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[Effect of amphotericin B on the interferonogenic activity of poly(G) . poly(C) and poly(G,I) . poly(C) in mice and their resistance to infection by the tick-borne encephalitis virus].

It was shown that amphotericin B, a polyenic macrolide markedly potentiated in mice the interferonogenic activity of the two-strand synthetic polyribonucleotide complexes, Poly (G) . Poly (C) and Poly (G, I) . Poly (C). At the same time amphotericin B used in high or low doses lowered or somewhat increased respectively the protective effect of Poly (G) . Poly (C) and Poly (G, I) . Poly (C) which was not adequate to the antibiotic effect on their interferonogenic activity. It was found that amphotericin B stimulated in the mice the infection caused by the forest spring encephalitis virus, accelerated the period of its manifestation and increased the death rate. This effect correlated with the concentration of amphotericin B and the dose of the virus. The relationship between the differential effect of amphotericin B on the interferonogenic and antiviral activity of polyribonucleotide interferonogenes and the stimulation of the viral infection by them is discussed.

Amphotericin B

The mouse immune response to the double stranded polyribonucleotide complex poly(G) . poly(C).

Ten inbred strains of mice were immunized with the double stranded polyribonucleotide complex polyguanylic . polycytidylic acid [poly(G) . poly(C)]. While some immunogenic properties of this duplex were comparable to those of other nucleic acids antigens, differences were also noted. High (SJL/J, BALB/c), low (DBA/2, AKR) and intermediate responders were observed; these differences were not abolished by adsorption of the duplex to MBSA. This pattern of immune response is distinct both from that observed with two other synthetic polyribonucleotide double helices [poly(A) . poly(U) and poly(I) . poly(C)] and with single stranded DNA. The anti-poly(G) . poly(C) activity was localized in the 7S region, whether the sera came from high or low responders, from mice immunized with or without a carrier, after one or several injections. In contrast with anti-poly(A) . poly(U) sera which do not react with poly(G) . poly(C), anti-poly(G) . poly(C) exhibited poly(A) . poly(U) binding activity; no clear relationship between the two activities, however, could be demonstrated. Thus a series of immunological properties differentiates poly(G) . poly(C) not only from the natural polydeoxyribonucleotide single stranded DNA, but also, and more unexpectedly, from two other double stranded polyribonucleotide complexes. These observations suggest that the mechanism controlling the antibody response to poly(G) . poly(C) differs from that regulating poly(A) . poly(U) and/or poly(I) . poly(C), and are to be connected with the fact that the anti-poly(G) . poly(C) antibodies occurring in the sera of patients with systemic lupus erythematosus did not correlate with the antibody activities directed toward the other duplexes.

Animals

[Biological activity of the poly(G).poly(C) complex, modified by divalent platinum compounds].

Modification of poly(G).poly(C) with cys-diaminodichloroplatinum (cys-DDP) at the level of rb = 0.02 increased the in vivo antiviral and interferon-inducing activity of the complex, in contrast to the data reported for complex poly(G).poly(C). Antiinfluenza activity in this case depends on the method of modification and increases more intensively when a ready complex is treated with cys-DDP, as against treatment of poly(G) alone before the formation of a complex with poly(C). If rb is increased, the activity reduces again. Modification with trans-DDP at rb = 0.02 also leads to an increase of antiinfluenza activity of poly(G).poly(C), but mainly after pretreatment of poly(G).

Animals

[Thermoactivation of poly(G).poly(C): a description of the effect and its hypothetical mechanism].

Heating of poly(G).poly(C) complex solutions at a temperature about 100 degrees C was shown to overcome a decrease in the antiviral and interferon-inducing activity of the preparations which were obtained at relatively high concentrations of polynucleotides from poly(G) stored in solution, or were stored frozen themselves. These unfavourable conditions contributed to stabilization of the poly(g) secondary structure and decrease in the degree of regularity of the complex molecules. The results suggest that thermal activation of such poly (G). poly(C) preparations occurred in 2 stages by melting residual free regions of poly(G) and their subsequent interaction with poly(C) with formation of a more regular complex.

Animals

[Comparative antiviral and interferonogenic activity of synthetic polyribonucleotide complexes of poly(I).poly(C) and poly(G).poly(C) in different cell systems].

