Alternate Substrates and Isotope Effects as a Probe of the Malic Enzyme Reaction
Dissociation constants for alternate dirmcleotide substrates and competitive inhibitors suggest that the dinucleotide binding site of the Ascaris suum NAD-malic enzyme is hydrophobic in the vicinity of the nicotinamide ring. Changes in the divalent metal ion activator from Mg^2+ to Mn^2+ or Cd^2+ re...
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1988
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ndltd-unt.edu-info-ark-67531-metadc3308402020-07-15T07:09:31Z Alternate Substrates and Isotope Effects as a Probe of the Malic Enzyme Reaction Gavva, Sandhya Reddy dinucleotides NAD-malic enzyme isotope effects SCN-enzyme Enzymes. Ascaris suum. Isotopes. Dissociation constants for alternate dirmcleotide substrates and competitive inhibitors suggest that the dinucleotide binding site of the Ascaris suum NAD-malic enzyme is hydrophobic in the vicinity of the nicotinamide ring. Changes in the divalent metal ion activator from Mg^2+ to Mn^2+ or Cd^2+ results in a decrease in the dinucleotide affinity and an increase in the affinity for malate. Primary deuterium and 13-C isotope effects obtained with the different metal ions suggest either a change in the transition state structure for the hydride transfer or decarboxylation steps or both. Deuterium isotope effects are finite whether reactants are maintained at saturating or limiting concentrations with all the metal ions and dinucleotide substrates used. With Cd^2+ as the divalent metal ion, inactivation of the enzyme occurs whether enzyme alone is present or is turning over. Upon inactivation only Cd^2+ ions are bound to the enzyme which becomes denatured. Modification of the enzyme to give an SCN-enzyme decreases the ability of Cd^2+ to cause inactivation. The modified enzyme generally exhibits increases in K_NAD and K_i_metai and decreases in V_max as the metal size increases from Mg^2+ to Mn^2+ or Cd^2+, indicative of crowding in the site. In all cases, affinity for malate greatly decreases, suggesting that malate does not bind optimally to the modified enzyme. For the native enzyme, primary deuterium isotope effects increase with a concomitant decrease in the 13-C effects when NAD is replaced by an alternate dinucleotide substrate different in redox potential. This suggests that when the alternate dinucleotides are used, a switch in the rate limitation of the chemical steps occurs with hydride transfer more rate limiting than decarboxylation. Deuteration of malate decreases the 13-C effect with NAD for the native enzyme, but an increase in 13-C effect is obtained with alternate dinucleotides. These suggest the presence of a secondary 13-C effect in the hydride transfer step. This phenomenon is also applicable to the modified enzyme with NAD as the substrate. University of North Texas Cook, Paul F. Harris, Ben G. Jacobson, Myron Gracy, Robert W. 1988-08 Thesis or Dissertation ix, 118 leaves: ill. Text local-cont-no: 1002714856-Gavva call-no: 379 N81d no.2868 untcat: b1437794 https://digital.library.unt.edu/ark:/67531/metadc330840/ ark: ark:/67531/metadc330840 English Public Gavva, Sandhya Reddy Copyright Copyright is held by the author, unless otherwise noted. All rights reserved. |
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dinucleotides NAD-malic enzyme isotope effects SCN-enzyme Enzymes. Ascaris suum. Isotopes. |
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dinucleotides NAD-malic enzyme isotope effects SCN-enzyme Enzymes. Ascaris suum. Isotopes. Gavva, Sandhya Reddy Alternate Substrates and Isotope Effects as a Probe of the Malic Enzyme Reaction |
description |
Dissociation constants for alternate dirmcleotide substrates and competitive inhibitors suggest that the dinucleotide binding site of the Ascaris suum NAD-malic enzyme is hydrophobic in the vicinity of the nicotinamide ring. Changes in the divalent metal ion activator from Mg^2+ to Mn^2+ or Cd^2+ results in a decrease in the dinucleotide affinity and an increase in the affinity for malate. Primary deuterium and 13-C isotope effects obtained with the different metal ions suggest either a change in the transition state structure for the hydride transfer or decarboxylation steps or both. Deuterium isotope effects are finite whether reactants are maintained at saturating or limiting concentrations with all the metal ions and dinucleotide substrates used. With Cd^2+ as the divalent metal ion, inactivation of the enzyme occurs whether enzyme alone is present or is turning over. Upon inactivation only Cd^2+ ions are bound to the enzyme which becomes denatured. Modification of the enzyme to give an SCN-enzyme decreases the ability of Cd^2+ to cause inactivation. The modified enzyme generally exhibits increases in K_NAD and K_i_metai and decreases in V_max as the metal size increases from Mg^2+ to Mn^2+ or Cd^2+, indicative of crowding in the site. In all cases, affinity for malate greatly decreases, suggesting that malate does not bind optimally to the modified enzyme.
For the native enzyme, primary deuterium isotope effects increase with a concomitant decrease in the 13-C effects when NAD is replaced by an alternate dinucleotide substrate different in redox potential. This suggests that when the alternate dinucleotides are used, a switch in the rate limitation of the chemical steps occurs with hydride transfer more rate limiting than decarboxylation. Deuteration of malate decreases the 13-C effect with NAD for the native enzyme, but an increase in 13-C effect is obtained with alternate dinucleotides. These suggest the presence of a secondary 13-C effect in the hydride transfer step. This phenomenon is also applicable to the modified enzyme with NAD as the substrate. |
author2 |
Cook, Paul F. |
author_facet |
Cook, Paul F. Gavva, Sandhya Reddy |
author |
Gavva, Sandhya Reddy |
author_sort |
Gavva, Sandhya Reddy |
title |
Alternate Substrates and Isotope Effects as a Probe of the Malic Enzyme Reaction |
title_short |
Alternate Substrates and Isotope Effects as a Probe of the Malic Enzyme Reaction |
title_full |
Alternate Substrates and Isotope Effects as a Probe of the Malic Enzyme Reaction |
title_fullStr |
Alternate Substrates and Isotope Effects as a Probe of the Malic Enzyme Reaction |
title_full_unstemmed |
Alternate Substrates and Isotope Effects as a Probe of the Malic Enzyme Reaction |
title_sort |
alternate substrates and isotope effects as a probe of the malic enzyme reaction |
publisher |
University of North Texas |
publishDate |
1988 |
url |
https://digital.library.unt.edu/ark:/67531/metadc330840/ |
work_keys_str_mv |
AT gavvasandhyareddy alternatesubstratesandisotopeeffectsasaprobeofthemalicenzymereaction |
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1719328554670358528 |