297(top 1%)
PR articles
13.1K(top 1%)
PR citations
60(top 1%)
PR h-index
66(top 1%)
h-index
315
documents
15.0K
doc citations
1.1K
citing journals
100
times ranked

Publications

298 peer-reviewed articles • 13,354 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
Sort: Year | Citations
#ArticleIFCitationsLinks
1Acid–base properties of an antivirally active acyclic nucleoside phosphonate: (S)-9-[3-hydroxy-2-(phosphonomethoxy)propyl]adenine (HPMPA)
New Journal of Chemistry, 2022, 46, 6484-6493
2.45Citations (PDF)
2Coordination Chemistry of Nucleotides and Antivirally Active Acyclic Nucleoside Phosphonates, including Mechanistic Considerations
Molecules, 2022, 27, 2625
4.29Citations (PDF)
3Metal 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 Equilibria1.84Citations (PDF)
4The bio-relevant metals of the periodic table of the elements0.826Citations (PDF)
5Metal-ion binding properties of (S)-1-[3-hydroxy-2-(phosphonomethoxy)propyl]cytosine (HPMPC, Cidofovir). A nucleotide analogue with activity against DNA viruses
Inorganica Chimica Acta, 2018, 472, 283-294
2.85Citations (PDF)
6Intramolecular 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‡2.54Citations (PDF)
7Acid–base and metal ion-binding properties of thiopyrimidine derivatives
Coordination Chemistry Reviews, 2016, 327-328, 200-220
23.15Citations (PDF)
8(N7)-Platination and its effect on (N1)H-acidification in nucleoside phosphate derivatives
Inorganica Chimica Acta, 2016, 452, 137-151
2.84Citations (PDF)
9Extent 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
Polyhedron, 2016, 103, 248-260
2.45Citations (PDF)
10Connectivity patterns and rotamer states of nucleobases determine acid–base properties of metalated purine quartets3.07Citations (PDF)
11Solution properties of metal ion complexes formed with the antiviral and cytostatic nucleotide analogue 9-[2-(phosphonomethoxy)ethyl]-2-amino-6-dimethylaminopurine (PME2A6DMAP)1.76Citations (PDF)
12Comparison of the π-stacking properties of purine versus pyrimidine residues. Some generalizations regarding selectivity2.519Citations (PDF)
13Intrinsic Acid–Base Properties of a Hexa‐2′‐deoxynucleoside Pentaphosphate, d(ApGpGpCpCpT): Neighboring Effects and Isomeric Equilibria
Chemistry - A European Journal, 2013, 19, 8163-8181
3.419Citations (PDF)
14Extent 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]0.93Citations (PDF)
15Extent 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)
Chemistry and Biodiversity, 2012, 9, 2008-2034
2.211Citations (PDF)
16Steric 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
Coordination Chemistry Reviews, 2012, 256, 260-278
23.122Citations (PDF)
17Probing the Metal-Ion-Binding Strength of the Hydroxyl Group
Chemical Reviews, 2011, 111, 4964-5003
52.566Citations (PDF)
18Stability 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
Chemistry - A European Journal, 2011, 17, 5393-5403
3.424Citations (PDF)
19Understanding the Acid–Base Properties of Adenosine: The Intrinsic Basicities of N1, N3 and N7
Chemistry - A European Journal, 2011, 17, 8156-8164
3.477Citations (PDF)
20A Stability Concept for Metal Ion Coordination to Single-Stranded Nucleic Acids and Affinities of Individual Sites17.0246Citations (PDF)
21Metal 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
Dalton Transactions, 2010, 39, 6344
3.016Citations (PDF)
22Xanthosine 5′-monophosphate (XMP). Acid–base and metal ion-binding properties of a chameleon-like nucleotide
Chemical Society Reviews, 2009, 38, 2465
37.730Citations (PDF)
23Intramolecular 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)
Inorganica Chimica Acta, 2009, 362, 799-810
2.819Citations (PDF)
24Influence 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 equilibria2.518Citations (PDF)
25Acid–base and metal ion binding properties of 2-thiocytidine in aqueous solution2.512Citations (PDF)
26Comparison 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)
Chemistry - A European Journal, 2008, 14, 10036-10046
3.411Citations (PDF)
27Inosylyl(3′→5′)inosine (IpI–). Acid–Base and Metal Ion-Binding Properties of a Dinucleoside Monophosphate in Aqueous Solution
Inorganic Chemistry, 2008, 47, 2641-2648
4.610Citations (PDF)
28Extent of metal ion-sulfur binding in complexes of thiouracil nucleosides and nucleotides in aqueous solution3.00Citations (PDF)
29Metal-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
Chemistry - A European Journal, 2007, 13, 1804-1814
3.424Citations (PDF)
30New 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–)1.88Citations (PDF)
31Extent of metal ion–sulfur binding in complexes of thiouracil nucleosides and nucleotides in aqueous solution3.026Citations (PDF)
32Evidence for intramolecular aromatic-ring stacking in the physiological pH range of the monodeprotonated xanthine residue in mixed-ligand complexes containing xanthosinate 5′-monophosphate (XMP)
Dalton Transactions, 2006, , 5521-5529
3.022Citations (PDF)
33Acid–base properties of the nucleic-acid model 2′-deoxyguanylyl(5′→3′)-2′-deoxy-5′-guanylate, d(pGpG)3–, and of related guanine derivatives2.629Citations (PDF)
34Acid–Base and Metal-Ion-Binding Properties of Xanthosine 5′-Monophosphate (XMP) in Aqueous Solution: Complex Stabilities, Isomeric Equilibria, and Extent of Macrochelation
Chemistry - A European Journal, 2006, 12, 8106-8122
3.419Citations (PDF)
35Nucleoside 5′-triphosphates: self-association, acid–base, and metal ion-binding properties in solution37.7231Citations (PDF)
36Influence of Decreasing Solvent Polarity (1,4-Dioxane/Water Mixtures) on the Acid-Base and Copper(II)-Binding Properties of Guanosine 5?-Diphosphate
