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Sensitization of the Escherichia coli cyclic AMP receptor protein to trypsin cleavage by polydeoxyribonucleotides and polyribonucleotides.

In the absence of cAMP the cyclic AMP receptor protein (CRP) is relatively resistant to trypsin whereas the cAMP X CRP complex is attacked yielding N-terminal core fragments of 14,300 and 18,500 Da which still bind cAMP. The DNA X CRP complex formed at low ionic strength in the absence of cAMP is cleaved by trypsin with the formation of 9,700- and 6,000-Da fragments and the concomitant loss of cAMP binding activity. DNA X CRP remains as resistant to attack by subtilisin, clostripain, and the Staphylococcus aureus V8 protease as unliganded CRP but is slowly digested by chymotrypsin. All of the double-stranded polydeoxyribonucleotides and several of the single-stranded polydeoxyribonucleotides and polyribonucleotides tested render CRP sensitive to cleavage by trypsin. CRP is less rapidly cleaved by trypsin in the presence of d(A)n, d(I)n, and r(C)n indicative of a weaker affinity of CRP for these polynucleotides. The 9,700-Da fragment is N-terminal in CRP and probably terminates at Lys-89. The loss of cAMP binding activity following trypsin cleavage of DNA X CRP indicates that regions beyond this residue are important in the function of the cAMP-binding domain of CRP. The 6,000-Da fragment extends from Val-131 to Arg-185 or Lys-188 and contains part of the F helix involved in DNA binding by CRP.

Amino Acid Sequence↗

Increase in liver-associated natural killer activity by polyribonucleotides.

Several polyribonucleotides are currently in clinical trials for the treatment of cancer or viral diseases. The present report in mice demonstrates that polyinosinic-polycytidylic acid and poly-L-lysine which has been stabilized in carboxymethylcellulose (poly (ICLC) as well as polyadenosinic-polyuridylic acid (poly AU), both potently augment natural killer (NK) activity in the liver, which is often a target organ for the formation of metastases during the progression of human cancer. Following the administration of poly ICLC (10 micrograms/mouse), greater NK activity as measured by lytic units (LU), was observed in the liver (445 LU) than in blood (63 LU) or spleen (20 LU). The high level of NK activity in the liver was in contrast to the low levels observed in untreated mice, and was maintained for at least 9 days post injection. NK activity in the blood and spleen returned to normal levels by day 6. Similar results were obtained with poly AU except that approximately 10-fold more poly AU (100 micrograms/mouse) was required to induce optimal augmentation of NK activity. Further studies demonstrated that the increase in liver-associated NK activity induced by poly ICLC was associated with a 10- to 20-fold increase in liver-associated leukocytes, termed nonparenchymal cells (NPC). Fractionation of the NPC on discontinuous density gradients of Percoll demonstrated that the NK activity mediated by NPC was associated with cells morphologically characterized as large granular lymphocytes (LGL). Further studies demonstrated that the repeated administration of poly ICLC resulted in significantly higher levels of liver-associated NK activity and total liver-associated LGL as compared to a single injection.

Animals↗

Immunomodulation of natural killer activity by polyribonucleotides.

Several synthetic polyribonucleotides have been examined for the ability to augment natural killer (NK) activity and induce interferon (IFN) production. The results demonstrate that the complex of polyinosinic-polycytidylic acid and poly-L-lysine, which has been stabilized in carboxymethylcellulose [poly(I,C)-LC], polyadenylic-polyuridylic acid [poly(A).poly(U)], and a labile poly (I,C) compound with mismatched bases, designated poly(I).poly(C12U), all augment NK activity. However, poly(A).poly(U) and poly(I).poly(C12U) are less efficient augmentors of NK activity on a milligram per kilogram basis, than is poly(I,C)-LC. Similarly, poly(I,C)-LC induces more serum IFN following administration of 1, 10, or 100 micrograms/mouse (1,000-10,000 U/ml) than does either poly(A).poly(U) (0-25 U/ml) or poly(I).poly(C12U) (0-250 U/ml) at the same doses. Further studies with poly(I,C)-LC demonstrated that this molecule is an excellent augmentor of liver-associated NK activity. In fact, administration of poly(I,C)-LC resulted in higher NK levels in lever (63% lysis) than in spleen (44%) or blood (36%), and the augmented NK response was maintained in the liver for up to 13 days, whereas levels of NK activity in both blood and spleen returned to normal by days 3-6.

