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J. Biol. Chem., Vol. 265, Issue 1, 166-170, Jan, 1990
YP Lin and GM Carman
A detailed kinetic analysis of purified yeast membrane-associated
phosphatidate phosphatase was performed using Triton X- 100/phosphatidate
mixed micelles. Enzyme activity was dependent on the bulk and surface
concentrations of phosphatidate. These results were consistent with the
"surface dilution" kinetic scheme (Deems, R. A., Eaton, B. R., and Dennis,
E. A. (1975) J. Biol. Chem. 250, 9013-9020) where phosphatidate phosphatase
binds to the mixed micelle surface before binding to its substrate and
catalysis occurs. Phosphatidate phosphatase was shown to physically
associate with Triton X-100 micelles in the absence of phosphatidate,
however, the enzyme was more tightly associated with micelles when its
substrate was present. The enzyme had 5- to 6-fold greater affinity
(reflected in the dissociation constant nKsA/chi) for Triton X-100 micelles
containing dioleoyl- phosphatidate and dipalmitoyl-phosphatidate when
compared to micelles containing dicaproyl-phosphatidate. The Vmax for
dioleoyl-phosphatidate was 3.8-fold higher than the Vmax for
dipalmitoyl-phosphatidate, whereas the interfacial Michaelis constant chi
KmB for dipalmitoyl- phosphatidate was 3-fold lower than the chi KmB for
dioleoyl- phosphatidate. The specificity constants (Vmax/chi KmB) of both
substrates were similar which indicated that dioleoyl-phosphatidate and
dipalmitoyl-phosphatidate were equally good substrates. Based on catalytic
constants (Vmax and chi KmB), dicaproyl-phosphatidate was the best
substrate with an 11- and 14-fold greater specificity constant when
compared to dioleoyl-phosphatidate and dipalmitoyl-phosphatidate,
respectively.
Kinetic analysis of yeast phosphatidate phosphatase toward Triton X- 100/phosphatidate mixed micelles
Department of Food Science, Cook College, New Jersey Agricultural Experiment Station, Rutgers University, New Brunswick 08903.
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