Cargando…
Role of the Active Site Guanine in the glmS Ribozyme Self-Cleavage Mechanism: Quantum Mechanical/Molecular Mechanical Free Energy Simulations
[Image: see text] The glmS ribozyme catalyzes a self-cleavage reaction at the phosphodiester bond between residues A-1 and G1. This reaction is thought to occur by an acid–base mechanism involving the glucosamine-6-phosphate cofactor and G40 residue. Herein quantum mechanical/molecular mechanical fr...
Autores principales: | , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical
Society
2014
|
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4308743/ https://www.ncbi.nlm.nih.gov/pubmed/25526516 http://dx.doi.org/10.1021/ja510387y |
_version_ | 1782354574196080640 |
---|---|
author | Zhang, Sixue Ganguly, Abir Goyal, Puja Bingaman, Jamie L. Bevilacqua, Philip C. Hammes-Schiffer, Sharon |
author_facet | Zhang, Sixue Ganguly, Abir Goyal, Puja Bingaman, Jamie L. Bevilacqua, Philip C. Hammes-Schiffer, Sharon |
author_sort | Zhang, Sixue |
collection | PubMed |
description | [Image: see text] The glmS ribozyme catalyzes a self-cleavage reaction at the phosphodiester bond between residues A-1 and G1. This reaction is thought to occur by an acid–base mechanism involving the glucosamine-6-phosphate cofactor and G40 residue. Herein quantum mechanical/molecular mechanical free energy simulations and pK(a) calculations, as well as experimental measurements of the rate constant for self-cleavage, are utilized to elucidate the mechanism, particularly the role of G40. Our calculations suggest that an external base deprotonates either G40(N1) or possibly A-1(O2′), which would be followed by proton transfer from G40(N1) to A-1(O2′). After this initial deprotonation, A-1(O2′) starts attacking the phosphate as a hydroxyl group, which is hydrogen-bonded to deprotonated G40, concurrent with G40(N1) moving closer to the hydroxyl group and directing the in-line attack. Proton transfer from A-1(O2′) to G40 is concomitant with attack of the scissile phosphate, followed by the remainder of the cleavage reaction. A mechanism in which an external base does not participate, but rather the proton transfers from A-1(O2′) to a nonbridging oxygen during nucleophilic attack, was also considered but deemed to be less likely due to its higher effective free energy barrier. The calculated rate constant for the favored mechanism is in agreement with the experimental rate constant measured at biological Mg(2+) ion concentration. According to these calculations, catalysis is optimal when G40 has an elevated pK(a) rather than a pK(a) shifted toward neutrality, although a balance among the pK(a)’s of A-1, G40, and the nonbridging oxygen is essential. These results have general implications, as the hammerhead, hairpin, and twister ribozymes have guanines at a similar position as G40. |
format | Online Article Text |
id | pubmed-4308743 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | American Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-43087432015-12-19 Role of the Active Site Guanine in the glmS Ribozyme Self-Cleavage Mechanism: Quantum Mechanical/Molecular Mechanical Free Energy Simulations Zhang, Sixue Ganguly, Abir Goyal, Puja Bingaman, Jamie L. Bevilacqua, Philip C. Hammes-Schiffer, Sharon J Am Chem Soc [Image: see text] The glmS ribozyme catalyzes a self-cleavage reaction at the phosphodiester bond between residues A-1 and G1. This reaction is thought to occur by an acid–base mechanism involving the glucosamine-6-phosphate cofactor and G40 residue. Herein quantum mechanical/molecular mechanical free energy simulations and pK(a) calculations, as well as experimental measurements of the rate constant for self-cleavage, are utilized to elucidate the mechanism, particularly the role of G40. Our calculations suggest that an external base deprotonates either G40(N1) or possibly A-1(O2′), which would be followed by proton transfer from G40(N1) to A-1(O2′). After this initial deprotonation, A-1(O2′) starts attacking the phosphate as a hydroxyl group, which is hydrogen-bonded to deprotonated G40, concurrent with G40(N1) moving closer to the hydroxyl group and directing the in-line attack. Proton transfer from A-1(O2′) to G40 is concomitant with attack of the scissile phosphate, followed by the remainder of the cleavage reaction. A mechanism in which an external base does not participate, but rather the proton transfers from A-1(O2′) to a nonbridging oxygen during nucleophilic attack, was also considered but deemed to be less likely due to its higher effective free energy barrier. The calculated rate constant for the favored mechanism is in agreement with the experimental rate constant measured at biological Mg(2+) ion concentration. According to these calculations, catalysis is optimal when G40 has an elevated pK(a) rather than a pK(a) shifted toward neutrality, although a balance among the pK(a)’s of A-1, G40, and the nonbridging oxygen is essential. These results have general implications, as the hammerhead, hairpin, and twister ribozymes have guanines at a similar position as G40. American Chemical Society 2014-12-19 2015-01-21 /pmc/articles/PMC4308743/ /pubmed/25526516 http://dx.doi.org/10.1021/ja510387y Text en Copyright © 2014 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes. |
spellingShingle | Zhang, Sixue Ganguly, Abir Goyal, Puja Bingaman, Jamie L. Bevilacqua, Philip C. Hammes-Schiffer, Sharon Role of the Active Site Guanine in the glmS Ribozyme Self-Cleavage Mechanism: Quantum Mechanical/Molecular Mechanical Free Energy Simulations |
title | Role of
the Active Site Guanine in the glmS Ribozyme Self-Cleavage
Mechanism: Quantum Mechanical/Molecular Mechanical
Free Energy Simulations |
title_full | Role of
the Active Site Guanine in the glmS Ribozyme Self-Cleavage
Mechanism: Quantum Mechanical/Molecular Mechanical
Free Energy Simulations |
title_fullStr | Role of
the Active Site Guanine in the glmS Ribozyme Self-Cleavage
Mechanism: Quantum Mechanical/Molecular Mechanical
Free Energy Simulations |
title_full_unstemmed | Role of
the Active Site Guanine in the glmS Ribozyme Self-Cleavage
Mechanism: Quantum Mechanical/Molecular Mechanical
Free Energy Simulations |
title_short | Role of
the Active Site Guanine in the glmS Ribozyme Self-Cleavage
Mechanism: Quantum Mechanical/Molecular Mechanical
Free Energy Simulations |
title_sort | role of
the active site guanine in the glms ribozyme self-cleavage
mechanism: quantum mechanical/molecular mechanical
free energy simulations |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4308743/ https://www.ncbi.nlm.nih.gov/pubmed/25526516 http://dx.doi.org/10.1021/ja510387y |
work_keys_str_mv | AT zhangsixue roleoftheactivesiteguanineintheglmsribozymeselfcleavagemechanismquantummechanicalmolecularmechanicalfreeenergysimulations AT gangulyabir roleoftheactivesiteguanineintheglmsribozymeselfcleavagemechanismquantummechanicalmolecularmechanicalfreeenergysimulations AT goyalpuja roleoftheactivesiteguanineintheglmsribozymeselfcleavagemechanismquantummechanicalmolecularmechanicalfreeenergysimulations AT bingamanjamiel roleoftheactivesiteguanineintheglmsribozymeselfcleavagemechanismquantummechanicalmolecularmechanicalfreeenergysimulations AT bevilacquaphilipc roleoftheactivesiteguanineintheglmsribozymeselfcleavagemechanismquantummechanicalmolecularmechanicalfreeenergysimulations AT hammesschiffersharon roleoftheactivesiteguanineintheglmsribozymeselfcleavagemechanismquantummechanicalmolecularmechanicalfreeenergysimulations |