Helvetica Chimica Acta, 2005, 88, 406-425
1.824Citations (PDF)
37Metal ion-binding properties of (N3)-deprotonated uridine, thymidine, and related pyrimidine nucleosides in aqueous solution7.570Citations (PDF)
38Acid−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
Inorganic Chemistry, 2005, 44, 5104-5117
4.638Citations (PDF)
39Acid-base properties of purine residues and the effect of metal ions: Quantification of rare nucleobase tautomers
Pure and Applied Chemistry, 2004, 76, 1869-1886
1.976Citations (PDF)
40Adenosine 5'-triphosphate (ATP4-): Aspects of the coordination chemistry of a multitalented biological substrate
Pure and Applied Chemistry, 2004, 76, 375-388
1.955Citations (PDF)
41A 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 derivatives2.529Citations (PDF)
42Quantification 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)2.511Citations (PDF)
43Two Metal Ions Coordinated to a Purine Residue Tolerate Each Other Well14.438Citations (PDF)
44Zwei Metallionen behindern sich kaum bei der Koordination an ein Purin
Angewandte Chemie, 2004, 116, 3881-3883
1.45Citations (PDF)
45Perturbation of the NH2 pKa Value of Adenine in Platinum(II) Complexes: Distinct Stereochemical Internucleobase Effects
Chemistry - A European Journal, 2004, 10, 1046-1057
3.444Citations (PDF)
46Acid–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
Chemistry - A European Journal, 2004, 10, 5129-5137
3.418Citations (PDF)
47Intramolecular 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☆3.018Citations (PDF)
48Metal 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
Inorganic Chemistry, 2004, 43, 1311-1322
4.652Citations (PDF)
49Metal ion complexes of antivirally active nucleotide analogues. Conclusions regarding their biological action37.770Citations (PDF)
50Title is missing!0.20Citations (PDF)
51Solution 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)1.85Citations (PDF)
52Stabilities 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)3.486Citations (PDF)
53Complex Formation of Divalent Metal Ions with Uridine 5′-O-Thiomonophosphate or Methyl Thiophosphate: Comparison of Complex Stabilities with Those of the Parent Phosphate Ligands
ChemBioChem, 2003, 4, 593-602
2.629Citations (PDF)
54Stability 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
Polyhedron, 2003, 22, 1067-1076
2.416Citations (PDF)
55Stability constants of metal ion complexes formed with N3-deprotonated uridine in aqueous solution4.826Citations (PDF)
56Intrinsic 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
Inorganic Chemistry, 2003, 42, 32-41
4.672Citations (PDF)
57Acid−Base and Metal Ion Binding Properties of Guanylyl(3‘→5‘)guanosine (GpG-) and 2‘-Deoxyguanylyl(3‘→5‘)-2‘-deoxyguanosine [d(GpG)-] in Aqueous Solution
Inorganic Chemistry, 2003, 42, 3475-3482
4.654Citations (PDF)
58Synthesis 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 group2.619Citations (PDF)
59Comparison 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
Perkin Transactions II RSC, 2002, , 1320-1327
1.079Citations (PDF)
60Stabilities of lead(II) complexes formed in aqueous solution with methyl thiophosphate (MeOPS2–), uridine 5'-O-thiomonophosphate (UMPS2–) or adenosine 5'-O-thiomonophosphate (AMPS2–)2.518Citations (PDF)
61Metal-ion binding properties of O-phosphonatomethylcholine (PMCh−).
Inorganica Chimica Acta, 2002, 331, 109-116
2.814Citations (PDF)
62Acid–base and metal ion binding properties of pyridine-type ligands in aqueous solution.
Inorganica Chimica Acta, 2002, 337, 131-142
2.884Citations (PDF)
63Metal 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
Inorganic Chemistry, 2001, 40, 2500-2508
4.646Citations (PDF)
64Title is missing!
Perkin Transactions II RSC, 2001, , 2005-2011
1.01Citations (PDF)
65Acid–base properties of the 5′-triphosphates of guanosine and inosine (GTP4− and ITP4−) and of several related nucleobase derivatives1.024Citations (PDF)
66Properties of the Magnesium(II) and Calcium(II) Complexes of 5- and 6-Uracilmethylphosphonate (5 Umpa2- and 6 Umpa2-) in Aqueous Solution0.912Citations (PDF)
67Formation 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)
Chemistry - A European Journal, 2001, 7, 1899-1908
3.419Citations (PDF)
68Stabilities 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−)
Chemistry - A European Journal, 2001, 7, 3729-3737
3.452Citations (PDF)
69Intramolecular 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)3.015Citations (PDF)
70Metal ion–carbonyl oxygen recognition in complexes of acetyl phosphate3.09Citations (PDF)
71Evaluation of intramolecular equilibria in complexes formed between substituted imidazole ligands and nickel(II), copper(II) or zinc(II)3.033Citations (PDF)
72Quantification of isomeric equilibria for metal ion complexes formed in solution by phosphate or phosphonate ligands with a weakly coordinating second site
Coordination Chemistry Reviews, 2000, 200-202, 563-594
23.161Citations (PDF)
73Intramolecular 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
Inorganica Chimica Acta, 2000, 300-302, 487-498
2.825Citations (PDF)
74Properties 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 Solution0.85Citations (PDF)
75Intramolecular 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 †
Dalton Transactions RSC, 2000, , 899-904
2.215Citations (PDF)
76Metal 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
Dalton Transactions RSC, 2000, , 2077-2084
2.230Citations (PDF)
77Isomeric 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)
Inorganic Chemistry, 2000, 39, 1305-1310
4.620Citations (PDF)
