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1.
Int J Mol Sci ; 16(8): 17798-811, 2015 Aug 03.
Article in English | MEDLINE | ID: mdl-26247935

ABSTRACT

2,6-Bis(1,4,7,10-tetraazacyclododecan-1-ylmethyl)pyridine (11a) and 1,3-bis(1,4,7,10-tetraazacyclododecan-1-ylmethyl)benzene (11b) have been shown to accelerate at 50 mmol·L-1 concentration both the cleavage and mutual isomerization of uridylyl-3',5'-uridine and uridylyl-2',5'-uridine by up to two orders of magnitude. The catalytically active ionic forms are the tri- (in the case of 11b) tetra- and pentacations. The pyridine nitrogen is not critical for efficient catalysis, since the activity of 11b is even slightly higher than that of 11a. On the other hand, protonation of the pyridine nitrogen still makes 11a approximately four times more efficient as a catalyst, but only for the cleavage reaction. Interestingly, the respective reactions of adenylyl-3',5'-adenosine were not accelerated, suggesting that the catalysis is base moiety selective.


Subject(s)
Heterocyclic Compounds, 1-Ring/chemistry , Pyridines/chemistry , RNA/chemistry , Uridine/chemistry , Catalysis , Heterocyclic Compounds, 1-Ring/chemical synthesis , Hydrolysis , Isomerism , Pyridines/chemical synthesis
2.
Org Biomol Chem ; 13(16): 4737-42, 2015 Apr 28.
Article in English | MEDLINE | ID: mdl-25805021

ABSTRACT

4'-(Hydroxymethyl)uridylyl-3',5'-thymidine, an RNA model bearing an extra hydroxymethyl group at the 4'-position of the 3'-linked nucleoside, has been prepared and its cleavage and isomerization reactions studied over a wide pH range (from 0 to 12). Overall, the pH-rate profiles of these reactions were very similar to those of uridylyl-3',5'-uridine (UpU) - only a very modest acceleration was observed under acidic and neutral conditions. Evidently, hydrogen bond assistance by the additional hydroxymethyl function does not play a significant role.


Subject(s)
Dinucleoside Phosphates/chemical synthesis , Esters/chemistry , Thymidine/chemistry , Thymidine/chemical synthesis , Uridine/chemistry , Catalysis , Chromatography, High Pressure Liquid , Hydrogen Bonding , Hydrogen-Ion Concentration , Hydrolysis , Kinetics , Nucleosides/chemistry , Organophosphates/chemistry , Phosphoranes/chemistry , RNA/chemistry , Ribonucleosides/chemistry
3.
Chemistry ; 19(37): 12424-34, 2013 Sep 09.
Article in English | MEDLINE | ID: mdl-23897743

ABSTRACT

A dinucleoside-3',5'-phosphodiester model, 5'-amino-4'-aminomethyl-5'-deoxyuridylyl-3',5'-thymidine, incorporating two aminomethyl functions in the 4'-position of the 3'-linked nucleoside has been prepared and its hydrolytic reactions studied over a wide pH range. The amino functions were found to accelerate the cleavage and isomerization of the phosphodiester linkage in both protonated and neutral form. When present in protonated form, the cleavage of the 3',5'-phosphodiester linkage and its isomerization to a 2',5'-linkage are pH-independent and 50-80 times as fast as the corresponding reactions of uridylyl-3',5'-uridine (3',5'-UpU). The cleavage of the resulting 2',5'-isomer is also accelerated, albeit less than with the 3',5'-isomer, whereas isomerization back to the 3',5'-diester is not enhanced. When the amino groups are deprotonated, the cleavage reactions of both isomers are again pH-independent and up to 1000-fold faster than the pH-independent cleavage of UpU. Interestingly, the 2'- to 3'-isomerization is now much faster than its reverse reaction. The mechanisms of these reactions are discussed. The rate accelerations are largely accounted for by electrostatic and hydrogen-bonding interactions of the protonated amino groups with the phosphorane intermediate.


Subject(s)
Dinucleoside Phosphates/chemistry , Oligonucleotides/chemistry , Phosphoranes/chemistry , RNA/chemistry , Ribonucleosides/chemistry , Amines/chemistry , Dinucleoside Phosphates/metabolism , Hydrogen Bonding , Hydrogen-Ion Concentration , Hydrolysis , Isomerism , Kinetics , Oligonucleotides/metabolism , RNA/metabolism , Ribonucleosides/metabolism
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