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F Eckstein

Publications and source records attributed to F Eckstein.

At least 343 records · Page 19Linked to original sources

Absolute configuration of the diastereomers of adenosine 5'-O-(1-thiotriphosphate): consequences for the stereochemistry of polymerization by DNA-dependent RNA polymerase from Escherichia coli.

The diastereomers of uridyl-(3'-5')adenyl-O,O-phosphorothioate [Up(S)A] have been separated by high-performance liquid chromatography. Their identification as RP and SP follows from the RNase A digestion of these products. It was then shown, by the same method, that the R isomer is hydrolyzed by snake venom phosphodiesterase (PDEase) approximately 500 times faster than the S isomer. Similarly, the stereoisomer of adenosine 5'-O-(1-thiotriphosphate) (ATPalphaS), until now arbitrarily designated as isomer B, is hydrolyzed ca 400 times faster by PDEase than is isomer A. From these results it is concluded that the R isomers of Up(S)A and ATPalphaS, isomers B, have the same absolute configuration. It then follows that isomer A of ATPalphaS, the preferred of the two isomers as substrate for DNA-dependent RNA polymerase, has the S configuration. The implications for the stereochemistry of action of the latter enzyme are discussed.

Adenosine Triphosphate↗

Incorporation of phosphorothioate groups into fd and phi X174 DNA.

We have synthesized fd and phi X174DNA in the presence of 2'-deoxyadenosine 5'-O-(1-thiotriphosphate) (dATP alpha S) and the corresponding phosphorothioate derivatives of dCTP and dTTP using ether-permeabilized E. coli cells or crude cell extracts of E. coli DNA polymerase I. Reaction rates of enzymes involved in the formation or breakdown of DNA are decreased in the presence of phosphorothioates. The amount of label incorporated with [35S]dATP alpha S suggests that the dAMP has been completely substituted by 2'-deoxyadenosine 5'-0-phosphorothioate (dAMPS). The substituted DNAs have the same sedimentation coefficients, similar buoyant density, infectivity, and thermal stability as the unsubstituted DNAs. The procedure therefore allows specific modification at the 5' position of dA, dC, or dT in the DNA. In view of the recent demonstration of specific binding of Pt2+ complexes to the phosphorothioate analogue of poly[r(A-U)] (Strothkamp, K.G., and Lippard, S.J. (1976), Proc. Natl. Acad. Sci. U.S.A. 73, 2536), the synthesis of phosphorothioate containing DNA may be of use for DNA sequencing by electron microscopy.

Adenosine Triphosphate↗

Stereochemistry of internucleotidic bond formation by tRNA nucleotidyltransferase from baker's yeast.

Isomer A of adenosine 5'-O-(1-thiotriphosphate) (ATP alpha S) is a substrate for tRNA nucleotidyltransferase from baker's yeast, whereas isomer B is a competitive inhibitor. The tRNA resulting from this reaction has a phosphorothioate instead of a phosphate diester linkage at the last internucleotidic linkage between cytidine and adenosine. On limited digestion of this tRNA with RNase A, one can isolate cytidine 2',3'-cyclic phosphorothioate which can be deaminated to uridine 2',3'-cyclic phosphorothioate. It can be shown that this compound is the endo isomer and that, therefore, the phosphorothioate diester bond in the tRNA must have had the R configuration. This result indicates that no racemization during the condensation of ATP alpha S, isomer A, onto the tRNA had occurred. Whether inversion or retention of configuration had taken place awaits elucidation of the absolute configuration of isomer A of ATP alpha S.

Adenosine Triphosphate↗

Enzymatic synthesis of adenosine 5'-O-(3-[35S]-thiotriphosphate).

A method for the enzymatic synthesis of adenosine 5'-O-(3-[35S]thiotriphosphate) is described. The method involves the thiophosphate exchange of adenosine 5'-O-(3-thiotriphosphate) with [35S]thiophosphate with the aid of glyceraldehyde-3-phosphate dehydrogenase and phosphoglycerate kinase in the presence of 3-phosphoglycerate. The method is also applicable for the synthesis of guanosine 5'-O-(3-[35S]thiotriphosphate).

Adenosine Triphosphate↗

On the stereochemistry of activation of phenylalanine by phenylalanyl-tRNA synthetase from baker's yeast.