78Lead(II)-Binding Properties of the 5‘-Monophosphates of Adenosine (AMP2-), Inosine (IMP2-), and Guanosine (GMP2-) in Aqueous Solution. Evidence for Nucleobase−Lead(II) Interactions
Inorganic Chemistry, 2000, 39, 5985-5993
4.646Citations (PDF)
79Metal Ion-Binding Properties of the Nucleotide Analogue 1-[2-(Phosphonomethoxy)ethyl]cytosine (PMEC) in Aqueous Solution0.026Citations (PDF)
80Stabilities of complexes formed between lead(II) and simple phosphonate or phosphate monoester ligands including some pyrimidine-nucleoside 5′-monophosphates (CMP2–, UMP2–, dTMP2–)2.520Citations (PDF)
81On 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 Ions1.89Citations (PDF)
82Acid-Base and Metal-Ion-Coordinating Properties of Benzimidazole and Derivatives (= 1,3-Dideazapurines) in Aqueous Solution: Interrelation between Complex Stability and Ligand Basicity
Chemistry - A European Journal, 1999, 5, 1794-1802
3.467Citations (PDF)
83Effects of (N7)-Coordinated Nickel(II), Copper(II), or Platinum(II) on the Acid-Base Properties of Guanine Derivatives and Other Related Purines[≠]
Chemistry - A European Journal, 1999, 5, 2374-2387
3.4116Citations (PDF)
84Extent 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 †1.735Citations (PDF)
85Aspects of the co-ordination chemistry of the antiviral nucleotide analogue, 9-[2-(phosphonomethoxy)ethyl]-2,6-diaminopurine (PMEDAP)1.730Citations (PDF)
86Why 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
Chemical Communications, 1999, , 743-744
3.422Citations (PDF)
87Acid−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
Inorganic Chemistry, 1999, 38, 439-448
4.665Citations (PDF)
88Stability and Structure of Metal Ion Complexes Formed in Solution with Acetyl Phosphate and Acetonylphosphonate:  Quantification of Isomeric Equilibria15.060Citations (PDF)
89Metal 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-)?
Pure and Applied Chemistry, 1999, 71, 1727-1740
1.949Citations (PDF)
90Stability of binary and ternary copper(II) complexes of the diphosphate analogue, methylphosphonylphosphate, in aqueous solution
Inorganica Chimica Acta, 1998, 273, 101-105
2.816Citations (PDF)
91Metal ion-coordinating properties of imidazole and derivatives in aqueous solution: interrelation between complex stability and ligand basicity
Inorganica Chimica Acta, 1998, 280, 50-56
2.873Citations (PDF)
92Ternary 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−)
Inorganica Chimica Acta, 1998, 283, 193-201
2.820Citations (PDF)
93Acid-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
Chemistry - A European Journal, 1998, 4, 1053-1060
3.434Citations (PDF)
94Cis-diammineplatinum(II) forms a macrochelate with 2′-deoxycytidine 5′-monophosphate (dCMP2–)! Reactivity and acid-base properties of cis-Pt(NH3)2(dCMP)2.57Citations (PDF)
95Magnesium complexes of the antiviral 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA) and of its 1-, 3-, and 7-deaza analogues in aqueous solution2.519Citations (PDF)
96Facilitation of the copper(II)-promoted dephosphorylation of adenosine 5′-triphosphate (ATP4−) by the antiviral nucleotide analogue, 9-[2-(phosphonomethoxy)ethyl]adenine (PMEA)‡
Chemical Communications, 1998, , 1219-1220
3.46Citations (PDF)
97Quantification 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
Inorganic Chemistry, 1998, 37, 4857-4864
4.615Citations (PDF)
98Metal Ion-Binding Properties in Aqueous Solution of the Nucleoside Analogue, 5,6-Dichloro-1-(β-ᴅ-ribofuranosyl)benzimidazole (DRB)0.84Citations (PDF)
99The effects of N7-coordinated cis-diammine-platinum(ii) on the acid-base properties of guanine derivatives
Pure and Applied Chemistry, 1998, 70, 845-854
1.948Citations (PDF)
100Metal ion-assisted stacking interactions and the facilitated hydrolysis of nucleoside 5 ¢ -triphosphates
Pure and Applied Chemistry, 1998, 70, 969-976
1.942Citations (PDF)
101Solution 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 solution1.236Citations (PDF)
102Stabilities and Structures of Metal Ion Complexes of Adenosine 5‘-O-Thiomonophosphate (AMPS2-) in Comparison with Those of Its Parent Nucleotide (AMP2-) in Aqueous Solution15.0116Citations (PDF)
103Extent of Intramolecular Aromatic-Ring Stacking in Ternary Cu2+Complexes Formed by 2,2‘-Bipyridyl or 1,10-Phenanthroline and Flavin Mononucleotide (FMN2-)1,2
Inorganic Chemistry, 1997, 36, 1619-1624
4.624Citations (PDF)
104Metal ion-assisted stacking interactions and the facilitated hydrolysis of nucleoside Di- and triphosphates3.01Citations (PDF)
105The self-association of flavin mononucleotide (FMN2−) as determined by 1H NMR shift measurements
Biophysical Chemistry, 1997, 67, 27-34
2.127Citations (PDF)
106Acid‐Base Properties of Adenosine 5′‐O‐Thiomonophosphate in Aqueous Solution3.441Citations (PDF)
107Complex 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
Chemistry - A European Journal, 1997, 3, 1526-1536
3.454Citations (PDF)
108The 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‐Trimethyladenine3.475Citations (PDF)
109Stability of metal ion complexes formed with methyl phosphate and hydrogen phosphate2.583Citations (PDF)
110The Assisted Self-Association of ATP4- by a Poly(Amino Acid) [Poly(Lys)] and Its Significance for Cell Organelles That Contain High Concentrations of Nucleotides
FEBS Journal, 1996, 240, 508-517
0.221Citations (PDF)
111Ternary complexes in solution1 with hydrogen phosphate and methyl phosphate as ligands
Inorganica Chimica Acta, 1996, 250, 185-188
2.821Citations (PDF)
112Acid-base and metal ion-binding properties of flavin mononucleotide (FMN2−). Is a ‘dielectric’ effect responsible for the increased complex stability?
