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An unexpected major groove binding of netropsin and distamycin A to tRNA(phe).

Crystalline complexes of yeast tRNA(phe) and the oligopeptide antibiotics netropsin and distamycin A were prepared by diffusing drugs into crystals of tRNA. X-ray structure analyses of these complexes reveal a single common binding site for both drugs which is located in the major or deep groove of the tRNA T-stem. The netropsin-tRNA complex is stabilized by specific hydrogen bonds between the amide groups of the drug and the tRNA bases G51 O(6), U52 O(4) and G53 N(7) on one strand, and is further stabilized by electrostatic interactions between the positively charges guanidino side chain of the drug and the tRNA phosphate P53 on the same strand and the positively charged amidino propyl side chain and the phosphates P61, P62 and P63 on the opposite strand of the double helix. These results are in contrast to the implicated minor groove binding of these drugs to non-guanine sequences in DNA. The binding to the GUG sequence in tRNA implies that major groove binding to certain DNA sequences is possible.

Binding Sites↗

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↗

FTIR study of netropsin binding to poly d(A-T) and poly dA.poly dT.

Complexes between netropsin and two polynucleotides containing only AT base pairs (poly d(A-T) and poly dA.poly dT) have been prepared at various drug/base pair ratios and studied in solution by Fourier Transform Infrared Spectroscopy. The drug is shown to interact in the narrow groove of poly d(A-T) with the C2O2 carbonyl of thymines and the N3 groups of adenines. Moreover the spectral modifications allow us to propose the existence of interactions at the level of the deoxyribose. No effect is detected on the phosphate groups when netropsin is progressively added. In the case of poly dA.poly dT the interaction seems much weaker as if the high propeller twist of the homopolymer would make the accessibility of the drug to the minor groove more difficult.

Base Composition↗

Structure and energetics in the complexes of a double-stranded B-DNA dodecamer with netropsin derivatives of a tricationic water-soluble porphyrin: a theoretical investigation.

The structural and energetical characteristics of the complexes formed between two auto-complementary DNA dodecamers, d(CGCGAATTCGCG)2, and d(GCGCAATTGCGC)2, and two novel netropsin (I) and glycine-netropsin (II) conjugates of a tricationic water-soluble porphyrin are investigated in detail by means of theoretical computations. This study was prompted by the successful chemical synthesis of II, which was recently reported (Anneheim-Herbelin, G., Perrée-Fauvet, M., Gaudemer, A., Hélissey, P., Giorgi-Renault, S. and Gresh, N., Tetrahedron Lett. 34, 7263 (1993)). The results indicate that: a) Intercalative binding of II does not entail significant distortions of the DNA backbone, and the Net moiety can bind tightly to the core of the minor groove. b) Intercalative binding of I is computed to energetically weaker than that of II. This is a consequence of the reduced length of the oligopeptide arm, such that the terminal propionamidinium group interacts less favorably with the fourth A-T base-pair than is the case with II. c) Nonintercalative binding of II produces considerable conformational distortions of the DNA. These results in a break of the DNA axis in between the fourth and the fifth base-pairs, namely, at the level where the long axis of the chromophore and of the oligopeptide intersect.

Base Sequence↗

Spectroscopic investigation of an intramolecular DNA triplex containing both G.G:C and T.A:T triads and its complex with netropsin.

