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Biomedical subjects

B Pullman

Publications and source records attributed to B Pullman.

At least 19 recordsLinked to original sources

Sequence specificity in the binding of anti-tumour anthracyclines to DNA: a success of theory.

Up to 1985 apparent contradictions in the results of experimental investigations on the possible sequence specificity in the interaction of the two fundamental antitumour anthracyclines, daunomycin and Adriamycin, with DNA have led to an intellectually confused situation and serious doubts about the existence of any such specificity. Theoretical studies carried out in our laboratory in 1985 demonstrated that these failures were due to the attempt to relate the specificity exclusively to the nature of the two base pairs of the intercalation site. We have shown that a definite specificity can in fact be established but only at the level of triplets of base pairs, comprising in addition to the base pairs of the intercalation site, the neighbouring base pair at the 5' side. Our explicit predictions indicate the preferred triplets G-C, C-G, T-A or G-C, C-G, A-T with the intercalation site between the two GC base pairs, followed relatively closely by the A-T, C-G, T-A triplet with the intercalation site between the AT and CG base pairs. Subsequent extensive experimentation carried out in a number of laboratories confirmed the validity of our concept and the exactitude of our predictions, although some controversy persists among experimentalists as to the nature of the most preferred triplet.

Antibiotics, Antineoplastic

Modelling of the binding specificity in the interactions of cationic porphyrins with DNA.

A theoretical investigation is performed of the complexes of a tetracationic porphyrin, tetra-(4-N-methylpyridyl)-porphyrin, (T4MPyP), with the hexanucleotides d(CGCGCG)2 and d(TATATA)2, considering the possibility of both the intercalative and the groove binding interactions. These computations demonstrate that T4MPyP manifests a significant preference for intercalation in its complex with d(CGCGCG)2 but for non intercalative binding in the minor groove in its complex with d(TATATA)2. Such a dual binding behaviour of T4MPyP as a function of the sequence to which it is attached is fully consistent with available experimental data. It demonstrates that intercalation and groove binding may be viewed as two potential wells on a continuous energy surface. In agreement with experiment, the computations indicate that in the here considered case the deepest well is associated with intercalation.

Base Sequence

Modelling basic features of specificity in the binding of a dicationic steroid diamine to double-stranded oligonucleotides.

An investigation of the intrinsically preferred binding modes of a steroid diamine, dipyrandium, to the double-stranded hexanucleotides d(TATATA)2, d(ATATAT)2, and d(CGCGCG)2 is carried out by the energy minimization procedure JUMNA. Several alternative binding modes are compared: groove binding in which the conformation of the oligonucleotide remains close to that of B-DNA, intercalation between base-pairs and interaction with variously kinked structures in which base pairs of dinucleoside steps open towards the groove in which the binding occurs. The favored binding configuration occurs at the d(TpA) step of the AT kinked nucleotides in which the kink opens the base pairs towards the minor groove. Thus, for the d(T1A2T3A4T5A6)2 sequences the preferred complexation involves the kink at the T3A4 step facing the cyclohexane rings A, B, and C of the ligand. For the d(A1T2A3T4A5T6)2 sequence, the kink occurs at the T2A3 step facing the cationic pyrrolidine ring linked to ring A. The binding of dipyrandium to d(CGCGCG)2 is found to be considerably less favourable than for either of the two (AT) sequences.

Algorithms

Modelling basic features of specificity in DNA-aureolic acid-derived antibiotic interactions.

The nonintercalative groove binding of a simplified model of olivomycin, to sequences d(CGCGCGC)2, d(TATATAT)2, and d(CICICIC)2 is investigated. A significant preference is displayed for the minor groove of the d(CG) sequence. This is due predominantly to the formation of H-bonds between the hydroxyl groups on the aglycone of the drug and the 2-amino group of the central guanine of the oligonucleotide.

Base Sequence

Theoretical modeling of DNA-monocationic lexitropsin complexation: influence of ligand binding on DNA curvature.