Inorganica Chimica Acta, 1995, 240, 313-322
2.821Citations (PDF)
113Acid-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
Inorganica Chimica Acta, 1995, 235, 99-109
2.831Citations (PDF)
114The self-association of nucleotides and the effects of metal ions, protons, and polyamino acids3.01Citations (PDF)
115Stabilities of metal ion complexes of adenosine 5′-diphosphate (ADP3−) and uridine 5′-diphosphate (UDP3−)3.04Citations (PDF)
116Metal ion complexes of the antiviral (S)-9-[3-hydroxy-2-(phosphonomethoxy)propyl]adenine (HPMPA) in solution3.00Citations (PDF)
117Effect of N-7 coordination of platinum(II) on the acid-base properties of guanine derivatives3.00Citations (PDF)
118Acid-base and metal ion-binding properties of adenosine 5′-[α-thio]-monophosphate (AMPS2−)3.03Citations (PDF)
119Intramolecular equilibria in metal ion complexes of artificial nucleotide analogues with antiviral properties. A case study
Coordination Chemistry Reviews, 1995, 144, 287-319
23.171Citations (PDF)
120Facilitated formation of high-molecular-weight associates of adenosine 5?-triphosphate (ATP)
Die Naturwissenschaften, 1995, 82, 237-238
1.69Citations (PDF)
121Unusual 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)1.753Citations (PDF)
122Metals in biological systems
Inorganica Chimica Acta, 1994, 218, 216-217
2.83Citations (PDF)
123Metal-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
Helvetica Chimica Acta, 1994, 77, 1738-1756
1.835Citations (PDF)
124Comparison 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 Recognition15.0298Citations (PDF)
125The 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
Chemical Society Reviews, 1994, 23, 83-91
37.7102Citations (PDF)
126Metal ion coordinating properties of an antiviral adenosine monophosphate (AMP2−) analogue3.00Citations (PDF)
127Stability 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
Inorganica Chimica Acta, 1993, 206, 215-220
2.819Citations (PDF)
128Quantification of successive intramolecular equilibria in binary metal ion complexes of N,N-bis(2-hydroxyethyl)glycinate (Bicinate). A case study
Coordination Chemistry Reviews, 1993, 122, 227-242
23.126Citations (PDF)
129Ternary 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 analogue1.729Citations (PDF)
130Interactions of metal ions with nucleotides and nucleic acids and their constituents37.7378Citations (PDF)
131Solvent-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
Inorganic Chemistry, 1993, 32, 5377-5384
4.617Citations (PDF)
132Ternary 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 Mixtures0.818Citations (PDF)
133On the Dichotomy of Metal Ion Binding in Adenosine Complexes2.154Citations (PDF)
134Metal ion binding properties of dihydroxyacetone phosphate and glycerol 1-phosphate15.030Citations (PDF)
135Have adenosine 5′-triphosphate ATP4− and related purine-nucleotides played a role in early evolution? ATP, its own ‘enzyme’ in metal ion facilitated hydrolysis!
Inorganica Chimica Acta, 1992, 198-200, 1-11
2.856Citations (PDF)
136Metal-ion-coordinating properties of various phosphonate derivatives, including 9−[2−(phosphonylmethoxy)ethyl]adenine (PMEA) - an adenosine monophosphate (AMP) analogue with antiviral properties
Helvetica Chimica Acta, 1992, 75, 2634-2656
1.890Citations (PDF)
137Stability of some metal-ion complexes of tubercidin (= 7-deazaadenosine) in aqueous solution. An o-amino group inhibits complexation at N1of purines!1.718Citations (PDF)
138Comparison of the extent of macrochelate formation in metal ion(M2+) complexes of inosine 5′-monophosphate(IMP2−) and inosine 5′-triphosphate (ITP4−)3.02Citations (PDF)
139Stability and structure of the Mg2+, Ca2+ and Cu2+ complexes of orotidinate 5′-monophosphate (OMP)3− in various aqueous 1,4-dioxane mixtures
Inorganica Chimica Acta, 1991, 187, 227-237
2.89Citations (PDF)
140Acid-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)
FEBS Journal, 1991, 199, 659-669
0.269Citations (PDF)
141Comments on potentiometric pH titrations and the relationship between pH-meter reading and hydrogen ion concentration
Analytica Chimica Acta, 1991, 255, 63-72
5.7175Citations (PDF)
142Stability and Structure of Binary and Ternary Metal Ion Complexes of Orotidinate 5′-Monophosphate (OMP3-) in Aqueous Solution2.564Citations (PDF)
143Metal-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
FEBS Journal, 1990, 187, 387-393
0.250Citations (PDF)
144Comparison 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
FEBS Journal, 1990, 191, 721-735
0.236Citations (PDF)
145Mechanistic aspects of the metal ion promoted hydrolysis of nucleoside 5'-triphosphates (NTPs)
Coordination Chemistry Reviews, 1990, 100, 453-539
23.1120Citations (PDF)
146On the metal ion binding properties of orotidine
Inorganica Chimica Acta, 1990, 178, 249-259
2.831Citations (PDF)
147Handbook on toxicity of inorganic compounds
Analytica Chimica Acta, 1990, 237, 511
5.7121Citations (PDF)
148Synergism 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+ ions3.022Citations (PDF)
149The Imidazole Group and Its Stacking Properties in Mixed Ligand Metal Ion Complexes2.147Citations (PDF)
150Solvent 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
Inorganic Chemistry, 1990, 29, 3631-3632
4.625Citations (PDF)