Because of its chiralic alpha-phosphorus atom adenosine 5'-O-(1-thiotriphosphate) (ATPalphaS) exists in two diastereomeric forms, arbitrarily named (A) and (B). For phenylalanyl-tRNA synthetase ATPalphaS (A) is a substrate whereas ATPalphaS (B) is neither a substrate nor an inhibitor. During the ATPalphaS (A)/PPi exchange reaction with phenylalanyl-tRNA synthetase the configuration at the alpha-phosphorus is retained. The mechanistic implications of these findings are discussed. Preliminary investigations with several other aminoacyl-tRNA synthetases show that the stereochemical requirement with respect to the alpha-phosphorus of ATP is not identical for all aminoacyl-tRNA synthetases.

Adenosine Triphosphate↗

2'-Deoxy-2'-azidocytidine, a new inhibitor of DNA replication in mammalian cells.

Cell growth is reversibly inhibited by the nucleoside analogue, 2'-deoxy-2'-azidocytidine and the inhibition is a result of interference with DNA replication. The 5'-diphosphate of the analogue was earlier shown to specifically inactivate the enzyme ribonucleotide reductase in vitro. However, measurements of the pools of deoxyribonucleoside triphosphates in cells incubated in azidocytidine showed only minor changes which appeared to result from and not to be the cause of the inhibition of DNA replication. The DNA synthesized in polyoma-infected cells after incubation in azidocytidine showed a sedimentation pattern quite different from that seen after inhibition of DNA synthesis with arabinosyl cytosine or hydroxyurea. Experiments with nuclei isolated from azidocytidine-inhibited, polyoma-infected cells indicated (a) that the number of replicating molecules is decreased during the inhibition and (b) that upon incubation of the nuclei there is a rapid synthesis of DNA occurring in a new class of DNA molecules which are at a very early state of replication. Neither the 5'-triphosphate of azidocytidine nor the nucleoside itself inhibit DNA synthesis in vitro in isolated nuclei from polyoma-infected cells and at present the nature of the DNA-synthesis-inhibiting compound acting in the cells after addition of azidocytidine is unknown. Taken together the results suggest that azidocytidine inhibits DNA synthesis at an early stage, possible by blocking the initiation of DNA synthesis at the origin or by interfering with the elongation of newly initiated DNA molecules.

Cell Line↗

Interaction of substrate analogues with Escherichia coli DNA-dependent RNA polymerase.

The inhibition of RNA polymerase with ATP and UTP analogues modified in the phosphate and ribose moieties has been investigated. 1. Modification of the terminal phosphate with a loss of the negative charge [adenosine 5'-(3-O-methyl)triphosphate, Ki = 1.75 mM] substantially weakens the binding ability of these analogues to the enzyme whereas modification with retention of the charge is not so detrimental [adenosine tetraphosphate, Ki = 0.17 mM]. 2. 2'-Modified analogues are only weak competitive inhibitors [2'-amino-2'-deoxyadenosine 5'-triphosphate, Ki = 2.3 mM] of their corresponding substrates [ATP, Km = 0.07 mM] whereas 3'-modified analogues are extremely potent in their inhibition [3'-amino-3'-deoxyadenosine 5'-triphosphate, Ki = 2.3 muM]. 3. A difference was observed in the inhibition of the elongation step of RNA polymerase by ATP and UTP analogues. Thus ATP analogues showed a strong binding to the CT form of the poly[d(A-T)] ternary complex and only a weak binding to the CA form. UTP analogues, on the other hand, showed a similar binding to both forms of the complex.

DNA↗

L-Phenylalanine: tRNA ligase of Escherichia coli K10. The effect of O replaced by S substitution on substrate and ligand binding properties of ATP.

The Km and V values of the tRNA-charging reaction have been measured for L-phenylalanine:tRNA ligase and the geometric isomers of adenosine 5'-O-(1-thio)triphosphate, adenosine 5'-O-(2-thio)triphosphate and for 5'-O-(3-thio)triphosphate. All ATP analogs were found to be substrates with values of Km similar or (up to 10-fold) higher, and with values of V in the range of 10--30% compared with the natural substrate. The dissociation constants of the binary enzyme-nucleotide and ternary enzyme-nucleotide-L-phenylalaninol complexes were analysed as a function of the position of the sulfur atom indicating those phosphate groups which are involved in an enzyme-triphosphate interaction. The results are consistent with a participation of the beta and gamma-phosphate in the binary complex formation and an additional interaction at the positions of the alpha and beta-phosphate groups in the ternary complexes.

