercidin 5'-monophosphate (7-deaza-AMP) with those of adenosine 5'-monophosphate (AMP) and 1,N6-ethenoadenosine 5'-monophosphate (.epsilon.-AMP). Definite evidence for metal ion-base-backbinding to N-7 and extent of macrochelate formation in M(AMP) and M(.epsilon.-AMP) | 15.0 | 142 | Citations (PDF) |
| 164 | Metal ion coordinating properties of pyrimidine-nucleoside 5'-monophosphates (CMP, UMP, TMP) and of simple phosphate monoesters, including D-ribose 5'-monophosphate. Establishment of relations between complex stability and phosphate basicity | 4.6 | 203 | Citations (PDF) |
| 165 | Quantification of Intramolecular Ligand Equilibria in Metal-Ion Complexes | 2.1 | 108 | Citations (PDF) |
| 166 | Comparison of the stabilities of monomeric metal ion complexes formed with adenosine 5'-triphosphate (ATP) and pyrimidine-nucleoside 5'-triphosphate (CTP, UTP, TTP) and evaluation of the isomeric equilibria in the complexes of ATP and CTP | 4.6 | 136 | Citations (PDF) |
| 167 | Ternary complexes in solution. Part 49. Intramolecular equilibria in metal ion complexes of adenosine 5'-triphosphate (ATP4-): coordination of ammonia or imidazole to M(ATP)2- releases N-7 from the metal ion coordination sphere | 4.6 | 36 | Citations (PDF) |
| 168 | Self-association of adenosine 5′-monophosphate (5′-AMP) as a function of pH and in comparison with adenosine, 2′-AMP and 3′-AMP | 2.1 | 42 | Citations (PDF) |
| 169 | Self-association and protonation of adenosine 5'-monophosphate in comparison with its 2'- and 3'-analogues and tubercidin 5'-monophosphate (7-deaza-AMP) | 0.2 | 158 | Citations (PDF) |
| 170 | Isomeric equilibria in complexes of adenosine 5'-triphosphate with divalent metal ions. Solution structures of M(ATP)2- complexes | 0.2 | 147 | Citations (PDF) |
| 171 | Hydrolysis of nucleoside phosphates. Part 10. Comparison of the metal ion facilitated hydrolysis for the 5'-triphosphates of 1,N6-ethenoadenosine (.epsilon.-ATP), adenosine (ATP), and cytidine (CTP). Dephosphorylation of .epsilon.-ATP proceeding with zinc(2+) and copper(2+) via structurally different species: evidence for a long-sought, monomeric, back-bound complex with copper(2+)/.epsilon.-ATP | 4.6 | 24 | Citations (PDF) |
| 172 | Comparison of the properties of binary and ternary metal ion complexes of 1,N6-ethenoadenosine 5'-triphosphate (.epsilon.-ATP) and adenosine 5'-triphosphate (ATP), including macrochelate and purine-indole stack formation | 15.0 | 20 | Citations (PDF) |
| 173 | Complex formation between copper(2+) and 1,N6-ethenoadenosine 5'-triphosphate (.epsilon.-ATP) | 4.6 | 11 | Citations (PDF) |
| 174 | Self-association of 1,N6-ethenoadenosine 5'-triphosphate (e-ATP) and promotion by metal ions | 0.2 | 8 | Citations (PDF) |
| 175 | Solvent effects on intramolecular hydrophobic ligandligand interactions in binary and ternary complexes | 2.8 | 37 | Citations (PDF) |
| 176 | An estimation of the equivalent solution dielectric constant in the active-site cavity of metalloenzymes. Dependence of carboxylate - metal-ion complex stabilities on the polarity of mixed aqueous/organic solvents | 0.2 | 96 | Citations (PDF) |
| 177 | Hydrolysis of nucleoside phosphates. 9. Comparison of the effectiveness of various metal ions on the promoted dephosphorylation of adenosine 5'-triphosphate (ATP) and uridine 5'-triphosphate (UTP) | 15.0 | 63 | Citations (PDF) |
| 178 | Ternary complexes of solution. 48. Influence of organic solvents on intramolecular aromatic-ring stacks in aqueous mixed-ligand metal ion complexes. Opposing solvent effects | 15.0 | 63 | Citations (PDF) |