151Influence of Decreasing Solvent Polarity (Dioxane-Water Mixtures) on the Stability of Metal Ion Complexes Formed with Phosphate Monoesters0.816Citations (PDF)
152Self-association of nucleotides3.054Citations (PDF)
153Guanosine monophosphates (GMPs): Protonation and metal ion (M2+) coordination3.01Citations (PDF)
154Isomeric equilibria in metal ion (M2+) complexes of inosine 5′-triphosphate (ITP4−) and guanosine 5′-triphosphate (GTP4−)3.01Citations (PDF)
155Evaluation of the metal-ion-coordinating differences between the 2'-, 3'- and 5'-monophosphates of adenosine
FEBS Journal, 1989, 179, 451-458
0.252Citations (PDF)
156Ternary 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
Inorganica Chimica Acta, 1989, 159, 243-252
2.826Citations (PDF)
157Influence 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
Inorganica Chimica Acta, 1989, 155, 273-280
2.813Citations (PDF)
158Metal ion (M2+) promoted hydrolysis of nucleoside 5′-triphosphates (NTPs)3.00Citations (PDF)
159Influence 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 Complexes0.88Citations (PDF)
160Hydrophobic interactions in biological systems: some background information based on ligand-ligand interactions in metal ion complexes
Pure and Applied Chemistry, 1989, 61, 923-932
1.9111Citations (PDF)
161Influence of the protonation degree on the self-association properties of adenosine 5'-triphosphate (ATP)
FEBS Journal, 1988, 170, 617-626
0.254Citations (PDF)
162Ternary 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
Inorganic Chemistry, 1988, 27, 2877-2887
4.649Citations (PDF)
163Comparison 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)15.0142Citations (PDF)
164Metal 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
Inorganic Chemistry, 1988, 27, 1447-1453
4.6203Citations (PDF)
165Quantification of Intramolecular Ligand Equilibria in Metal-Ion Complexes2.1108Citations (PDF)
166Comparison 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
Inorganic Chemistry, 1987, 26, 2149-2157
4.6136Citations (PDF)
167Ternary 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
Inorganic Chemistry, 1987, 26, 638-643
4.636Citations (PDF)
168Self-association of adenosine 5′-monophosphate (5′-AMP) as a function of pH and in comparison with adenosine, 2′-AMP and 3′-AMP
Biophysical Chemistry, 1987, 27, 119-130
2.142Citations (PDF)
169Self-association and protonation of adenosine 5'-monophosphate in comparison with its 2'- and 3'-analogues and tubercidin 5'-monophosphate (7-deaza-AMP)
FEBS Journal, 1987, 163, 353-363
0.2158Citations (PDF)
170Isomeric equilibria in complexes of adenosine 5'-triphosphate with divalent metal ions. Solution structures of M(ATP)2- complexes
FEBS Journal, 1987, 165, 65-72
0.2147Citations (PDF)
171Hydrolysis 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
Inorganic Chemistry, 1986, 25, 2628-2634
4.624Citations (PDF)
172Comparison 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 formation15.020Citations (PDF)
173Complex formation between copper(2+) and 1,N6-ethenoadenosine 5'-triphosphate (.epsilon.-ATP)
Inorganic Chemistry, 1986, 25, 1313-1315
4.611Citations (PDF)
174Self-association of 1,N6-ethenoadenosine 5'-triphosphate (e-ATP) and promotion by metal ions
FEBS Journal, 1986, 157, 147-151
0.28Citations (PDF)
175Solvent effects on intramolecular hydrophobic ligandligand interactions in binary and ternary complexes
Inorganica Chimica Acta, 1985, 100, 151-164
2.837Citations (PDF)
176An 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
FEBS Journal, 1985, 152, 187-193
0.296Citations (PDF)
177Hydrolysis 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)15.063Citations (PDF)
178Ternary complexes of solution. 48. Influence of organic solvents on intramolecular aromatic-ring stacks in aqueous mixed-ligand metal ion complexes. Opposing solvent effects15.063Citations (PDF)
179Influence of decreasing solvent polarity (dioxane–water mixtures) on the stability and structure of binary and ternary complexes of adenosine 5′-triphosphate and uridine 5′-triphosphate1.748Citations (PDF)
180Ternary 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
Inorganic Chemistry, 1985, 24, 2067-2076
4.676Citations (PDF)
181On 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
FEBS Journal, 1984, 138, 291-299
0.221Citations (PDF)
182Stability 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
Inorganic Chemistry, 1984, 23, 1933-1938
4.646Citations (PDF)
183Hydrolysis 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'-monophosphate15.0101Citations (PDF)
184Ternary 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
Inorganic Chemistry, 1984, 23, 3785-3792
4.697Citations (PDF)
185Metal-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
FEBS Journal, 1983, 132, 569-577
0.224Citations (PDF)
1861H-NMR study on self-association and macrochelate formation in metal ion systems of nucleoside 5′-diphosphates
Inorganica Chimica Acta, 1983, 79, 242-243
2.83Citations (PDF)
187A 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 ions15.0100Citations (PDF)
188Molecular 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 titration15.040Citations (PDF)
189Ternary 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
Inorganic Chemistry, 1983, 22, 925-934
4.6113Citations (PDF)
190Comparison of the metal ion promoted dephosphorylation of adenosine 5'-triphosphate and uridine 5'-triphosphate
