Studies of Enzyme Mechanism Using Isotopic Probes

The isotope partitioning studies of the Ascaris suum NAD-malic enzyme reaction were examined with five transitory complexes including E:NAD, E:NAD:Mg, E:malate, E:Mg:malate, and E:NAD:malate. Three productive complexes, E:NAD, E:NAD:Mg, and E:Mg:malate, were obtained, suggesting a steady-state rando...

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Main Author: Chen, Cheau-Yun
Other Authors: Cook, Paul F.
Format: Others
Language:English
Published: North Texas State University 1987
Subjects:
Online Access:https://digital.library.unt.edu/ark:/67531/metadc331996/
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spelling ndltd-unt.edu-info-ark-67531-metadc3319962020-07-15T07:09:31Z Studies of Enzyme Mechanism Using Isotopic Probes Chen, Cheau-Yun isotope partitioning studies enzyme mechanism Ascaris suum NAD-malic enzyme Enzyme kinetics. Isotope separation. The isotope partitioning studies of the Ascaris suum NAD-malic enzyme reaction were examined with five transitory complexes including E:NAD, E:NAD:Mg, E:malate, E:Mg:malate, and E:NAD:malate. Three productive complexes, E:NAD, E:NAD:Mg, and E:Mg:malate, were obtained, suggesting a steady-state random mechanism. Data for trapping with E:14C-NAD indicate a rapid equilibrium addition of Mg2+ prior to the addition of malate. Trapping with 14C-malate could only be obtained from the E:Mg2+:14C-malate complex, while no trapping from E:14C-malate was obtained under feasible experimental conditions. Most likely, E:malate is non-productive, as has been suggested from the kinetic analysis. The experiment with E:NAD:malate could not be carried out due to the turnover of trace amounts of malate dehydrogenase in the pulse solution. The equations for the isotope partitioning studies varying two substrates in the chase solution in an ordered terreactant reaction were derived, allowing a determination of the relative rates of substrate dissociation to the catalytic reaction for each of the productive transitory complexes. NAD and malate are released from the central complex at an identical rate, equal to the catalytic rate. North Texas State University Cook, Paul F. Harris, Ben G. Gracy, Robert W. Wu, Edward Ming-chi, 1938- 1987-08 Thesis or Dissertation ix, 142 leaves: ill. Text local-cont-no: 1002715403-Chen call-no: 379 N81d no.2694 untcat: b1398348 oclc: 17746680 https://digital.library.unt.edu/ark:/67531/metadc331996/ ark: ark:/67531/metadc331996 English Public Chen, Cheau-Yun Copyright Copyright is held by the author, unless otherwise noted. All rights reserved.
collection NDLTD
language English
format Others
sources NDLTD
topic isotope partitioning studies
enzyme mechanism
Ascaris suum
NAD-malic enzyme
Enzyme kinetics.
Isotope separation.
spellingShingle isotope partitioning studies
enzyme mechanism
Ascaris suum
NAD-malic enzyme
Enzyme kinetics.
Isotope separation.
Chen, Cheau-Yun
Studies of Enzyme Mechanism Using Isotopic Probes
description The isotope partitioning studies of the Ascaris suum NAD-malic enzyme reaction were examined with five transitory complexes including E:NAD, E:NAD:Mg, E:malate, E:Mg:malate, and E:NAD:malate. Three productive complexes, E:NAD, E:NAD:Mg, and E:Mg:malate, were obtained, suggesting a steady-state random mechanism. Data for trapping with E:14C-NAD indicate a rapid equilibrium addition of Mg2+ prior to the addition of malate. Trapping with 14C-malate could only be obtained from the E:Mg2+:14C-malate complex, while no trapping from E:14C-malate was obtained under feasible experimental conditions. Most likely, E:malate is non-productive, as has been suggested from the kinetic analysis. The experiment with E:NAD:malate could not be carried out due to the turnover of trace amounts of malate dehydrogenase in the pulse solution. The equations for the isotope partitioning studies varying two substrates in the chase solution in an ordered terreactant reaction were derived, allowing a determination of the relative rates of substrate dissociation to the catalytic reaction for each of the productive transitory complexes. NAD and malate are released from the central complex at an identical rate, equal to the catalytic rate.
author2 Cook, Paul F.
author_facet Cook, Paul F.
Chen, Cheau-Yun
author Chen, Cheau-Yun
author_sort Chen, Cheau-Yun
title Studies of Enzyme Mechanism Using Isotopic Probes
title_short Studies of Enzyme Mechanism Using Isotopic Probes
title_full Studies of Enzyme Mechanism Using Isotopic Probes
title_fullStr Studies of Enzyme Mechanism Using Isotopic Probes
title_full_unstemmed Studies of Enzyme Mechanism Using Isotopic Probes
title_sort studies of enzyme mechanism using isotopic probes
publisher North Texas State University
publishDate 1987
url https://digital.library.unt.edu/ark:/67531/metadc331996/
work_keys_str_mv AT chencheauyun studiesofenzymemechanismusingisotopicprobes
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