Animals↗

Potential role of polyribonucleotides in human neoplastic diseases.

In experimental models polyribonucleotides, either alone or in combination with various polycations, are potent immunomodulators, inducers of interferons, and antitumor compounds. However, emerging clinical and preclinical results suggest they may have useful therapeutic roles of types not yet described with interferons. Thus, further Phase I and Phase II clinical trials are warranted to define their potential usefulness in humans.

Adjuvants, Immunologic↗

[Specificity of synthetic polyribonucleotides hydrolysis by endoribonuclease from cobra (Naja oxiana) venom].

An analysis of kinetic differences in homopolyribonucleotides hydrolysis by cobra venom endoribonuclease was carried out. It was concluded that the rate and intensity of hydrolysis as well as the length of the linear parts of the kinetic curves are correlated with the content of the nucleotide units with the C3'-endo conformation in the substrates. The structure factor was shown to predominate in some cases over the temperature factor. Protamine sulfate inhibits the enzyme by blocking its phosphodiether bonds. Study on the effects of divalent metal ions demonstrated the possibility that the enzyme-Me2+ complex is functionally active and that the ion-free polyribonucleotides are true substrates.

Animals↗

The effect of native and sonicated double-stranded polyribonucleotides on the course of spontaneous autoimmune disease in NZB and NZB/Swiss F1 mice.

The administration of sonicated fractions of f2 phage polyribonucleotides caused an increased weight loss and deterioration of the clinical state in female NZB mice. Discontinuance of the treatment resulted in an improvement of both the clinical state and the genetically determined autoimmune disorders of these mice. Some potential explanations of this effect are discussed.

Animals↗

Differential effect of amino acid residues on the stability of double helices formed from polyribonucleotides and its possible relation to the evolution of the genetic code.

The interaction of amino acid residues with polyribonucleotides was characterized by measurements of melting temperatures (tm) for poly(A).poly(U) and poly(I).poly(C) as functions of the concentrations of various amino acid amides. The amides of hydrophilic amino acids lead to a continuous increase of tm with increasing concentration, whereas amides of hydrophobic amino acids induce a decrease of tm at low concentrations (approximately 1 mM) followed by an increase at higher concentrations. Analysis of the data by a simple site model provides the affinity of each ligand for the double helix relative to that for the single strands. This parameter decreases in the order Ala greater than Gly greater than Ser greater than Asn greater than Pro greater than Met, Val greater than Ile, Leu for poly(A).poly(U) and Ala, Gly, Ser greater than Asn greater than Pro greater than Val greater than Ile, Met, Leu for poly(I).poly(C). The special effects of hydrophobic amino acids may be related to the similarity of the codons for these amino acids. A simple model for assignment of codons to amino acids is proposed.

Amino Acid Sequence↗

Two-component ribonucleotidyl transferase from Escherichia coli. III. Effect of nucleoside diphosphates on synthesis and pyrophosphorolysis of polyribonucleotides by the enzyme.

1. The capacity of two-component ribonucleotidyl transferase to catalyze pyrophosphorolysis of polyribonucleotides is studied. 2. It is shown that nucleoside diphosphates (NDP), not being substrates for the enzyme, activate both the synthesis and pyrophosphorolysis of polynucleotides by the enzyme. The concentration of NDP is important for this effect: with an increase of NDP concentration the rate of synthesis increases and reaches a plateau at 10(-5) M NDP, while the rate of pyrophosphorolysis, attaining maximal values at 10(-5)--10(-3) M NDP, decreases with a further increase of NDP concentration. 3. The possible biological role of two-component ribonucleotidyl transferase is discussed.

Diphosphates↗

Lipopolysaccharide and polyribonucleotide activation of macrophages: implications for a natural triggering signal in tumor cell killing.