Pure and Applied Chemistry, 1983, 55, 137-144
1.913Citations (PDF)
191Coordinating properties of the amide bond. Stability and structure of metal ion complexes of peptides and related ligands
Chemical Reviews, 1982, 82, 385-426
52.51,615Citations (PDF)
192Transition 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
Inorganic Chemistry, 1982, 21, 1190-1195
4.668Citations (PDF)
193Ternary 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'-triphosphate15.055Citations (PDF)
194On the metal ion coordinating properties of the cocaine-model n-methylpiperidine and related ligands [1]
Inorganica Chimica Acta, 1982, 66, L29-L30
2.85Citations (PDF)
195Metal ion complexes of d-biotin in solution. Stability of the stereoselective thioether coordination3.09Citations (PDF)
196Metal 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
Inorganica Chimica Acta, 1982, 66, 147-155
2.855Citations (PDF)
197Macrochelate 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 resonance15.0217Citations (PDF)
198Enhanced 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
Inorganic Chemistry, 1981, 20, 2586-2590
4.699Citations (PDF)
199The coordinating properties ofd-biotin
Experientia, 1981, 37, 789-798
0.318Citations (PDF)
200Kinetics of formation of the mixed ligand complex between Ni(nitrilotriacetate)− and imidazole [1]
Inorganica Chimica Acta, 1981, 56, L53-L55
2.89Citations (PDF)
201Stability of binary and ternary β-alanine containing dipeptide copper(II) complexes [1]
Inorganica Chimica Acta, 1981, 56, 45-49
2.834Citations (PDF)
202Intramolecular hydrophobic and aromatic-ring stacking interactions in ternary complexes in solution
Inorganica Chimica Acta, 1980, 40, X6-X7
2.81Citations (PDF)
203Binary and ternary complexes of metal ions, nucleoside 5′-monophosphates, and amino acids0.832Citations (PDF)
204Comparison of the ligating properties of disulphides and thioethers: dimethyl disulphide, dimethyl sulphide, and related ligands1.742Citations (PDF)
205Ternary complexes in solution. 35. Intramolecular hydrophobic ligand-ligand interactions in mixed ligand complexes containing an aliphatic amino acid15.0196Citations (PDF)
206Ternary complexes in solution. 34. Discriminating and stability increasing properties of the imidazole moiety in mixed-ligand complexes
Inorganic Chemistry, 1980, 19, 1411-1413
4.688Citations (PDF)
207Metal Ion/Buffer Interactions
FEBS Journal, 1980, 107, 455-466
0.280Citations (PDF)
208Ternary 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 Derivatives0.811Citations (PDF)
209On 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
Helvetica Chimica Acta, 1979, 62, 1723-1735
1.863Citations (PDF)
210Metal Ion/Buffer Interactions. Stability of Binary and Ternary Complexes Containing 2-Amino-2(hydroxymethyl)-1,3-propanediol (Tris) and Adenosine 5'-Triphosphate (ATP)
FEBS Journal, 1979, 94, 523-530
0.2148Citations (PDF)
211Metal ions and hydrogen peroxide. Catalase-like activity of copper(2+) ion in aqueous solution and its promotion by the coordination of 2,2'-bipyridyl
Inorganic Chemistry, 1979, 18, 1354-1358
4.644Citations (PDF)
212Stability of metal ion/alkyl thioether complexes in solution. Ligating properties of "isolated" sulfur atoms
Inorganic Chemistry, 1979, 18, 3334-3339
4.633Citations (PDF)
213Ternary 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)
Inorganic Chemistry, 1979, 18, 425-428
4.652Citations (PDF)
214A Proton Nuclear-Magnetic-Resonance Study of Self-Stacking in Purine and Pyrimidine Nucleosides and Nucleotides
FEBS Journal, 1978, 88, 149-154
0.287Citations (PDF)
215Intramolecular Stacking in Ternary Complexes Containing Uridine 5?-Triphosphate, 2,2?-Bipyridyl, and a Divalent Metal Ion
Helvetica Chimica Acta, 1978, 61, 638-647
1.830Citations (PDF)
216Ternary 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 ions15.0100Citations (PDF)
217Stability and structure of Cd2+ and Pb2+ complexes with biotin, lipoic acid and some of their derivatives in solution0.89Citations (PDF)
218Stability and structure of binary and ternary complexes of α-lipoate and lipoate derivatives with Mn2+, Cu2+, and Zn2+ in solution2.872Citations (PDF)
219Ternary 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 complexes15.069Citations (PDF)
220Ternary 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
Inorganic Chemistry, 1977, 16, 790-796
4.635Citations (PDF)
221Ternary complexes in solution. 27. Biological implications from the stability of ternary complexes in solution. Mixed-ligand complexes with manganese(II) and other 3d ions15.0136Citations (PDF)
222Comparison of the stabilities of binary and ternary complexes of divalent metal ions with the 5′-triphosphates of adenosine, inosine, guanosine, cytidine, uridine and thymidine0.853Citations (PDF)
223On the kinetics and mechanism of the catalase-like activity of diaquocobinamide0.810Citations (PDF)
224Hydrolysis of nucleoside phosphates. 6. The mechanism of the metal ion promoted dephosphorylation of purine nucleoside 5'-triphosphates15.071Citations (PDF)
225Ternary 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)15.0101Citations (PDF)
226Comparison 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
FEBS Journal, 1976, 63, 569-581
0.243Citations (PDF)