Adenosine Triphosphate↗

Affinity labeling of Escherichia coli DNA-dependent RNA polymerase with 5-formyl-l-(alpha-D-ribofuranosyl)uracil 5'-triphosphate.

5-Formyl-1-(alpha-D-ribofuranosyl)uracil 5'=triphosphate has been used to affinity label E. coli DNA-dependent RNA polymerase. It is a noncompetitive inhibitor of the enzyme with Ki=0.54 mM. A short preincubation of the enzyme and alpha-fo5UTP is required to achieve maximum inhibition, and the entent of the inhibition is dependent upon the alpha-fo5UTP concentration. When a preincubation mixture of alpha-fo5UTP/enzyme is diluted, the enzyme regains activity with time showing that the inhibition is reversible, presumably occurring by Schiff base formation between an amino group on the enzyme and the formyl group. Upon sodium borohydride reduction of an enzyme/alpha-fo5UTP preincubation mixture the enzyme is irreversibly inhibited. alpha-fo5UTP is more effective in inhibiting the enzyme than alpha-fo5U, and the inhibition is decreased by the presence of ATP, UTP, or GTP in the preincubation mixture, suggesting that inhibition is occurring at a triphosphate binding site. The stoichiometry of binding of alpha-fo5UTP to the enzyme was determined using the gamma-32P-labeled derivative. After a 20-s preincubation of enzyme/alpha-fo5UTP followed by NaBH4 reduction the stoichiometry of binding was 1.1:1 (alpha-fo5UTP bound: inactivated enzyme), and this rose to 2.42:1 after a 10-min preincubation. After a 20-s preincubation the [gamma-32P]-alpha-fo5UTP was shown to be located on the beta subunit of RNA polymerase by cellulose acetate electrophoresis in 6 M urea.

Affinity Labels↗

Synthesis and properties of diastereoisomers of adenosine 5'-(O-1-thiotriphosphate) and adenosine 5'-(O-2-thiotriphosphate).

The chemical synthesis of adenosine 5'-(O-1-thiotriphosphate) (ATPalphaS) and adenosine 5'-(O-2-thiotriphosphate) (ATPbetaS) is described. Both exist as a pair of diastereomers, A and B. The isomers of ATPalphaS can be distinguished on the basis of their different reaction rates with myokinase as well as nucleoside diphosphate kinase. With both enzymes, isomer A reacts fast whereas isomer B reacts considerably more slowly. Phosphorylation of a mixture of isomers of ADPalphaS with pyruvate or acetate kinase yields ATPalphaS, isomer A, whereas the phosphoryl transfer with creatine or arginine kinase yields isomer B. The isomers of ATPbetaS differ in their reactivity with myosin. Isomer A is readily hydrolyzed, whereas isomer B is not. However, isomer B reacts faster with nucleoside diphosphate kinase and ADP than isomer A. Phosphoryl transfer with pyruvate kinase onto ADPbetaS yields ATPbetaS, isomer A, with acetate kinase, isomer B.

Adenosine Triphosphate↗

Stereochemistry of polymerization by DNA-dependent RNA-polymerase from Escherichia coli: an investigation with a diastereomeric ATP-analogue.

The phosphodiester bond formation by DNA-dependent RNA-polymerase (RNA nucleotidyltransferase, nucleosidetriphosphate:RNA nucleotidyltransferase, EC 2.7.7.6) can in principle result in retention, inversion, or racemization of configuration at the alpha-phosphorus of the nucleoside 5'-triphosphate being polymerized. As a first step in elucidating the stereochemistry of this reaction, one diastereomer (A) of adenosine 5'-O-(1-thiotriphosphate) (ATPalphaS) was polymerized with UTP in the presence of poly(dA-dT)-poly(dA-dT). The resulting polymer was enzymatically cleaved to uridine 2',3'-cyclic phosphorothioate which was determined to be the endo-isomer by comparison with an authentic sample. This shows that no reacemization had occurred and that isomer A of ATPalphaS gives a phosphorothioate diester bond with the R-configuration. Whether this represents inversion of retention of configuration awaits elucidation of the absolute configuration of isomer A for ATPalphaS.

Adenosine Triphosphate↗