| 179 | Influence of decreasing solvent polarity (dioxane–water mixtures) on the stability and structure of binary and ternary complexes of adenosine 5′-triphosphate and uridine 5′-triphosphate | 1.7 | 48 | Citations (PDF) |
| 180 | Ternary complexes in solution. 45. Intramolecular aromatic-ring stacking interactions in dependence on the ligand structure, geometry of the coordination sphere of the metal ion, and solvent composition | 4.6 | 76 | Citations (PDF) |
| 181 | On the metal-ion coordinating properties of the 5'-monophosphates of 1, N6-ethenoadenosine (e-AMP), adenosine and uridine. Comparison of the macrochelate formation in the complexes of e-AMP, AMP, ADP and ATP | 0.2 | 21 | Citations (PDF) |
| 182 | Stability and structure for monomeric cadmium(II) and zinc(II) complexes of the 5'-triphosphates of adenosine and cytidine in aqueous solution: isomeric equilibria in binary and ternary complexes | 4.6 | 46 | Citations (PDF) |
| 183 | Hydrolysis of nucleoside phosphates. 8. General considerations of transphosphorylations: mechanism of the metal ion facilitated dephosphorylation of nucleoside 5'-triphosphates including promotion of ATP dephosphorylation by addition of adenosine 5'-monophosphate | 15.0 | 101 | Citations (PDF) |
| 184 | Ternary complexes in solution. 44. Dependence of an intramolecular aromatic-ring stacking interaction in mixed-ligand copper(II) complexes in aqueous solution on the distance of the stacking moiety from the coordinating group and the solid-state structure of the ternary copper(II)-1,10-phenanthroline-phenylpropionate complex | 4.6 | 97 | Citations (PDF) |
| 185 | Metal-Ion-Promoted Dephosphorylation of the 5' -Triphosphates of Uridine and Thymidine, and a Comparison with the Reactivity in the Corresponding Cytidine and Adenosine Nucleotide Systems | 0.2 | 24 | Citations (PDF) |
| 186 | 1H-NMR study on self-association and macrochelate formation in metal ion systems of nucleoside 5′-diphosphates | 2.8 | 3 | Citations (PDF) |
| 187 | A proton nuclear magnetic resonance study of purine and pyrimidine nucleoside 5'-diphosphates. Extent of macrochelate formation in monomeric metal ion complexes and promotion of self-stacking by metal ions | 15.0 | 100 | Citations (PDF) |
| 188 | Molecular properties of 1,N6-ethenoadenosine in comparison with adenosine: self-association, protonation, metal ion complexation, and tryptophan-adduct formation. A study on .epsilon.-adenosine using proton nuclear magnetic resonance, ultraviolet spectrophotometry, and potentiometric pH titration | 15.0 | 40 | Citations (PDF) |
| 189 | Ternary complexes in solution. 42. Metal ion promoted hydrophobic interactions between nucleotides and amino acids. Mixed-ligand adeonsine 5'-triphosphate/metal ion(II)/L-leucinate systems and related ternary complexes | 4.6 | 113 | Citations (PDF) |
| 190 | Comparison of the metal ion promoted dephosphorylation of adenosine 5'-triphosphate and uridine 5'-triphosphate | 1.9 | 13 | Citations (PDF) |
| 191 | Coordinating properties of the amide bond. Stability and structure of metal ion complexes of peptides and related ligands | 52.5 | 1,615 | Citations (PDF) |
| 192 | Transition metal ions and amides. Part 7. Apical interactions in copper(II) complexes. Stability and structure of the binary and ternary copper(II) complexes formed with L-alaninamide and diethylenetriamine in aqueous solution | 4.6 | 68 | Citations (PDF) |
| 193 | Ternary complexes in solution. 41. Ternary complexes in solution as models for enzyme-metal ion-substrate complexes. Comparison of the coordination tendency of imidazole and ammonia toward the binary complexes of Mn(II), Co(II), Ni(II), Cu(II), Zn(II), or Cd(II) and uridine 5'-triphosphate or adenosine 5'-triphosphate | 15.0 | 55 | Citations (PDF) |