The triple helix formation by the oligonucleotide 5'd(G4T4G4-[T4]-G4A4G4-[T4]-C4T4C4) ([T4] represents a stretch of 4 thymine residues) has been investigated by UV absorption spectroscopy and circular dichroism. In a 10 mM sodium cacodylate, 0.2 mM disodium EDTA (pH 7) buffer, we show the following significant results: i) In the absence of MgCl2, the oligonucleotide adopts a hairpin duplex structure with the dangling tail 5'd(G4T4G4-[T4]). This 5' extremity, which contains separated runs of four guanine residues, does not assume the expected tetraplex conformation observed when this sequence is free. ii) In the presence of MgCl2, the oligonucleotide folds back on itself twice to give a triple helix via a double hairpin formation, with [T4] single-strand loops. iii) The addition of high concentration of KCl to the preformed triplex does not disrupt the structure. Nevertheless, if the oligonucleotide is allowed to fold back in the presence of K+, triplex formation is inhibited. Circular dichroism studies demonstrate that the oligonucleotide adopts a dimeric conformation, resulting from the association of two hairpin duplexes, via the formation of an antiparallel G-quadruplex by the telomeric 5'd(G4T4G4-[T4]) extremities. iv) Under the experimental conditions used in this report, the triplex melts in a monophasic manner. v) Netropsin, a DNA minor groove ligand, binds to the central site A4/T4 of the duplex and to that of the triplex in an equimolar stoichiometry. In contrast with previous studies concerning pyr.pur:pyr triplexes, thermal denaturation experiments demonstrate that the netropsin binding stabilizes the intramolecular triplex.

Base Composition↗

Interaction of distamycin A and netropsin with quadruplex and duplex structures: a comparative 1H-NMR study.

Homonuclear NMR techniques have been used to investigate the interactions of the minor groove binding agents distamycin A (Dist-A) and the related drug netropsin (Net) with three quadruplexes characterized by different groove widths: [d(TGGGGT)]4 (Q1), [d(GGGGTTTTGGGG)]2 (Q2), and d(GGGGTTGGGGTGTGGGGTTGGGG) (Q3). Netropsin has been found to be in a fast chemical exchange with all three kinds of quadruplexes, whereas Dist-A interacts tightly with Q1 and, at a less extent, with Q2. In order to determine the degree of selectivity of Dist-A for two- rather than four-stranded DNA, we titrated with Dist-A an equimolar solution of Ql and the duplex d(CGCAAATTTGCG)2 (D). This comparative 1H-NMR study allowed us to conclude that Dist-A and, consequently, Net possess higher affinity for duplex DNA.

Base Composition↗

A theoretical evaluation of the effect of netropsin binding on the reactivity of DNA towards alkylating agents.

The effect of netropsin binding on the electrostatic potential of DNA reactive sites is presented. Calculations are performed for atoms N7 and O6 of guanine, N3 and N7 of adenine of model, 25 base pair long, DNA-netropsin complexes. An important weakening of the potential is found spreading along all the oligonucleotide chain studied. The results are discussed in connection with the inhibitory effect of a related ligand, distamycin A, on DNA methylation.

Alkylating Agents↗

DNA-sequence specific recognition by a thiazole analogue of netropsin: a comparative footprinting study.

Four different footprinting techniques have been used to probe the DNA sequence selectivity of Thia-Net, a bis-cationic analogue of the minor groove binder netropsin in which the N-methylpyrrole moieties are replaced by thiazole groups. In Thia-Net the ring nitrogen atoms are directed into the minor groove where they could accept hydrogen bonds from the exocyclic 2-amino group of guanine. Three nucleases (DNAase I, DNAase II, and micrococcal nuclease) were employed to detect binding sites on the 160bp tyr T fragment obtained from plasmid pKM delta-98, and further experiments were performed with 117mer and 253mer fragments cut out of the plasmid pBS. MPE.Fe(II) was used to footprint binding sites on an EcoRI/HindIII fragment from pBR322. Thia-Net binds to sites in the minor groove containing 4 or 5 base pairs which are predominantly composed of alternating A and T residues, but with significant acceptance of intrusive GC base pairs. Unlike the parent antibiotic netropsin, Thia-Net discriminates against homooligomeric runs of A and T. The evident preference of Thia-Net for AT-rich sites, despite its containing thiazole nitrogens capable of accepting GC sites by hydrogen bonding, supports the view that the biscationic nature of the ligand imposes a bias due to the electrostatic potential differences in the receptor which favour the ligand reading alternating AT sequences.

Base Sequence↗

Circular dichroism and UV melting studies on formation of an intramolecular triplex containing parallel T*A:T and G*G:C triplets: netropsin complexation with the triplex.