There is evidence that activation of macrophages for tumor cell killing can involve either two signals (interferon/lipopolysaccharide, for example) or one signal (lipopolysaccharide or double-stranded RNA, for example). We investigated the apparent one-signal activation of bone marrow-derived macrophages for P815 mastocytoma killing by treatment with lipopolysaccharide (LPS) or by the synthetic double-stranded polyribonucleotide polyinosinic acid-polycytidylic acid (poly I:C). We found that "direct" activation of macrophages by either LPS or poly I:C was still a two-signal process. Based on antibody neutralizations, the first signal was probably mediated by LPS or poly I:C induced alpha/beta interferon in the macrophage cultures, and the second signal was that of a direct effect of the LPS or poly I:C on the cell. The fact that poly I:C can provide the triggering signal for macrophage activation suggests a possible role for double-stranded RNA structures in macrophage triggering. Such double-stranded RNA requirements could be met by single-stranded RNAs that possess significant double-strandedness in their structures.

Animals↗

Temperature variation of polyribonucleotide conformation by an interaction with basic globular proteins.

Chicken lysozyme interacts with polyribonucleotides to form large light-scattering centers. The size of these is critically dependent on conformation of the polynucleotides. Hence, the interaction provides a very sensitive method of determining temperature intervals within which the polynucleotides change from multistranded, stacked-base structures to single-stranded, random coils. This change can be observed with the unaided eye, especially when concentrations of polynucleotides are of the order of a few micrograms per milliliter.

Adenine Nucleotides↗

Binding kinetics of mercury(II) TO POLYRIBONUCLEOTIDES.

Kinetic studies of the interaction of Hg(II) with polyribonucleotides have been used to investigate structural fluctuations of the bases in nucleic acids. The reaction of Hg(II) with poly(A)-poly(U) occurs in two phases which differ in time scale by a factor of about 100. The slow phase is first order and exhibits cooperativity or autocatalytic kinetics. The rate is found to increase as decreasing chain length of poly(U) is used to make the double helical complex. The reaction appears to initiate at the ends of poly(U) strands and may be associated with a molecular rearrangement which results in strand separation with Hg(II) being linked only to uridine. The fast reaction phase is second order ans shows little cooperative behavior. Protons are released at this stage indicating alteration of the double helix. The measured second-order rate constant is nearly three orders of magnitude smaller than that found for poly(U) alone. This rate difference suggests that the reactive sites are blocked by double helix formation, and become available for reaction with Hg(II) only through a structural fluctuation. The ratio of rate constants for the reaction of Hg(II) with poly(U) and poly(A)-poly(U) was used to place an upper limit on the equilibrium constant for the structural fluctuation of 2 times 10- minus 3 at 15 degrees and 0.5 M NaClO4. The heat of the "breathing" reaction can be estimated to be similar to 9 kcal/mol from comparison of the temperature coefficient of the reaction with poly(U) to that with poly(A)-poly(U).

Adenine Nucleotides↗

The synthesis of polyribonucleotides by cytoplasmic enzymes.

1. The possibility that the cell cytoplasm contains enzymes catalysing the biosynthesis of RNA was investigated in fractions obtained by differential centrifugation of homogenates of Landschutz ascites-tumour cells. 2. The microsomal fraction was shown to be most active in incorporating UMP residues from [alpha-(32)P]UTP into polyribonucleotide material. 3. The same fraction also incorporated [(3)H]CTP, [(3)H]ATP and [(3)H]GTP separately and independently of the presence of complementary ribonucleoside 5'-triphosphates. 4. The reaction was promoted by the addition of RNA and showed an absolute requirement for Mg(2+) ions. 5. Analysis of alkaline hydrolysates of the reaction products after the incorporation of [alpha-(32)P]UTP showed that most of the radioactivity was recovered in (2',3')-UMP residues irrespective of whether CTP, ATP and GTP were present in the reaction mixture. 6. Extraction of RNA from the reaction mixtures after the incorporation of [(3)H]ATP, [(3)H]GTP or [(3)H]CTP and analysis by sucrosedensity-gradient centrifugation showed no labelling of the ribosomal RNA. Radioactive material appeared between the 4s region and the meniscus of the sucrose gradient. In agreement with this observation, determinations of the chain length of the product showed that only short sequences of polynucleotides were synthesized. It is concluded that only homopolyribonucleotide synthesis is catalysed by the microsomal fractions and that there is little or no synthesis of RNA-like heteropolymers.