| 194 | On the metal ion coordinating properties of the cocaine-model n-methylpiperidine and related ligands [1] | 2.8 | 5 | Citations (PDF) |
| 195 | Metal ion complexes of d-biotin in solution. Stability of the stereoselective thioether coordination | 3.0 | 9 | Citations (PDF) |
| 196 | Metal ion/buffer interactions. Stability of alkali and alkaline earth ion complexes with triethanolamine (tea), 2-amino-2(hydroxymethyl)-1,3-propanediol (tris)and 2-[bis(2-hydroxyethyl)-amino] 2(hydroxymethyl)-1,3-propanediol (Bistris) in aqueous and mixed solvents | 2.8 | 55 | Citations (PDF) |
| 197 | Macrochelate formation in monomeric metal ion complexes of nucleoside 5'-triphosphates and the promotion of stacking by metal ions. Comparison of the self-association of purine and pyrimidine 5'-triphosphates using proton nuclear magnetic resonance | 15.0 | 217 | Citations (PDF) |
| 198 | Enhanced stability of ternary complexes in solution through the participation of heteroaromatic N bases. Comparison of the coordination tendency of pyridine, imidazole, ammonia, acetate, and hydrogen phosphate toward metal ion nitrilotriacetate complexes | 4.6 | 99 | Citations (PDF) |
| 199 | The coordinating properties ofd-biotin | 0.3 | 18 | Citations (PDF) |
| 200 | Kinetics of formation of the mixed ligand complex between Ni(nitrilotriacetate)− and imidazole [1] | 2.8 | 9 | Citations (PDF) |
| 201 | Stability of binary and ternary β-alanine containing dipeptide copper(II) complexes [1] | 2.8 | 34 | Citations (PDF) |
| 202 | Intramolecular hydrophobic and aromatic-ring stacking interactions in ternary complexes in solution | 2.8 | 1 | Citations (PDF) |
| 203 | Binary and ternary complexes of metal ions, nucleoside 5′-monophosphates, and amino acids | 0.8 | 32 | Citations (PDF) |
| 204 | Comparison of the ligating properties of disulphides and thioethers: dimethyl disulphide, dimethyl sulphide, and related ligands | 1.7 | 42 | Citations (PDF) |
| 205 | Ternary complexes in solution. 35. Intramolecular hydrophobic ligand-ligand interactions in mixed ligand complexes containing an aliphatic amino acid | 15.0 | 196 | Citations (PDF) |
| 206 | Ternary complexes in solution. 34. Discriminating and stability increasing properties of the imidazole moiety in mixed-ligand complexes | 4.6 | 88 | Citations (PDF) |
| 207 | Metal Ion/Buffer Interactions | 0.2 | 80 | Citations (PDF) |
| 208 | Ternary Complexes in Solution, XXX Increased Stability Through Intramolecular Stacking in Mixed-Ligand Cu 2+ and Zn 2+ Complexes of 2,2′ -Bipyridyl and Carboxymethyl Aryl Derivatives | 0.8 | 11 | Citations (PDF) |
| 209 | On the Position of the Intramolecular Equilibrium between Opened and Aromatic-Ring Stacked Forms in Ternary Complexes Composed of Adenosine 5?-triphosphate, Mg2+ or Zn2+, andL-Tryptophanate, and in Related Ternary Systems | 1.8 | 63 | Citations (PDF) |
| 210 | Metal Ion/Buffer Interactions. Stability of Binary and Ternary Complexes Containing 2-Amino-2(hydroxymethyl)-1,3-propanediol (Tris) and Adenosine 5'-Triphosphate (ATP) | 0.2 | 148 | Citations (PDF) |
| 211 | Metal ions and hydrogen peroxide. Catalase-like activity of copper(2+) ion in aqueous solution and its promotion by the coordination of 2,2'-bipyridyl | 4.6 | 44 | Citations (PDF) |
| 212 | Stability of metal ion/alkyl thioether complexes in solution. Ligating properties of "isolated" sulfur atoms | 4.6 | 33 | Citations (PDF) |