227Hydrophobic Interactions between Metal Complexes of Aromatic Ligands and 3-(Trimethylsilyl)-1-propanesulfonate and Their1H-NMR Spectroscopic Detection4.720Citations (PDF)
228Hydrophobe Wechselwirkungen zwischen Metall-Komplexen mit aromatischen Liganden und 3-(Trimethylsilyl)-1-propansulfonat und ihr1H-NMR-spektroskopischer Nachweis
Angewandte Chemie, 1976, 88, 585-586
1.47Citations (PDF)
229Stabilität, Struktur und Reaktivität von ternären Cu2+‐Komplexen
Angewandte Chemie, 1975, 87, 391-400
1.473Citations (PDF)
230Ternary Cu2+ Complexes: Stability, Structure, and Reactivity4.7326Citations (PDF)
231Hydrolysis 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+
Bioinorganic Chemistry, 1975, 5, 1-20
1.017Citations (PDF)
232Nucleic 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 thymidine15.077Citations (PDF)
233Ternary complexes in solution. XXIII. Influence of alkyl side chains on the stability of binary and ternary copper(II)-dipeptide complexes
Inorganic Chemistry, 1975, 14, 1535-1540
4.662Citations (PDF)
234Ternary complexes in solution—XIX Relation between ligand basicity and complex stability. A method for the estimation of stability constants0.826Citations (PDF)
235On the mechanism of the catalase-like activity of cobalt(III)-hematoporphyrin0.88Citations (PDF)
236Hydration, protonation and metal ion-coordination of di-2-pyridyl ketone0.827Citations (PDF)
237The Dephosphorylation of Adenosine 5′ -Triphosphate in a Binary and Ternary Zn 2+ Complex1.66Citations (PDF)
238Adenosine and Inosine 5'-triphosphates. Protonation, Metal-Ion Coordination, and Charge-Tranfer Interaction between Two Ligands within Ternary Complexes
FEBS Journal, 1974, 41, 209-216
0.260Citations (PDF)
239A Comparison on the Coordination Tendency towards Cu2+ of the Base Moieties in Guanosine, Inosine and Adenosine 5'-Triphosphates
FEBS Journal, 1974, 46, 589-593
0.215Citations (PDF)
240Ternary complexes in solution. XVIII. Stability enhancement of nucleotide-containing charge-transfer adducts through the formation of a metal ion bridge15.092Citations (PDF)
241Ternary complexes in solution. XVI. Influence of the size of the chelate rings on the stability of mixed-ligand copper(II) complexes containing aliphatic ligands
Inorganic Chemistry, 1974, 13, 462-465
4.637Citations (PDF)
242Ternary complexes in solution. Bridging of the stacked adduct between tryptophan and adenosine 5′-triphosphate by zinc(II)
FEBS Letters, 1974, 47, 122-124
2.724Citations (PDF)
243METAL IONS AND HYDROGEN PEROXIDE XXIX. On the Kinetics and Mechanism of the Catalase-like Activity of Nickel(II) and Nickel(II)-Amine Complexes2.514Citations (PDF)
244Significance of binary and ternary copper(II) complexes for the promotion and protection of adenosine 5′-di- and triphosphate toward hydrolysis2.047Citations (PDF)
245Ternary Complexes in Solution, XX0.83Citations (PDF)
246Inhibition of the catalase-like activity of cobalt(III)-hematoporphyrin by amino acids, adenine and related ligands Stability of the inhibitor adducts0.810Citations (PDF)
247Additions and Corrections - Thermodynamics and Kinetics of Complex Formation between Cobalt(II), Nickel(II), and Copper(II) with Glycyl-L-leusince and L-Leucylglycine15.05Citations (PDF)
248Ternary complexes in solution. XV. Mixed-ligand copper(II) complexes with 2,2'-bipyridyl or 1,10-phenanthroline and pyrocatecholate or derivatives thereof
Inorganic Chemistry, 1973, 12, 1198-1200
4.673Citations (PDF)
249Interactions of metal ions with biotin and biotin derivatives. Complexing and hydrogen-bond formation of the ureido group
Biochemistry, 1973, 12, 1917-1922
2.421Citations (PDF)
250Metal Ions and Hydrogen Peroxide. XXV0.88Citations (PDF)
251Ternary 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
Inorganica Chimica Acta, 1972, 6, 559-563
2.813Citations (PDF)
252Spectral properties of mixed-ligand copper(II) complexes and their corresponding binary parent complexes
Inorganic Chemistry, 1972, 11, 2756-2763
4.6106Citations (PDF)
253Kinetics of formation of mixed ligand complexes. III. Cobalt(II)-2,2'-bipyridyl-glycine system
Inorganic Chemistry, 1972, 11, 420-422
4.68Citations (PDF)
254Thermodynamics and kinetics of complex formation between cobalt(II), nickel(II), and copper(II) with glycyl-L-leucine and L-leucylglycine15.022Citations (PDF)
255Observation of cis- and trans-bis(2,2'-bipyridyl)copper(II) by electron spin resonance
Inorganic Chemistry, 1972, 11, 1162-1164
4.623Citations (PDF)
256Kinetics of formation of mixed-ligand complexes. II. 2,2'-Bipyridylcopper(II) reactions with ethylenediamine, .alpha.-alanine, and .beta.-alanine
Inorganic Chemistry, 1972, 11, 276-280
4.617Citations (PDF)
257Metal ions and hydrogen peroxide. XXVI. Kinetics and mechanism of the catalase-like activity of cobalt(III) hematoporphyrin
Inorganic Chemistry, 1972, 11, 2174-2180
4.627Citations (PDF)
258Ternary Complexes in Solution, XII. Models for Biological Mixed-Ligand Complexes: 2,2′-Bipyridyl-Cu2+-Oligoglycine Systems0.853Citations (PDF)
259The Stability Increasing Effect of the Pyridyl and Imidazole Groups on the Formation of Mixed Amine-Copper( II)-Adenosine 5′-monophosphate Complexes 1, 20.811Citations (PDF)
260Protection of Adenosine 5?-Triphosphate toward Hydrolysis by the Formation of a Mixed-Ligand Metal Ion Complex4.75Citations (PDF)
261Strukturelle Aspekte der Metallion‐Ligand‐Wechselwirkung
