Literature DB >> 10631661

Mononucleotide gas-phase proton affinities as determined by the kinetic method.

K B Green-Church1, P A Limbach.   

Abstract

The goal of this work is to determine the proton affinities of (deoxy)nucleoside 5'- and 3'-monophosphates (mononucleotides) using the kinetic method with fast atom bombardment mass spectrometry. The proton affinities of the (deoxy)nucleoside 5'- and 3'-monophosphates yielded the following trend: (deoxy)adenosine monophosphates > (deoxy)guanosine monophosphates > (deoxy)cytidine monophosphates >> deoxythymidine/uridine monophosphates. In all cases the proton affinity decreases or remains the same with the addition of the phosphate group from those values reported for nucleosides. The proton affinity is dependent on the location of the phosphate backbone (5'-vs. 3'-phosphates): the 3'-monophosphates have lower proton affinities than the 5'-monophosphates except for the thymidine/uridine monophosphates where the trend is reversed. Molecular modeling was utilized to determine if multiple protonation sites and intramolecular hydrogen bond formation would influence the proton affinity measurements. Semiempirical calculations of the proton affinities at various locations on each mononucleotide were performed and compared to the experimental results. The possible influence of intramolecular hydrogen bonding between the nucleobases and the phosphate group on the measured and calculated proton affinities is discussed.

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Year:  2000        PMID: 10631661     DOI: 10.1016/S1044-0305(99)00116-6

Source DB:  PubMed          Journal:  J Am Soc Mass Spectrom        ISSN: 1044-0305            Impact factor:   3.109


  10 in total

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5.  Determination of substituent effects on the proton affinities of natural nucleosides by the kinetic method.

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Authors:  Z Wang; K X Wan; R Ramanathan; J S Taylor; M L Gross
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10.  Increased stability of nucleic acids containing 7-deaza-guanosine and 7-deaza-adenosine may enable rapid DNA sequencing by matrix-assisted laser desorption mass spectrometry.

Authors:  K Schneider; B T Chait
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  10 in total
  26 in total

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4.  DNA Oligonucleotide Fragment Ion Rearrangements Upon Collision-Induced Dissociation.

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6.  What Hinders Electron Transfer Dissociation (ETD) of DNA Cations?

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8.  Investigation of the initial fragmentation of oligodeoxynucleotides in a quadrupole ion trap: charge level-related base loss.

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9.  An experimental and theoretical study of the gas-phase decomposition of monoprotonated peptide nucleic acids.

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