General fitness, health and nutrition · Public discussion

Nucleotides and the thermal cycle

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  1. The following notes were sent to me by John H Chalmers. He was looking for experiments connected
    with the thermal cycle and nucleotide polymerization. There are more than you might think. I asked
    if I could post it on the newsgroup for others and he said yes.

    1.

    Preparation of nucleotides and oligonucleotides by thermal reaction.

    Moravek, Josef; Skoda, Jan. Czech. (1969),

    Abstract

    Labeled title compds. are obtained by thermal phosphorylation of nucleosides

    which are heated at 155-65° with an alk. metal phosphate or nucleoside

    2'(3'😉-phosphate in the ratio 1:5. The mixt. is chromatographed and the

    products isolated from the eluate. Treating labeled nucleosides (14C, 3H, 35S)

    with nonradioactive phosphates gives compds. contg. soft b-emitters in the

    nucleoside moiety, reaction of unlabeled nucleosides with 32P-phosphates gives

    compds. contg. a hard b-emitter in the phosphate residue. The following

    nucleosides were phosphorylated: cytidine, uridine, pseudouridine, orotidine,

    deoxycytidine, deoxyuridine, thymidine; (with a change in the base)

    6-azauridine, 6-azacytidine; (with a substitution on the base) 5-hydroxyuridine;

    (with a change in the sugar) N-xylosyluracil; (antibiotics) tubercidine.

    2.

    Preparation of nucleotides and oligonucleotides labeled with either carbon-14,

    tritium, or phosphorus-32 or both, by thermal reaction of nucleosides with

    inorganic phosphate. Moravek, Josef; Skoda, Jan. Inst. Org. Chem.

    Biochem., Prague, Czech.

    Abstract

    The method is suitable for the prepn. of small quantities of radioactive

    nucleotides and oligonucleotides. Heating an equimolar mixt. of 14C- or

    3H-labeled uridine and inactive or radioactive inorg. phosphate yields 60%

    mixts. of labeled nucleotides and oligonucleotides which are sepd. by paper

    chromatog. and electrophoresis. The thermal phosphorylation is applicable to

    many anomalous nucleosides as well as those occurring naturally. The dependence

    of the reaction course on time, concn. of inorg. phosphate and the presence of

    MgSO4 is estd.

    3.

    Thermal phosphorylations. VI. Formation of oligonucleotides from uridine

    2'(3'😉-monophosphate. Moravek, Josef; Kopecky, Jan; Skoda, Jan.

    Ceskoslov. Akad. Ved, Prague, Czech.

    Abstract

    Heating 2'(3'😉-UMP 5 min. at 160° afforded a mixt. of uridine, dinucleoside

    diphosphates, and trinucleoside triphosphates, which were identified by paper

    chromatog. and electrophoresis and by treatment with alk. phosphatase. The

    oligonucleotides contained predominantly the 3' ® 5' internucleotidic bonds and

    a lesser amt. of the 2' ® 5' bonds. In comparison with earlier results (M.,
    K.

    and S., 1968), the ratio between the di- and trinucleotides changed in favor of

    the trinucleotides, which were obtained in 12% yield. In combination with the

    ion exchange sepn. of bond isomers, the above method is useful in the prepn. of

    labeled tri- and dinucleotides contg. solely the 3' ® 5' or 2' ® 5' bonds.

    Heating 2'(3'😉-UMP in HCONMe2 at 150° yielded uridine and uridine 2',3'-cyclic

    phosphate. Likewise the 2'(3'😉-phosphates of cytidine, adenosine, and guanosine

    cyclized under these conditions.

    4.

    Formation of oligonucleotides during heating of a mixture of uridine

    2'(3'😉-phosphate and uridine. Moravek, Josef. Ceskoslov. Akad. Ved.,

    Prague, Czech.

    Abstract

    At 160° the thermal phosphorylation of nucleosides by inorg. phosphate showed

    high thermal stability of nucleotides and dinucleotides. Of the 6 theoretically

    possible internucleotide bonds, only (3' ® 5'😉 and (2' ® 5'😉 bonds were formed.