Angewandte Chemie, 1972, 84, 833-834
1.40Citations (PDF)
262Unterdrückung der Hydrolyse von Adenosin‐5′‐triphosphat durch Bildung eines ternären Metallion‐Komplexes
Angewandte Chemie, 1972, 84, 1103-1104
1.49Citations (PDF)
263Acidity Constants of the Thienyl- and Phenyl-Pyridines and Stability Constants of the Corresponding Copper (II) 1:1 Complexes
Helvetica Chimica Acta, 1972, 55, 610-613
1.818Citations (PDF)
264Ternary 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
Inorganic Chemistry, 1971, 10, 2229-2232
4.694Citations (PDF)
265Ternary complexes in solution. X. Influence of the size of the chelate rings on the stability of mixed-ligand copper(II) complexes
Inorganic Chemistry, 1971, 10, 2226-2228
4.651Citations (PDF)
266Ternary complexes in solution. IX. Stability-increasing effect of the pyridyl and imidazole groups on the formation of mixed-ligand-copper(II)-pyrocatecholate complexes
Inorganic Chemistry, 1971, 10, 945-947
4.671Citations (PDF)
267Structure of the copper(II)-L-histidine 1:2 complex in solution15.082Citations (PDF)
268Mn2+, Cu2+, and Zn2+ 1:1 Complexes with biochemically significant thioether carboxylic acids and some of the sulfoxide and sulfone derivatives2.810Citations (PDF)
269The dimerization, polymerization, and hydrolysis of FeIII-4,4′,4″,4″′-tetrasulfophthalocyanine0.946Citations (PDF)
270Discriminating behavior of metal ions and ligands with regard to their biological significance17.0295Citations (PDF)
271Stability and structure of binary and ternary metal ion complexes with biocytin, the sulfoxide and sulfone, N-acetyl-L-lysine, and L-alanine
Biochemistry, 1970, 9, 3285-3293
2.427Citations (PDF)
272Kinetics of formation of mixed ligand complexes. I. Copper(II)-2,2'-bipyridyl-glycine system in aqueous solution15.025Citations (PDF)
273On the structure of copper(II)-histidine complexes1.54Citations (PDF)
274Ternary 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
Inorganic Chemistry, 1970, 9, 1238-1243
4.6205Citations (PDF)
275Binary and ternary Me2+ complexes with α- or β-substituted halogeno carboxylic acids0.910Citations (PDF)
276Catalase and Peroxidase Activity of Cu2+ Complexes4.789Citations (PDF)
277Zur katalatischen und peroxidatischen Aktivität von Cu2+-Komplexen
Angewandte Chemie, 1969, 81, 161-171
1.457Citations (PDF)
278Metal 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 complex15.044Citations (PDF)
279Metal ions and hydrogen peroxide. XX. On the kinetics and mechanism of the decomposition of hydrogen peroxide, catalyzed by the Cu2+-2,2'-bipyridyl complex15.081Citations (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 significance2.824Citations (PDF)
281On the structure of manganese (II)- and copper (II)-histidine complexes2.822Citations (PDF)
282Metal ion complexes with biotin and biotin derivatives. Participation of sulfur in the orientation of divalent cations
Biochemistry, 1969, 8, 2687-2695
2.459Citations (PDF)
283Structure of Mn2+ and Cu2+ complexes with l-methionine, S-methyl-l-cysteine, l-threonine and l-serine2.025Citations (PDF)
284Metal Ions and Hydrogen Peroxide. Evidence for a Catalase-Like Activity of the cis-Diaquo Isomer of the Cu2+-2,2'-Bipyridyl 1:2 Complex15.014Citations (PDF)
285Deprotonierung von Glycinamid in einem ternären Kupfer(II)‐Komplex
Angewandte Chemie, 1968, 80, 124-124
1.426Citations (PDF)
286Ternäre komplexe in Lösung. VI. Einfluss von 2,2,′-bipyridyl auf die stabilität von Cu2+— und Zn2+-carbonsäure-1:1-komplexen0.929Citations (PDF)
287Deprotonation of Glycine Amide in a Ternary Copper(II)-Complex4.725Citations (PDF)
288Metallionen und H2O2. Die denaturierung von DNA in Abhängigkeit vom pH—Einfluss von Metallionen1.29Citations (PDF)
289Ternary 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☆2.0108Citations (PDF)
290Tern�re Komplexe in L�sung II. Einfluss von 2,2?-Bipyridyl auf die Stabilit�t des Cu2+-Glycin-1:1-Komplexes
Helvetica Chimica Acta, 1967, 50, 1842-1845
1.830Citations (PDF)
291Tern�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
Helvetica Chimica Acta, 1967, 50, 2357-2362
1.822Citations (PDF)
292Über 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
Experientia, 1967, 23, 170-172
0.318Citations (PDF)
293Strukturspezifischer Abbau von Polypeptid-Metall-Komplexen. V. Abbau des Cu2+-Polymyxin-B-Komplexes durch NH2OH
Experientia, 1966, 22, 784-785
0.31Citations (PDF)
294Cu2+-Adeninring-Wechselwirkung in den Cu2+-Komplexen von Adenosin-5′- und Adenosin-3′-monophosphat
Experientia, 1966, 22, 497-499
0.320Citations (PDF)
295Strukturspezifischer Abbau von Polypeptid-Metall-Komplexen III 1. Abbau des Ni2+-Angiotensin II-Komplexes durch H2O2 2
Experientia, 1966, 22, 649-650
0.34Citations (PDF)
296Inosin-N(1)-oxid-Nucleotide als Komplexbildner II. Acidit�tskonstanten von Inosin-N(1)-oxid und von dessen 5?-Monophosphat
Helvetica Chimica Acta, 1965, 48, 1513-1518
1.86Citations (PDF)
297Inosin-N(1)-oxid-Nucleotide als Komplexbildner III. Komplexchemische Untersuchungen von Inosin-N(1)-oxid und von dessen 5?-Monophosphat
Helvetica Chimica Acta, 1965, 48, 1519-1524
1.814Citations (PDF)
298Die hydrophoben und Metallionen-koordinierenden Eigenschaften von α-Liponsäure - ein Beispiel für intramolekulare Gleichgewichte in Metallionen-Komplexen
Angewandte Chemie, 0, 94, 421-432
1.423Citations (PDF)