Adenosine Triphosphate↗

Inhibition of the DNA polymerase of Rauscher leukemia virus by single-stranded polyribonucleotides.

The DNA polymerase of Rauscher murine leukemia virus is strongly and specifically inhibited by nontemplate, single-stranded polyribonucleotides with either the resident viral RNA, native calf-thymus DNA, or poly[d(A-T)] as templates. These inhibitory homopolymers are apparently bound to the template site of the polymerase, since they interact competitively with the template. The strength of the inhibition depends on the particular homopolymer used: poly(U) > poly(G) >> poly(A) > poly(C). The K(i) for poly(U) was 0.08 mug/ml, which represents an apparent affinity six times greater than that observed for viral RNA. No such inhibition was observed with a highly purified DNA polymerase from mouse embryos or the Escherichia coli enzyme.

Adenine Nucleotides↗

A purine polyribonucleotide synthetase from Escherichia coli.

The isolation, from E. coli B, and partial purification of a purine polyribonucleotide synthetase having several unusual properties is described. The enzyme, which seems to be under strict regulation by several nucleoside triphosphates, requires, after removal of internal primer activity, a primer, such as poly(A), poly(U), or a suitable RNA, but acts without a template. It uses purine ribonucleoside triphosphates as precursors. The uptake of adenylic acid, when ATP is offered alone, is highly stimulated by the presence of GTP, in which case both nucleotides are incorporated into mixed polymers; but GTP as the sole precursor is not utilized. CTP has a strongly inhibitory effect. Other unusual features are the high salt concentration, 0.6 M KCl, at which the enzyme is optimally active and evidence of the existence of a relatively heat-stable protein functioning as an activation factor.

Adenosine Triphosphate↗

Structural features of double-stranded polyribonucleotides required for immunological specificity and interferon induction.

Purified antibody to poly(adenylic acid)-poly(uridylic acid) was used in quantitative microcomplement fixation assays to detect conformational variations among several double-helical polyribonucleotide analogs of poly(adenylic acid)-poly(uridylic acid) or poly(inosinic acid)-poly(cytidylic acid) that had been previously evaluated for their ability to induce interferon. Modification at the furanose 2'-position of one or both strands resulted in a dramatic decrease in serological reactivity. Most modifications of the bases caused smaller serological changes, and no base modification caused complete loss of reactivity. The reaction patterns support the conclusion that the structure of the furanose and the overall conformation of the helix are critical in the formation of antigenic determinants. The backbones of both strands appear to be involved in forming a single antigenic site, and base modifications may alter the steric relationship between the backbones. In addition, the same structural changes that substantially alter recognition by antibody also lead to large changes in the interferon-inducing ability of the nucleic acid.

Antigen-Antibody Reactions↗

Induction of strand breaks in polyribonucleotides and DNA by the sulphate radical anion: role of electron loss centres as precursors of strand breakage.

The interaction of the sulphate radical anion, SO4.-, with the polyribonucleotides, poly U and poly C, in deaerated, aqueous solutions at pH 7.5 results in strand breakage (sb) with efficiencies of 57 and 23%, respectively, determined by time resolved laser light scattering (TRLS). Most sb are produced within 70 microseconds, the risetime of the detection system. Oxygen inhibits the induction of sb in poly U and poly C by SO4.- through its interaction with a radical precursor to sb. In contrast, the interaction of SO4.- with poly A and single stranded DNA does not lead to significant strand breakage (< or = 5% efficiency). From optical studies, the interaction of poly A and poly G with SO4.- radicals yields predominantly the corresponding one electron oxidized base radicals. With poly C and poly U, it is proposed that the SO4.- radical interacts predominantly by addition to the base moiety to produce the C(5)-yl and C(6)-yl sulphate radical adducts which react with oxygen. These base adducts subsequently interact with the sugar-phosphate moiety by H-atom abstraction to yield C(2)' sugar radicals with rate constants in the range 1.3-1.7 x 10(5) s-1. It is proposed that the C(2)' sugar radical leads to strand breakage within 70 microseconds, in competition with its transformation into the C(1)'-sugar radical involving base release. From optical studies on the interaction of SO4.- with double stranded DNA, it is suggested that the predominant radical species produced in DNA is the one-electron oxidized radical of guanine, consistent with positive charge migration in DNA. Since the efficiency of SO4.- to induce sb in single stranded DNA is low, it is concluded that the one-electron oxidized guanine radical does not effectively induce strand breakage in DNA.