    The pK values of nucleoside monophosphates and inorg. phosphate are similar and

    internucleotide bond formation between nucleotide and nucleoside under

    conditions of thermal phosphorylation seemed feasible. Dry uridine

    2'(3'😉-phosphate and uridine-14C (molar ratio 5:1) was heated 5 min. at 160° in

    vacuo and the mixt. resolved by repeated chromatog. on paper in 7:1:2

    iso-PrOH-NH4OH-H2O. Comparison of the chromatographic and electrophoretic

    mobilities of the individual fractions showed the presence of uridine

    2',3'-cyclic phosphate (I) and uridylyluridine (II). The fraction of lower

    chromatographic mobility than that of UMP was split completely by snake venom

    enzymes and contains only (2' ® 5'😉 or (3' ® 5'😉 internucleotide bonds.

    Cleavage of II with snake venom enzymes and bovine pancreatic ribonuclease and

    electrophoresis in borate buffer showed the presence of a 1:1 mixt. of uridylyl

    (2' ® 5'😉-uridine and uridylyl-(3' ® 5'😉-uridine. Cleavage of selected

    fractions by snake venom phosphodiesterase or 1.0N NaOH gave uridine-14C

    5'-phosphate or uridine-14C 2'(3'😉-phosphate. The formation of radioactive

    uridine 2'(3'😉-phosphate and detection of radioactivity in both uridine moieties

    of II indicated that the overall reaction is not a simple esterification. The

    thermal reaction is specific in the sense that the primary phosphate attacks

    only the 5'-OH group of the sugar. II was also obtained by heating a mixt. of

    uridine 2'(3'😉-phosphate and uridine in HCONMe2 to give mainly I.

    5.

    Process for preparing polynucleotides. (Farbwerke Hoechst A.-G.).

    Patent Family Information

    Abstract

    Polynucleotides are obtained by reaction of nucleotides or nucleosides with

    polyphosphoric acid alkyl esters in the presence of a tertiary cyclic

    nitrogenous base. Thus, to prepare polyadenylic acid (I), adenylic acid (350

    mg.) was mixed with 8 g. polyphosphoric acid ethyl ester, heated 18 hrs. in a

    rotating flask at 55°. dissolved in 75 ml. H2O, dialyzed 4 days against H2O to

    remove orthophosphate and low mol. wt. oligonucleotides, and lyophilized to give

    15% yield of I. If 2 cc. pyridine was present, yield was 20%. In 1% soln., I

    had sedimentation const. S28 = 2.5, diffusion const. D20 = 12, for calcd. mol.

    wt. of 20,000. The polynucleotides reacted like natural nucleic acid with

    regard to alkaline hyperchromia and helix formation.

    6.

    Thermal synthesis of internucleotide phosphodiester linkages. Schwartz,

    Alan; Fox, Sidney W. Florida State Univ., Tallahassee,

    Abstract

    An oligonucleotide (I) was prepd. from cytidine 2',3'-phosphate (II) by thermal

    synthesis (Schwartz, et al., Origin of Prebiological Systems, New York: Academic

    Press, 1964). II (5 g.) and 10 g. polyphosphoric acid was heated at 65° 1-2

    hrs., the product dissolved in NH4OH, and the soln. dialyzed 3 days,

    fractionated on Dowex-1 with a mixt. of 4M HCO2H and 0.5M HCO2NH4, dialyzed

    again for 3 days, and lyophilized to yield 1% I. I showed alk. hyperchromicity

    of .apprx.18%. Digestion by alk. phosphatase (III) showed 40% of the total P in

    form of terminal phosphates. Joint hydrolysis by III and pancreatic

    ribonuclease liberated addnl. 29% of the total P as compared with hydrolysis by

    III alone. It was concluded that 50-60% of the phosphate in I was present in

    the form of 2' or 3' phosphodiester linkages.

    7.

    Polymerization of unprotected 2'-deoxyribonucleoside 5'-phosphates at elevated

    temperature. Pongs, Olaf; Ts'o, Paul O. P.

    Abstract

    Polymn. of unprotected thymidine 5'-phosphate and 2'-deoxyribonucleoside

    5'-phosphate (disodium salts) in DMF at reflux 30 min was obsd. and studied.