| 213 | Ternary complexes in solution. 31. Effect of the varying .pi.-accepting properties of several bipyridyl-like ligands on the stability of mixed-ligand complexes also containing pyrocatecholate and cobalt(II), nickel(II), copper(II), or zinc(II) | 4.6 | 52 | Citations (PDF) |
| 214 | A Proton Nuclear-Magnetic-Resonance Study of Self-Stacking in Purine and Pyrimidine Nucleosides and Nucleotides | 0.2 | 87 | Citations (PDF) |
| 215 | Intramolecular Stacking in Ternary Complexes Containing Uridine 5?-Triphosphate, 2,2?-Bipyridyl, and a Divalent Metal Ion | 1.8 | 30 | Citations (PDF) |
| 216 | Ternary complexes in solution. 28. Enhanced stability of ternary metal ion/adenosine 5'-triphosphate complexes. Cooperative effects caused by stacking interactions in complexes containing adenosine triphosphate, phenanthroline, and magnesium, calcium, or zinc ions | 15.0 | 100 | Citations (PDF) |
| 217 | Stability and structure of Cd2+ and Pb2+ complexes with biotin, lipoic acid and some of their derivatives in solution | 0.8 | 9 | Citations (PDF) |
| 218 | Stability and structure of binary and ternary complexes of α-lipoate and lipoate derivatives with Mn2+, Cu2+, and Zn2+ in solution | 2.8 | 72 | Citations (PDF) |
| 219 | Ternary complexes in solution. 26. Stacking interactions in the mixed-ligand complexes formed by adenosine or inosine 5'-triphosphate, 2,2'-bipyridyl, and cobalt(II), nickel(II), copper(II), or zinc(II). Evidence for phosphate-protonated complexes | 15.0 | 69 | Citations (PDF) |
| 220 | Ternary complexes in solution. 25. Influence of alkyl side chains with hydroxy or thioether groups on the stability of binary and ternary copper(II)-dipeptide complexes | 4.6 | 35 | Citations (PDF) |
| 221 | Ternary complexes in solution. 27. Biological implications from the stability of ternary complexes in solution. Mixed-ligand complexes with manganese(II) and other 3d ions | 15.0 | 136 | Citations (PDF) |
| 222 | Comparison of the stabilities of binary and ternary complexes of divalent metal ions with the 5′-triphosphates of adenosine, inosine, guanosine, cytidine, uridine and thymidine | 0.8 | 53 | Citations (PDF) |
| 223 | On the kinetics and mechanism of the catalase-like activity of diaquocobinamide | 0.8 | 10 | Citations (PDF) |
| 224 | Hydrolysis of nucleoside phosphates. 6. The mechanism of the metal ion promoted dephosphorylation of purine nucleoside 5'-triphosphates | 15.0 | 71 | Citations (PDF) |
| 225 | Ternary complexes in solution. XXIV. Metal ion bridging of stacked purine-indole adducts. The mixed-ligand complexes of adenosine 5'-triphosphate, tryptophan, and manganese(II), copper(II), or zinc(II) | 15.0 | 101 | Citations (PDF) |
| 226 | Comparison of the Metal-Ion-Promoted Dephosphorylation of the 5'-Triphosphates of Adenosine, Inosine, Guanosine and Cytidine by Mn2+, Ni2+ and Zn2+ in Binary and Ternary Complexes | 0.2 | 43 | Citations (PDF) |
| 227 | Hydrophobic Interactions between Metal Complexes of Aromatic Ligands and 3-(Trimethylsilyl)-1-propanesulfonate and Their1H-NMR Spectroscopic Detection | 4.7 | 20 | Citations (PDF) |
| 228 | Hydrophobe Wechselwirkungen zwischen Metall-Komplexen mit aromatischen Liganden und 3-(Trimethylsilyl)-1-propansulfonat und ihr1H-NMR-spektroskopischer Nachweis | 1.4 | 7 | Citations (PDF) |
| 229 | Stabilität, Struktur und Reaktivität von ternären Cu2+‐Komplexen | 1.4 | 73 | Citations (PDF) |
| 230 | Ternary Cu2+ Complexes: Stability, Structure, and Reactivity | 4.7 | 326 | Citations (PDF) |
| 231 | Hydrolysis of nucleoside phosphates: IV.* The metal ion - nucleic base interaction in the Cu2+-promoted dephosphorylation of the 5′-di- and 5′-triphosphates of cytidine, inosine and guanosine, and their protection toward hydrolysis by coordination to Cu(2,2′-bipyridyl)2+ | 1.0 | 17 | Citations (PDF) |