We have used circular dichroism and UV absorption spectroscopy to characterize the formation and melting behaviour of an intramolecular DNA triple helix containing parallel T*A:T and G*G:C triplets. Our approach to induce and to stabilize a parallel triplex involves the oligonucleotide 5'-d(G4A4G4[T4]C4T4C4-[T4]G4T4G4) ([T4] represents a stretch of four thymine residues). In a 10 mM sodium cacodylate, 0.2 mM disodium EDTA (pH 7) buffer, we have shown the following significant results. (i) While in the absence of MgCl2 this oligonucleotide adopts an intramolecular hairpin duplex structure prolonged by the single strand extremity 5'-d([T4]G4T4G4), the presence of millimolar concentrations of MgCl2generates an intramolecular triplex (via double hairpin formation). (ii) In contrast to the antiparallel triplex formed by the oligonucleotide 5'-d(G4T4G4[T4]G4A4G4[T4]C4T4C4), the parallel triplex melts in a biphasic manner (a triplex to duplex transition followed by a duplex to coil transition) and is less stable than the antiparallel one. The enthalpy change associated with triplex formation (-37 kcal/mol) is approximately half that of duplex formation (-81 kcal/mol). (iii) The parallel triple helix is disrupted by increasing the concentration of KCl(>10 mM), whereas, under the same conditions, the antiparallel triplex remains stable. (iv) Netropsin, a natural DNA minor groove-binding ligand, binds to the central site A4/T4of the duplex or triplex in an equimolar stoichiometry. Its association constant K is smaller for the parallel triplex ( approximately 1 x 10(7) M-1) than for the antiparallel one ( approximately 1 x 10(8) M-1). In contrast to the antiparallel structure, netropsin binding has no apparent effect on thermal stability of the parallel triple helix.

Anti-Bacterial Agents↗

Protection of particular endonuclease R. Hind III cleavage sites by distamycin A, propyl-distamycin and netropsin.

It is shown that three related antibiotics, distamycin A, propyl-distamycin and netropsin, can protect certain endo R.Hind III cleavage sites from attack by endonuclease, giving rise, after endo R.Hind III digestion, to larger DNA fragments. Bacteriophage lambda DNA has six recognition sites for Hind III enzyme. Three of these sites: shind III 2, 3 and 6 can be protected from nuclease action by all the antibiotics used. Propyl-distamycin protects partly shind III 5, too. Netropsin protects partly sites shind III 5 and 4, while distamycin A protects all the sites but shind III 1 so the Hind III digestion produces only two large fragments of lambda DNA.

DNA Restriction Enzymes↗

Aspects of specific protein-DNA interaction; multi-mode binding of the oligopeptide antibiotic netropsin to (A.T)-rich DNA segments.

By means of titration viscometry a number of distinct modes could be resolved for the interaction between the antibiotic netropsin and DNA species of 50, 58, and 69 mole + (A+T) below r = 0.04 netropsin molecules bound per DNA phosphate group. The number of corresponding binding sites increases with a high power of the (A+T) content. The apparent association constants are very high (greater than 10(6) M-1, some perhaps greater than 10(6) M-1) and also rather different for most of the binding sites. It is suggested that some of these interaction modes differ in the number of hydrogen bonds formed between donors of the ligand and acceptors of the binding sites. The interaction modes were characterized quantitatively by their (species-independent) changes of DNA contour length and by the percentage of local DNA stiffening.

Animals↗

Solution structure of the DNA complex with a quinacrine-netropsin hybrid molecule by NMR spectroscopy.

The solution structures of 1:1 complexes of a quinacrine-netropsin hybrid molecule with the self-complementary DNA duplexes, d(CGCGAATTCGCG)2 and d(CGAATTCG)2, have been studied by one- and two-dimensional 1H NMR spectroscopy. The NOE data indicate that the acridine ring of the hybrid intercalates into the 5'-GpA step and its netropsin moiety spans the minor groove of the central AATT region.