The antiviral and interferon-inducing activity of synthetic polyribonucleotide complexes poly(I)-poly(C) and poly(G)-poly(C) was studied in chick embryo, mouse embryo and rabbit kidney cell cultures. In chick embryo cell cultures both polyribonucleotides had similar antiviral activities. The interferon-inducing activity was more marked in poly(G)-poly(C) than in poly(I)-poly(C). In the other two cell cultures poly(I)-poly(C) was considerably superior in both activities. The revealed differences in the comparative activity of the polyribonucleotides in relation to the kind of tissue culture were not associated with differences between them in toxicity, sensitivity to pancreatic RN-ase or with possible differences in the duration of the contact with cells necessary for the achievement of the antiviral effect.

Animals

[Induction of plant resistance to the tobacco mosaic virus with a double-stranded poly(G)-poly(C) complex].

Inoculation of double-stranded polyribonucleotide poly(G) . poly(C) complex in a concentration of 50-200 micrograms/mg into tobacco and thornapple leaves was found to produce resistance of the plants to subsequent infection with tobacco mosaic virus (TMV) manifested in decreased number and size of local virus lesions. The induced resistance may spread over the plant and be found in the upper untreated leaves. The level of systemic resistance, however, is much lower than that of the resistance demonstrated in the injected leaves. Actinomycin D (5 micrograms/ml) had no significant effect on the number but stimulated the growth of lesions developing in leaves injected with poly(G) . poly(C) as well as increased their number in the upper leaves of the same plants proximal to the treated ones. Development of tobacco resistance to TMV was accompanied by changes in the activity of terminal oxidases, particularly peroxidase. Possible mechanisms of formation of induced resistance are discussed.

Plant Diseases

[Dependence of the antiviral activity of the poly(G).poly(C) complex on the size of the continuous poly(C)segments].

Modification of poly(C) by various frequency treatment with adenosine non-complementary to guanosine has produced poly(G) X poly (C.A) complexes with continuous double-stranded areas the length of which is determined by C/A ratio. Studies of the antiviral activity of poly(G).poly(C,A) complexes with C/A from 10:1 to 90:1 and poly(G).poly(C) in vesicular stomatitis virus-infected chick embryo cell cultures and in experimental tick-borne encephalitis of mice demonstrated that the maximum activity is achieved at an average lengths of double-stranded areas of 90 nucleotide pairs. At the same time, a low but statistically significant antiviral activity is observed at a length of double-stranded areas of 10-30 nucleotide pairs.

Animals

[Study of the intermolecular association of poly(G).poly(c) and poly(dG).poly(dC) in solutions by methods of 1H to 3H exchange and electron microscopy].

The kinetic of 1H leads to 3H exchange between water and C(8)H-groups of the guanylic residues in poly(G) . poly(C) and poly(dG) . poly(dC) was investigated within the temperature range from 30 to 90 degrees in 0.5 M NaCl (pH 7.2). It was shown that the exchange in freshly dissolved preparations at temperatures lower than 50 degrees proceeds faster than that in the case of GMP. According to the ylide mechanism of the exchange reaction the observed acceleration of the exchange is considered as a consequence of associates formation in poly(G) . poly(c) and poly(dG) . poly(dC) solutions at temperatures lower than 50 degrees. Associates are stabilized by intermolecular hydrogen bonds in which N(7) atoms of guanylic residues take part. The increase of the temperature is accompanied by gradual disappearance of the exchange acceleration. The retardation of exchange, which is characteristic of most non-associated double-stranded polynucleotides and nucleic acids is observed at the temperatures above 60 degrees. The retardation points to thermal destruction of the associates at temperatures higher than 50 degrees. The associates which are characterized by ordered structure including several "side by side" arranged double-stranded molecules were observed by electron microscopy. The addition of EDTA to solutions as well as the increase of temperature leads to destruction of the associates whereas the addition of Mg2+ makes the associates more stable.

Chemical Phenomena

[Analysis of defects in the structure of the complex poly(G).poly(C)].

The concentration of free poly(C) in solution in the course of its interaction with poly(G) as well as in the presence of preformed complex poly(G).poly(C) was measured by differential pulse polarography (DPP) at a mercury dropping electrode. Poly(C) binding with poly(G) was shown to hamper its electrochemical interaction with the mercury electrode and registration by DPP. It was concluded that the extremely low DPP signal from poly(C) in the presence of preformed complex was the result of its interaction with the distortions in the secondary structure of complex molecules containing free guanines. For quantitative testing of these defects, measurement of Tb3+ ion fluorescence was applied. It was shown that preliminary denaturation of the poly(G) secondary structure reduced the amount of structural defects in the complex and restored of complete DPP registration of redundant poly(C) added to this complex. These results show that the combination of DPP and Tb3+ fluorescence measurements permits one to detect at the quantitative level the structural defects in the poly(G).poly(C) complex.

Electrochemistry

Modification of duplex poly(G).poly(C) by platinum (II) compounds.