    This reaction is catalyzed by proton(s) or a proton donor and is involved with

    P1,P2-dinucleosidyl 5'-pyrophosphate as a key intermediate. The main products

    are two series of oligomers with structural formulas of (pN)n and (pN)np; 5-10%

    of the oligonucleotides consist of at least one 5'-5' phosphodiester linkage (or

    less likely pyrophosphate linkage) as indicated by their resistance to spleen

    phosphodiesterase; no 3'-3' phosphodiester linkage was found since all materials

    are hydrolyzable by venom diesterase. With the best catalysts

    [b-imidazolyl-4(5)-propanoic acid or triethylamine hydrochloride], the yield of

    dimer to hexamer of thymidine oligonucleotides ranges from 12 to 5% of each

    species. The mechanisms of the synthetic and degradative processes are

    discussed. The study of this polymn. process may provide addnl. understanding

    about the prebiotic synthesis of polynucleotides.

    8.

    Abiogenic synthesis of oligonucleotides on kaolinite under the action of

    ultraviolet radiation. Strigunkova, T. F.; Lavrentiev, G. A.; Otroshchenko,

    V. A. A. N. Bakh Inst. Biochem., Moscow, USSR.

    Abstract

    Processes involved in the abiogenic polycondensation of nucleotides adsorbed on

    the clay mineral kaolinite under the action of UV radiation are considered. The

    dependence of the yield of synthesis products on irradn. dose was studied. The

    max. yield corresponds to a 6-h exposure. The newly synthesized substances were

    analyzed by ion-exchange chromatog. Some fractions were studied for the type of

    bonds they contained by venom phosphodiesterase and RNase T2 enzyme hydrolysis.

    Some of the products synthesized by exposure of AMP adsorbed on the surface of

    clay particles to UV radiation may be looked upon as oligonucleotides in which

    some fragments have 2'-5'-bonded and others 3'-5'-bonded nucleotides.

    9.

    Cyanamide mediated syntheses under plausible primitive earth conditions. II. The

    polymerization of deoxythymidine 5'-triphosphate. Sherwood E; Joshi A; Oro

    Abstract

    When an aqueous solution (pH 7.0) of 3H deoxythymidine 5'-triphosphate,

    deoxythymidine 5'-phosphate, 4-amino-5-imidazolecarboxamide, cyanamide and

    ammonium chloride was dried and heated at 60 degrees C for 18 h, oligomers were

    obtained in a yield of approximately 80%. After the chemical degradation of any

    pyrophosphate bonds present in these oligomers, linear polynucleotides of up to

    7-8 units in length were isolated by DEAE cellulose column chromatography and

    identified by enzymatic digestion procedures. The di- and trinucleotide

    fractions were degraded 87% and 100% by snake venom phosphodiesterase and 39%

    and 9% by spleen phosphodiesterase. This synthesis of deoxythymidine

    oligonucleotides was conducted under potentially prebiotic conditions and may

    offer a possible method for the synthesis of deoxyoligonucleotides on the

    primitive Earth.

    10.

    Early chemical evolution of nucleic acids: a theoretical model. Usher D A

    SCIENCE (1977 Apr 15),

    Abstract

    Recent experimental work suggests a possible cyclical pathway for early

    prebiotic oligonucleotide formation that involves (i) dry-state (nontemplate)

    synthesis of random copolymers with mixed 2',5' and 3',5' bonds, (ii) passage of

    these oligomers into solution at low temperatures, and (iii) a preferential

    hydrolysis of the 2',5' bond in any short helices that have formed. This early

    system could have selected for complementary sequences that were largely

    3',5'-linked, but may not have selected efficiently for a single enantiomer of

    ribose.

    11.

    Synthesis of purine and pyrimidine nucleosides under the influence of high

    temperature and uv irradiation. Kuzicheva, E. A.; Khenokh, M. A.; Tsupkina,

    N. V. Inst. Cytol., Leningrad, USSR.

    Abstract

    The formation of nucleosides from nucleic acid bases and 2-deoxy-D-ribose (I)

    was studied under conditions simulating those of the primitive earth. The uv

    irradn. of a dry mixt. of adenine and I at 170° for 30-240 min in a N, CO2, or O

    atm. yielded 3 different deoxyribonucleoside products. Two had higher mol. wts.

    than deoxyadenosine and were not further characterized. The other was

    identified as deoxyadenosine. The highest yield of this compd. was obtained in

    the CO2 atm. and the lowest in the O atm. The deoxyadenosine underwent thermal

    decompn. when exposed to 170° for >30 min in the O atm. Similar expts. with

    thymine only yielded a product with a mol. wt. greater than that of thymidine.

    Tom Hendricks

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