| 232 | Nucleic base-metal ion interactions. Acidity of the N(1) or N(3) proton in binary and ternary complexes of manganese(2+), nickel(2+), and zinc(2+) ions with the 5'-triphosphates of inosine, guanosine, uridine, and thymidine | 15.0 | 77 | Citations (PDF) |
| 233 | Ternary complexes in solution. XXIII. Influence of alkyl side chains on the stability of binary and ternary copper(II)-dipeptide complexes | 4.6 | 62 | Citations (PDF) |
| 234 | Ternary complexes in solution—XIX Relation between ligand basicity and complex stability. A method for the estimation of stability constants | 0.8 | 26 | Citations (PDF) |
| 235 | On the mechanism of the catalase-like activity of cobalt(III)-hematoporphyrin | 0.8 | 8 | Citations (PDF) |
| 236 | Hydration, protonation and metal ion-coordination of di-2-pyridyl ketone | 0.8 | 27 | Citations (PDF) |
| 237 | The Dephosphorylation of Adenosine 5′ -Triphosphate in a Binary and Ternary Zn 2+ Complex | 1.6 | 6 | Citations (PDF) |
| 238 | Adenosine and Inosine 5'-triphosphates. Protonation, Metal-Ion Coordination, and Charge-Tranfer Interaction between Two Ligands within Ternary Complexes | 0.2 | 60 | Citations (PDF) |
| 239 | A Comparison on the Coordination Tendency towards Cu2+ of the Base Moieties in Guanosine, Inosine and Adenosine 5'-Triphosphates | 0.2 | 15 | Citations (PDF) |
| 240 | Ternary complexes in solution. XVIII. Stability enhancement of nucleotide-containing charge-transfer adducts through the formation of a metal ion bridge | 15.0 | 92 | Citations (PDF) |
| 241 | Ternary complexes in solution. XVI. Influence of the size of the chelate rings on the stability of mixed-ligand copper(II) complexes containing aliphatic ligands | 4.6 | 37 | Citations (PDF) |
| 242 | Ternary complexes in solution. Bridging of the stacked adduct between tryptophan and adenosine 5′-triphosphate by zinc(II) | 2.7 | 24 | Citations (PDF) |
| 243 | METAL IONS AND HYDROGEN PEROXIDE XXIX. On the Kinetics and Mechanism of the Catalase-like Activity of Nickel(II) and Nickel(II)-Amine Complexes | 2.5 | 14 | Citations (PDF) |
| 244 | Significance of binary and ternary copper(II) complexes for the promotion and protection of adenosine 5′-di- and triphosphate toward hydrolysis | 2.0 | 47 | Citations (PDF) |
| 245 | Ternary Complexes in Solution, XX | 0.8 | 3 | Citations (PDF) |
| 246 | Inhibition of the catalase-like activity of cobalt(III)-hematoporphyrin by amino acids, adenine and related ligands Stability of the inhibitor adducts | 0.8 | 10 | Citations (PDF) |
| 247 | Additions and Corrections - Thermodynamics and Kinetics of Complex Formation between Cobalt(II), Nickel(II), and Copper(II) with Glycyl-L-leusince and L-Leucylglycine | 15.0 | 5 | Citations (PDF) |
| 248 | Ternary complexes in solution. XV. Mixed-ligand copper(II) complexes with 2,2'-bipyridyl or 1,10-phenanthroline and pyrocatecholate or derivatives thereof | 4.6 | 73 | Citations (PDF) |
| 249 | Interactions of metal ions with biotin and biotin derivatives. Complexing and hydrogen-bond formation of the ureido group | 2.4 | 21 | Citations (PDF) |
| 250 | Metal Ions and Hydrogen Peroxide. XXV | 0.8 | 8 | Citations (PDF) |
| 251 | Ternary complexes in solution. XIII. Mixed-ligand complexes of copper(II) or zinc(II) with 2,2′-bipyridyl and thioether carboxylates or some of the sulfoxide or sulfone derivatives | 2.8 | 13 | Citations (PDF) |
| 252 | Spectral properties of mixed-ligand copper(II) complexes and their corresponding binary parent complexes | 4.6 | 106 | Citations (PDF) |