The modification of the double-stranded poly(G).poly(C) complex by cis-diamminedichloroplatinum(II) was studied by two modes: the action of cis-DDP on poly(G) before formation of the duplex with poly(C) and that on the prepared duplex. It was shown that in the latter case modification disordered the integrity of the duplex only negligibly at rb less than or equal to 0.05 and led to improved interferon-inducing and antiviral activity tested on mice infected by Influenza and Herpes viruses.

Cisplatin

[Study of fusion of bacteriophage f2 double-stranded RNA, poly(A).poly(U), and poly(G).poly(C) in the presence of tetraethylammonium bromide].

The data on the dependence of the melting curve parameters of double-stranded RNA (replicative form of RNA of f2 bacteriophage) poly(A) times poly(U) and poly(G) times poly(C) on the concentration of (C2H5)4NBr were obtained. The RNA melting range width is shown to pass through the minimum value T =2.1+/-0.1degrees at the point of inversion of relative stability of GC and AU pairs that corresponds to 4.0+/-0.1 M concentration of (C2H5)4NBr. Using the melting temperatures of poly(A) times poly(U) and poly(G) times poly(C) the rependence of Tgc-Tau parameter on (C2H5)4NBr concentration was shown. It was concluded from these data that the effect of the double-stranded RNA stacking heterogeneity was negligible in the 0-3 M range of (C2H5)4NBr concentration. Melting curves of RNA were obtained at various values of Tgc-Tau parameter. It was shown that the profile of fine structure of melting curves depends on the value of Tgc-Tau parameter.

Bacteriophages

[Acute toxicity and cumulative properties of poly(I).poly(C) and poly(G).poly(C) polyribonucleotide complexes].

Acute experiments on mice and rats were made to determine the intraperitoneal lethal doses of the polyribonucleotide complexes poly (I).poly (C) and poly (G).poly (C) manufactured in this country. Changes in the function of cardiovascular, nervous, thermoregulatory and motor systems seen after injection of both complexes were shown to have some features in common but to differ in the rate and severity of poisoning. It was disclosed that the test polyribonucleotide complexes might be attributed to a group of substances that manifest the medium degree of cumulation.

Animals

Preparation and properties of an analogue of poly(A) and poly(G): poly(isoguanylic acid).

Isoguanosine-5'-pyrosphosphate, in the presence of an oligonucleotide primer, was polymerized by Escherichia coli polynucleotide phosphorylase under conditions analogous to those required for polymerization of 5'-GMP. The resulting poly(isoguanylic acid), poly(isoG), was a multistranded helix with a stability considerably higher than that of poly(G), and fully resistant to various nucleolytic enzymes. The polymer exhibited a two-step temperature transition profile in moderately alkaline propylene glycol. Alkaline titration in aqueous medium, by ultraviolet and circular dichroism spectroscopy, showed two clearly defined transitions, the second of which was fully cooperative. The accompanying changes in sedimentation constants were consistent with a structure for poly(isoG) of a fourstranded helix, like neutral poly(G). In acid medium, spectral and potentiometric titrations demonstrated the existence of more than one transition in the pH range 6-12, with accompanying protonation of the isoguanosine residues. In neutral medium the polymer formed no complexes with other potentially complementary homopolymers. In acid medium, on the other hand, the protonated form of poly(isoG) did form a triple-stranded complex with poly(I), viz. 2poly(I) . poly(isoG)+. Possible structures are formulated for the neural and protonated forms of poly(isoG) which account for the two-step thermal transition in alkaline propylene glycol and on alkaline titration in aqueous medium. The nature of the protonated form, and its complex with poly(I) is also discussed.

Binding Sites

[Comparative study of the toxicity of poly G-poly C and poly I-poly C in different objects].

The poly(G).poly(C) complex has the same interferon-inducing and antiviral activity upon parenteral administration to white mice as poly(I).poly(C), but is considerably less toxic. Upon intravenous inoculation of poly(I).poly(C) to mice its LD50 is 15.8 mg/kg whereas poly(G).poly(C) is not toxic in doses up to 200 mg/kg. In rabbits inoculated with poly(I).ploy(C) intravenously its LD50 is 0.22 mg/kg, while poly(G).poly(C) is not toxic in doses of 1 mg/kg. Histological examinations of different organs of mice and rats revealed no pathomorphological changes after a single intravenous and intraperitoneal inoculation of poly(G).poly(C). It exerted no embryotoxic effect in mice in a dose of 5 mg/kg and was considerably less toxic than poly(I).poly(C) in continuous diploid cell cultures of human embryo lung cells.

Animals