Anions↗

Vaccinia virus polyriboadenylate polymerase: convalent linkage of the product with polyribonucleotide and polydeoxyribonucleotide primers.

A POLYRIBOADENYLATE [POLY(A)] POLYMERASE, PURIFIED FROM VACCINIA VIRUS CORES, WAS STIMULATED BY POLYDEOXYRIBOADENYLATE: polydeoxyribothymidylate [poly(dA:dT)] and by polyribocytidylate [poly(C)] primers suggesting mechanisms of either transcription or terminal addition. Evidence for the latter was obtained by the demonstration of covalent linkages between the poly(A) products and both primers. In 99% dimethylsulfoxide-sucrose gradients, the sedimentation of poly(A) formed with poly(dA: dT) primer was reduced after DNase I treatment and the sedimentation of poly(A) formed with poly(C) primer was reduced by RNase A treatment, whereas the sedimentation of poly(A) formed without primer was not affected by either. Formation of a phosphodiester bond between primer and product was demonstrated by means of isotope transfer experiments. (32)P from alpha-[(32)P]ATP was transferred to 2'(3')-CMP after alkaline or enzymatic hydrolysis of the poly(C)-primed polymerase reaction product. Transfer primarily or exclusively to 3'-dTMP was found after enzymatic hydrolysis of the poly(dA: dT)-primed polymerase reaction product. The elution pattern of the poly(A) polymerase from DNA-cellulose suggested that a single enzyme catalyzes the attachment of adenylate residues to both polyribonucleotide and polydeoxyribonucleotide primers; nevertheless the purest enzyme preparations contain two bands resolved by polyacrylamide gel electrophoresis in sodium dodecyl sulfate.

Adenosine Triphosphate↗

Treatment of mice with polyinosinic-polycytidilic polyribonucleotide reduces T-cell involvement in a localized inflammatory response to vaccinia virus challenge.

Mice inoculated intracerebrally with 10(3) PFU of vaccinia virus developed a nonfatal meningitis which was maximal 7 days after challenge. Intravenous administration of an interferon (IFN) inducer, polyinosinic-polycytidilic polyribonucleotide [poly(I)-poly(C)], on days 4 and 6 postinjection was associated with a three- to fourfold decrease in the number of T lymphocytes present in cerebrospinal fluid, reflected primarily by a decreased number of vaccinia virus-specific cytotoxic T-lymphocyte precursors. The lack of a concomitant reduction in the overall cytotoxic activity of cerebrospinal fluid cells directed against virus-infected target cells seemed to be largely due to an increase in natural killer cell activity. IFN was implicated as mediating the effect of poly(I)-poly(C) because high systemic levels of IFN were evident after injection, and neither the magnitude of the inflammatory response nor the T-cell levels were affected when poly(I)-poly(C)-treated mice were also given anti-IFN antiserum. However, the poly(I)-poly(C)-induced IFN did not seem to reduce the localized inflammatory response by affecting viral replication in brain tissue because the vaccinia virus titers present on days 6 through 8 of infection were similar to the titers in phosphate-buffered saline controls. These findings are consistent with either an effect of IFN on T-cell recruitment to the central nervous system or an inhibition of proliferation of cells participating in the response. These findings suggest that there is a potential source of complications for clinical protocols that use IFN or inducers to enhance T-cell function in various disease situations, and this effect of IFN may be a contributing factor to the immunosuppression often associated with many viral infections.

Animals↗