| 253 | Kinetics of formation of mixed ligand complexes. III. Cobalt(II)-2,2'-bipyridyl-glycine system | 4.6 | 8 | Citations (PDF) |
| 254 | Thermodynamics and kinetics of complex formation between cobalt(II), nickel(II), and copper(II) with glycyl-L-leucine and L-leucylglycine | 15.0 | 22 | Citations (PDF) |
| 255 | Observation of cis- and trans-bis(2,2'-bipyridyl)copper(II) by electron spin resonance | 4.6 | 23 | Citations (PDF) |
| 256 | Kinetics of formation of mixed-ligand complexes. II. 2,2'-Bipyridylcopper(II) reactions with ethylenediamine, .alpha.-alanine, and .beta.-alanine | 4.6 | 17 | Citations (PDF) |
| 257 | Metal ions and hydrogen peroxide. XXVI. Kinetics and mechanism of the catalase-like activity of cobalt(III) hematoporphyrin | 4.6 | 27 | Citations (PDF) |
| 258 | Ternary Complexes in Solution, XII. Models for Biological Mixed-Ligand Complexes: 2,2′-Bipyridyl-Cu2+-Oligoglycine Systems | 0.8 | 53 | Citations (PDF) |
| 259 | The Stability Increasing Effect of the Pyridyl and Imidazole Groups on the Formation of Mixed Amine-Copper( II)-Adenosine 5′-monophosphate Complexes 1, 2 | 0.8 | 11 | Citations (PDF) |
| 260 | Protection of Adenosine 5?-Triphosphate toward Hydrolysis by the Formation of a Mixed-Ligand Metal Ion Complex | 4.7 | 5 | Citations (PDF) |
| 261 | Strukturelle Aspekte der Metallion‐Ligand‐Wechselwirkung | 1.4 | 0 | Citations (PDF) |
| 262 | Unterdrückung der Hydrolyse von Adenosin‐5′‐triphosphat durch Bildung eines ternären Metallion‐Komplexes | 1.4 | 9 | Citations (PDF) |
| 263 | Acidity Constants of the Thienyl- and Phenyl-Pyridines and Stability Constants of the Corresponding Copper (II) 1:1 Complexes | 1.8 | 18 | Citations (PDF) |
| 264 | Ternary complexes in solution. XI. Complex formation between the cobalt(II)-, nickel(II)-, copper(II)-, and zinc(II)-2,2'-bipyridyl 1:1 complexes and ethylenediamine, glycinate, or pyrocatecholate | 4.6 | 94 | Citations (PDF) |
| 265 | Ternary complexes in solution. X. Influence of the size of the chelate rings on the stability of mixed-ligand copper(II) complexes | 4.6 | 51 | Citations (PDF) |
| 266 | Ternary complexes in solution. IX. Stability-increasing effect of the pyridyl and imidazole groups on the formation of mixed-ligand-copper(II)-pyrocatecholate complexes | 4.6 | 71 | Citations (PDF) |
| 267 | Structure of the copper(II)-L-histidine 1:2 complex in solution | 15.0 | 82 | Citations (PDF) |
| 268 | Mn2+, Cu2+, and Zn2+ 1:1 Complexes with biochemically significant thioether carboxylic acids and some of the sulfoxide and sulfone derivatives | 2.8 | 10 | Citations (PDF) |
| 269 | The dimerization, polymerization, and hydrolysis of FeIII-4,4′,4″,4″′-tetrasulfophthalocyanine | 0.9 | 46 | Citations (PDF) |
| 270 | Discriminating behavior of metal ions and ligands with regard to their biological significance | 17.0 | 295 | Citations (PDF) |
| 271 | Stability and structure of binary and ternary metal ion complexes with biocytin, the sulfoxide and sulfone, N-acetyl-L-lysine, and L-alanine | 2.4 | 27 | Citations (PDF) |
| 272 | Kinetics of formation of mixed ligand complexes. I. Copper(II)-2,2'-bipyridyl-glycine system in aqueous solution | 15.0 | 25 | Citations (PDF) |
| 273 | On the structure of copper(II)-histidine complexes | 1.5 | 4 | Citations (PDF) |
| 274 | Ternary complexes in solution. VIII. Complex formation between the copper(II)-2,2'-bipyridyl 1:1 complex and ligands containing oxygen and/or nitrogen donor atoms | 4.6 | 205 | Citations (PDF) |
| 275 | Binary and ternary Me2+ complexes with α- or β-substituted halogeno carboxylic acids | 0.9 | 10 | Citations (PDF) |
| 276 | Catalase and Peroxidase Activity of Cu2+ Complexes | 4.7 | 89 | Citations (PDF) |
