Heat-stable alkaline phosphatase in uterine cancer, with special reference to its histochemical heat-stability and the L-phenylalanine inhibition test

1981 ◽  
Vol 13 (6) ◽  
pp. 941-951 ◽  
Author(s):  
Shiro Nozawa ◽  
Hiroaki Ohta ◽  
Shigeru Izumi ◽  
Shigetaka Hayashii ◽  
Fumio Tsutsui ◽  
...  
1983 ◽  
Vol 29 (2) ◽  
pp. 260-263 ◽  
Author(s):  
W C Maslow ◽  
H A Muensch ◽  
F Azama ◽  
A S Schneider

Abstract We developed a simple, sensitive enzymatic assay involving the fluorogenic substrate naphthol AS-MX phosphate [(3-hydroxy-2-naphthoic acid 2,4-dimethylanilide) phosphate] to measure heat-stable alkaline phosphatase (EC 3.1.3.1), the Regan isoenzyme, in human serum. The day-to-day CV was 5.7% for a serum activity of 0.080 arbitrary units/L. Measurable amounts of enzyme were detected in most normal individuals. The mean for 51 nonsmokers was 0.068 (SD 0.037) arb. units/L; for 25 smokers it was 0.440 (SD 0.360) arb. units/L. Activity of this isoenzyme in smokers was as much as 10-fold the upper normal limit for nonsmokers. Activation of this tumor marker by smoking has not received attention hitherto. We conclude that a truly normal range can only be established among nonsmokers. The isoenzymes in smokers, nonsmokers, and pregnant women were similar in their heat stability, immunologic cross reactivity, and inhibition by L-phenylalanine.


2020 ◽  
Vol 154 (Supplement_1) ◽  
pp. S8-S8
Author(s):  
Kayode Balogun ◽  
Megan Lee ◽  
Kelly Doyle

Abstract Introduction Alkaline phosphatase (ALP) is important in the diagnostic work-up for hepatobiliary and bone diseases. ALP isoenzymes are expressed in the bone, liver, kidney, placenta, and intestine, and vary in heat stability and electrophoretic mobility. Distinguishing the different ALP isoenzymes is clinically important for the diagnosis of pathologies associated with elevated ALP activity. Current modalities available to measure ALP isoenzymes utilize the heat stability, electrophoretic mobility, and immunochemical properties of the isoenzymes. The differences inherent in these methods allow for unique benefits of each method in identifying ALP isoenzymes. The objective of this study was to compare bone, liver, and placental ALP isoenzyme results determined by heat fractionation and gel electrophoresis and to characterize the heat-stable non-liver fraction (t1/2 >11 min), reported by heat fractionation, using gel electrophoresis. Methods A total of 72 de-identified serum samples that span a wide range of known ALP isoenzyme concentrations and disease states were used to measure ALP using gel electrophoresis and heat fractionation. Heat fractionation was achieved by selective inactivation of the isoenzymes at 56 °C in 10, 15, and 20-minute intervals. Log-percent activity of the total and heat-inactivated fractions at each time point was plotted against time in minutes. The linear activity decay between 10 and 20 minutes determined the relative amount of liver isoenzyme activity and the slope of the line determined the half-lives of ALP isoenzymes. Electrophoresis was performed according to the manufacturer’s protocol using the Hydragel ISO-PAL gel to resolve ALP isoenzymes based on their electrophoretic mobility and interaction with lectin. ALP isoenzymes were quantified by densitometry. Results Our results show a significant correlation coefficient (r) of 0.98, Deming regression slope of 1.1, and bias of -1.2% for the liver isoenzyme (n=43). However, liver fractions are not distinguishable by heat fractionation when heat-stable isoforms are present. The bone fraction (n=43) showed a coefficient of correlation of 0.86, slope of 0.55, and bias of -31%. Although, with a small sample size (n=6), the placental isoenzyme showed a significant agreement between the two methods: r = 0.999, slope = 0.98, and a -3.5% bias. Of the non-liver fractions reported by heat fractionation (n=13, ALP >100 U/L) eleven (85%) showed distinct qualitative bands in the intestinal lane on gel electrophoresis; however, quantitative values did not correlate between the two methods. Conclusion Our data support an agreement between the heat fractionation and gel electrophoresis methods for the quantitative determination of liver and placental alkaline phosphatase isoenzymes. Although there is an association between the two methods, the activity of the bone isoenzyme was underestimated by the gel electrophoresis method, likely due to saturation of the gel and densitometry scan because of elevated protein concentrations. The non-liver fractions were qualitatively identified as intestinal isoenzyme.


Genetics ◽  
1979 ◽  
Vol 91 (3) ◽  
pp. 521-535
Author(s):  
John A Kiger ◽  
Eric Golanty

ABSTRACT Two cyclic AMP phosphodiesterase enzymes (E.C.3.1.4.17) are present in homogenates of adult Drosophila melanogaster. The two enzymes differ from one another in heat stability, affinity for Mg++, Ca++ activation and molecular weight. They do not differ markedly in their affinities for cyclic AMP, and both exhibit anomalous Michaelis-Menten kinetics. The more heatlabile enzyme is controlled in a dosage-dependent manner by chromomere 3D4 of the X chromosome and is absent in flies that are deficient for chromomere 3D4. Chromomere 3D4 is also necessary for the maintenance of normal cAMP levels, for male fertility, and for normal female fertility and oogenesis. The structural gene(s) for the more heat-stable enzyme is located outside of chromomeres 3C12-3D4. Whether 3D4 contains a structural gene, or a regulatory gene necessary for the presence of the labile enzyme, remains to be determined.


Kanzo ◽  
1977 ◽  
Vol 18 (5) ◽  
pp. 314-318
Author(s):  
Hideo NISHIMURA ◽  
Daizo KAN ◽  
Junsuke NAWATA ◽  
Mituru ODAWARA ◽  
Mikio HAYAKAWA ◽  
...  

1989 ◽  
Vol 180 (1) ◽  
pp. 23-34 ◽  
Author(s):  
Doina Onica ◽  
Kerstin Rosendahl ◽  
Lennart Waldenlind

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