A theoretical study is presented on the complexation to DNA of a monocationic lexitropsin. Energetics and the structures of the complexes formed are analyzed for three base pair sequences of a nucleic acid octamer. The influence of the ligand binding on the nucleic acid conformation is analysed in detail. It is found that whereas the uncomplexed nucleic acid segments have very irregular structures with an overall curvature varying between 15 degrees and 20 degrees, the DNA structure becomes more regular and the curvature is strongly reduced upon the binding of a monocationic lexitropsin.

Computer Simulation

Joint experimental and theoretical investigation of the comparative DNA binding affinities of intercalating anthracycline derivatives.

The comparative binding affinities for poly(dA-dT) and poly(dG-dC) of novel antitumor anthracyclines are reported. The data concern, besides the parent compound adriamycin (ADM), 4-demethoxy 6-deoxy 6-aminodaunomycin (II), 9-deoxy-ADM (III), 4-demethyl-6-O-methyl-ADM (IV), and 3'-deamino-3'-hydroxy-4'-epi-ADM (IV). Theoretical computations are performed in parallel for their comparative binding affinities to model double-stranded hexanucleotides, d(GCGCGC)2, d(TATATA)2, and d(CGTACG)2, using the SIBFA (sum of interactions between fragments computed ab inito) procedure. The computations reproduce in a very satisfactory manner the most salient features of the experimental comparative binding affinities. These encompass, in particular, a higher affinity for the d(TATATA)2 oligomer of II than that of ADM, despite the absence of the 14-OH substituent in II, a marked reversal of the CG versus TA sequence selectivity of the neutral compound V, favoring the d(CGCGCG)2 oligomer over the d(TATATA)2 one; and the deleterious effect incurred on the binding affinities by the presence of an O-methyl substituent at position 6 of the chromophore.

Antibiotics, Antineoplastic

Drug recognition of DNA. Proposal for GC minor groove specific ligands: vinylexins.

In a previous publication in this journal we have proposed an isolexin-like prototype of a GC minor groove specific ligand. The present paper is devoted to refinements of this prototype (increase in specificity and in DNA binding energy). It is shown that only a very limited improvement can be obtained by increasing the proton accepting capabilities of the heteroaromatic ring systems of the prototype, although these rings interact directly with the proton donating NH2 group of guanine. On the other hand a significant increase both in GC specificity and in DNA binding energy is obtained by replacing the NH linkers of the isolexin by C = C double bonds (yielding what we term "vinylexins"). Specificity is still largely conserved and the DNA binding energy is significantly increased in monocationic vinylexins, which should thus be efficient GC minor groove specific ligands. The outstanding importance for the GC specificity of the C = C linkers is evidenced by the disappearance of this specificity when these linkers are replaced by peptide bonds (peptilexins). On the other hand vinylexins with proton donating heteroaromatic rings are, as expected, AT specific. The vinylexin family may thus represent universal minor groove binding agents susceptible to bind to any given base pair sequence of DNA, following the positioning of their proton donor and proton acceptor rings. This study confirms the insufficiency of purely geometrical and/or hydrogen bonding considerations for the correct estimation of GC versus AT specificity of groove binding ligands. These can only be accounted for by taking into consideration the overall electronic properties of the interacting species and explicitly calculating the energies of complex formation including all the relevant contributions.

Base Sequence

A theoretical study of the sequence specificity in binding of lexitropsins to B-DNA.

A theoretical study is presented on the binding to B-DNA of a series of lexitropsins, these ligands being netropsin derivatives in which one or both of the pyrrole rings have been replaced by imidazoles. The best complexes have been located by energy minimisation taking into account nucleic acid flexibility, ligand flexibility, explicit, mobile counterions and solvent dielectric effects. Calculations have been performed for two homopolymeric DNA receptor sequences, AT base sequence, which only decreases in the imidazole derivatives. These results emphasize the decisive role of the molecular electrostatic potential of the nucleic acid in determining the sequence selectivity of these ligands, as opposed to the postulated role of adenine C2 - pyrrole beta hydrogen contacts.

Base Sequence

Theoretical exploration of netropsin binding to tRNA(Phe).