| 277 | Zur katalatischen und peroxidatischen Aktivität von Cu2+-Komplexen | 1.4 | 57 | Citations (PDF) |
| 278 | Metal ions and hydrogen peroxide. XXI. On the kinetics and mechanism of the reactions of hydrogen peroxide with hydrazine or hydroxylamine, catalyzed by Cu2+ and by the Cu2+-2,2'-bipyridyl complex | 15.0 | 44 | Citations (PDF) |
| 279 | Metal ions and hydrogen peroxide. XX. On the kinetics and mechanism of the decomposition of hydrogen peroxide, catalyzed by the Cu2+-2,2'-bipyridyl complex | 15.0 | 81 | Citations (PDF) |
| 280 | “Hard and soft” behavior of Mn2+, Cu2+, and Zn2+ with respect-to carboxylic acids and α-oxy- or α-thio-substituted carboxylic acids of biochemical significance | 2.8 | 24 | Citations (PDF) |
| 281 | On the structure of manganese (II)- and copper (II)-histidine complexes | 2.8 | 22 | Citations (PDF) |
| 282 | Metal ion complexes with biotin and biotin derivatives. Participation of sulfur in the orientation of divalent cations | 2.4 | 59 | Citations (PDF) |
| 283 | Structure of Mn2+ and Cu2+ complexes with l-methionine, S-methyl-l-cysteine, l-threonine and l-serine | 2.0 | 25 | Citations (PDF) |
| 284 | Metal Ions and Hydrogen Peroxide. Evidence for a Catalase-Like Activity of the cis-Diaquo Isomer of the Cu2+-2,2'-Bipyridyl 1:2 Complex | 15.0 | 14 | Citations (PDF) |
| 285 | Deprotonierung von Glycinamid in einem ternären Kupfer(II)‐Komplex | 1.4 | 26 | Citations (PDF) |
| 286 | Ternäre komplexe in Lösung. VI. Einfluss von 2,2,′-bipyridyl auf die stabilität von Cu2+— und Zn2+-carbonsäure-1:1-komplexen | 0.9 | 29 | Citations (PDF) |
| 287 | Deprotonation of Glycine Amide in a Ternary Copper(II)-Complex | 4.7 | 25 | Citations (PDF) |
| 288 | Metallionen und H2O2. Die denaturierung von DNA in Abhängigkeit vom pH—Einfluss von Metallionen | 1.2 | 9 | Citations (PDF) |
| 289 | Ternary complexes in solution. Influence of 2,2′-bipyridyl on the stability of 1:1 complexes of Co2+, Ni2+, Cu2+, and Zn2+ with hydrogen phosphate, adenosine 5′-monophosphate, and adenosine 5′-triphosphate☆ | 2.0 | 108 | Citations (PDF) |
| 290 | Tern�re Komplexe in L�sung II. Einfluss von 2,2?-Bipyridyl auf die Stabilit�t des Cu2+-Glycin-1:1-Komplexes | 1.8 | 30 | Citations (PDF) |
| 291 | Tern�re Komplexe in L�sung IV. Einfluss von 2,2?-Bipyridyl auf Stabilit�t und Acidit�t des Cu2+-Adenosin-5?-monophosphat-N(1)-oxid-1:1-Komplexes | 1.8 | 22 | Citations (PDF) |
| 292 | Über Struktur und Aktivität der den H2O2-Zerfall katalysierenden Cu2+-Komplexe. — VI. Differenzierung von nativer RNS und nativer DNS bzw. denaturierter DNS auf Grund der katalytischen Eigenschaften | 0.3 | 18 | Citations (PDF) |
| 293 | Strukturspezifischer Abbau von Polypeptid-Metall-Komplexen. V. Abbau des Cu2+-Polymyxin-B-Komplexes durch NH2OH | 0.3 | 1 | Citations (PDF) |
| 294 | Cu2+-Adeninring-Wechselwirkung in den Cu2+-Komplexen von Adenosin-5′- und Adenosin-3′-monophosphat | 0.3 | 20 | Citations (PDF) |
| 295 | Strukturspezifischer Abbau von Polypeptid-Metall-Komplexen III 1. Abbau des Ni2+-Angiotensin II-Komplexes durch H2O2 2 | 0.3 | 4 | Citations (PDF) |
| 296 | Inosin-N(1)-oxid-Nucleotide als Komplexbildner II. Acidit�tskonstanten von Inosin-N(1)-oxid und von dessen 5?-Monophosphat | 1.8 | 6 | Citations (PDF) |
| 297 | Inosin-N(1)-oxid-Nucleotide als Komplexbildner III. Komplexchemische Untersuchungen von Inosin-N(1)-oxid und von dessen 5?-Monophosphat | 1.8 | 14 | Citations (PDF) |
| 298 | Die hydrophoben und Metallionen-koordinierenden Eigenschaften von α-Liponsäure - ein Beispiel für intramolekulare Gleichgewichte in Metallionen-Komplexen | 1.4 | 23 | Citations (PDF) |