Base Sequence↗

Comparison of binding sites in DNA for berenil, netropsin and distamycin. A footprinting study.

Techniques of DNase I and micrococcal nuclease footprinting have been used to compare the binding sites for berenil, netropsin and distamycin on two different DNA fragments. Each ligand binds to the A + T-rich zones which contain clusters of at least four A.T base pairs. Neither guanosine nor cytidine nucleotides appear to be allowed within the A + T-rich runs which constitute the preferred binding sites, although they are sometimes protected from DNase I cleavage in neighbouring regions. Berenil and netropsin share with distamycin the property of causing enhanced rates of cleavage at certain sequences flanking their binding sites. There are significant differences in the concentrations of each ligand required to produce defined patterns of protection, seemingly dependent upon the nature (and possibly the gross base composition) of the piece of DNA being used in the experiment.

Amidines↗

New carbocyclic analogues of netropsin: synthesis and inhibition of topoisomerases.

A series of carbocyclic analogues of netropsin were synthesized and evaluated for their capacity to inhibit human topoisomerases I and II in vitro. The compounds are oligopeptides containing 1,4-di- and 1,2,5-trisubstituted benzene rings and unsubstituted N-terminal NH2 groups. Compounds 4-7 consist of two netropsin-like units linked by aliphatic (tetra- and hexamethylene) chains. In the topoisomerase I and II assay, the relaxation of pBR322 plasmid was inhibited by compounds 4-7 at 100 microM concentration.

Antineoplastic Agents↗

Spectroscopic probe of distribution of the non-intercalating drug netropsin between DNA and heparin.

Circular dichroism has been used as a monitoring tool to probe the distribution of the non-intercalating drug netropsin (NTPS) between the two biomolecules DNA and heparin. The stoichiometry of the interaction of the individual biomolecules and the drug is determined from conductometric titrations; the titration in each case shows two breaks corresponding to two stoichiometries of interaction. Though netropsin is non-intercalating, DNA wins over heparin in binding the drug due to strong hydrogen bonding capability of NTPS in the minor grooves of DNA through its greater than NH donor groups. Potential hydrogen bond breakers like KF and urea reduce the induced dichroism of NTPS-DNA system, probably dislodging some drug from DNA through hydrogen bond breaking.

Animals↗

Netropsin binding to poly[d(IC)].poly[IC)] and poly[d(GC].poly[d(GC)]: a computer simulation.

The thermodynamic cycle perturbation approach has been used to calculate the difference in the free energy of binding of netropsin to two different DNA molecules. In the computer simulations, all the inosine residues have been gradually 'mutated' into guanosine in a DNA dodecamer and in a complex of the same dodecamer with netropsin. The difference in binding free energy of about 4.3 kcal mol-1 agrees well with the experimentally determined value of 4.0 kcal mol-1. One structural determinant of the specificity seems to be the width of the minor groove in the two complexes.

Guanidines↗

[Netropsin does not bind with the oligonucleotide d(GCGATCGC)].

By the method of circular dichroism we have studied binding of netropsin in a solution with self-complementary oligonucleotide d(GCGATCGC). It is shown that the presence of two successively located A and T nucleotides is not enough for binding netropsin with B-DNA.

Binding Sites↗

Synthetic analogues of netropsin and distamycin--synthesis of a new pyridine and carbocyclic analogues of the pyrrolecarboxamide antitumour antibiotics.

A new series of pyridine-containing analogues III-XXII of distamycin A and netrop sin was investigated by the molecular mechanics technique and molecular modelling. A pyridine analogue of netropsin (VII) is described, the first compound based on molecular studies, and two carbocyclic analogues of distamycin A with an N-terminal chloro- or bromoacetyl group (VIa, VIIa) were synthesized, as well as carbocyclic analogues of netropsin (VIIIb, Xb), potential carriers of alkylating elements. The potential use of VIa, VII, VIIa, VIIIb and Xb as carriers to place into the minor groove of DNA chemical groups capable of modifying DNA, is discussed.

Acids, Carbocyclic↗