Theoretical exploration of the possible interaction of netropsin with tRNAPhe indicates that binding should occur preferentially with the major groove of the T psi C stem of the macromolecule, specifically with the bases G51, U52, G53 and phosphates 52, 53, 61 and 62. This agrees with the recent crystallographic result of Rubin and Sundaralingam. It is demonstrated that the difference with respect to netropsin binding with B-DNA, where it occurs specifically in the minor groove of AT sequences, is due to the differences in the distribution of the electrostatic molecular potential generated by these different types of DNA: this potential is sequence dependent in B-DNA (located in the minor groove of AT sequences and the major groove of GC sequences), while it is sequence independent and always located in the major groove in A-RNA. The result demonstrates the major role of electrostatics in determining the location of the binding site.

Binding Sites

The molecular electrostatic potential of the B-DNA helix. VI. The regions of the base pairs in poly (dG.dC) and poly (dA.dT).

The evaluation of the electrostatic molecular potential at important nucleophilic sites of the purine and pyrimidine bases in poly (dG.dC) and poly (dA.dT) and of the evolution of the potential through the series free bases-nucleosides-nucleotides-single polynucleotide helices-double helices enables the interpretation of the evolution of the corresponding reactivity of the bases towards a series of electrophilic carcinogenic and mutagenic reactants.

Base Composition

Stereodynamics of dimer segments of RNA in aqueous solution.

Arguments are presented which show that conformations II and III proposed by Lee and Tinoco [Lee, C.H., and Tinoco, I., Jr. (1977), Biochemistry 16, 5403] for ribodinucleoside monophosphates in aqueous solution are untenable. It has been shown that ribodinucleoside monophosphates exist in aqueous solution as an equilibrium blend of the classically recognized right-handed stack (g-g-), loop stack (g+g+), skewed (g+t), and extended arrays. In order to determine the effect of epsilonA base on the conformer distribution in the equilibrium blend, detailed ring-current calculations were performed and the isoshielding curves for epsilonA were derived. Use of these curves vis-a-vis dimerization shift data indicates that introduction of epsilonA perturbs the equilibrium blend which causes an increase in the population of skewed (g+t) arrays.

Magnetic Resonance Spectroscopy

Molecular orbital studies on the conformations of 8-amino- and 8-dimethylaminoadenosine 5'-monophosphate.

The quantum mechanical PCILO method has been applied for the determination of conformational properties of 8-amino- and 8-dimethylaminoadenosine 5'-monophosphate. Contrary to other 8-substituted nucleotides the amino derivative shows a preference for an anti arrangement about the glycosidic bond. This conformation is stabilized by an intramolecular hydrogen bond between the purine and the exocyclic group. 8-dimethylamino-adenosine-5'-monophosphate adopts the syn conformation with slightly rotated dimethylamino group. There is, however, a local minimum for the anti form associated with the unusual value of chiCN = 300 degrees. This minimum is probably populated when the nucleotide is bound to lactate dehydrogenase apoenzyme. No particularly strong interactions are necessary for the stabilization of the anti form. The computations account satisfactorily for the available experimental data.

Adenosine

Molecular orbital studies on the structure of nucleoside analogs. I. Conformation of 8-azapurine nucleosides.

PCILO (perturbative configuration interaction using localized orbitals) computations have been carried out for the conformational properties of 8-azapurine nucleosides. The results indicate an anti conformation for Xcn and a gg conformation for phiC(4')-C(5') for C(2')-endo 8-aza analogs compared to the syn and gg conformation for the corresponding purine nucleosides. For C(3')-endo sugar puckering, both molecules prefer the syn conformation due to intramolecular hydrogen bonding between O(5')-H of the sugar and N(3) of the base, the preference being more profound in 8-aza analogs. The crystallographic conformation 8-azaadenosine has been attributed to crystal forces. The available NMR data on 8-azapurine nucleosides are in agreement with the PCILO predictions.

Adenosine

A molecular orbital investigation of the conformation of transfer RNA.

The PCILO method has been used for a theoretical exploration of the conformational properties of tRNAPhe with respect to the phosphodiester torsion angles. The computations were based on the utilisation of the dinucleoside triphosphate model and took into account the different combinations of sugar puckers and different conformations about the C4'-C5' bond. The dependence of the (omega'-omega) conformational energy maps upon these factors was specified. A detailed comparison is carried out between the theoretical results and experimental data on the crystal structure of tRNAPhe produced by four different groups of investigators.

Computers