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Molecular characterization of the type 2 phosphatidic acid phosphatase.

Phosphatidic acid phosphatase (PAP) converts phosphatidic acid to diacylglycerol, thus regulating the de novo synthesis of glycerolipids and also signal transduction mediated by phospholipase D. We initially succeeded in the cDNA cloning of the mouse 35 kDa PAP bound to plasma membranes (type 2 enzyme). This work subsequently led us to the identification of two human PAP isozymes designated 2a and 2b. A third human PAP isozyme (2c) has also been described. The cloned enzymes are, in common, N-glycosylated and possess six transmembrane domains. The transmembrane dispositions of these enzymes are predicted and the catalytic sites are tentatively located in the 2nd and 3rd extracellular loops, thus suggesting that the type 2 PAPs may act as ecto-enzymes dephosphorylating exogenous substrates. Furthermore, the type 2 PAPs have been proposed to belong to a novel phosphatase superfamily consisting of a number of soluble and membrane-bound enzymes. In vitro enzyme assays show that the type 2 PAPs can dephosphorylate lyso-phosphatidate, ceramide-1-phosphate, sphingosine-1-phosphate and diacylglycerol pyrophosphate. Although the physiological implications of such a broad substrate specificity need to be further investigated, the type 2 PAPs appear to metabolize a wide range of lipid mediators derived from both glycero- and sphingolipids.

Amino Acid Sequence↗

The effect of pH and temperature on the stability and enzymatic activity of prostatic acid phosphatase. Studies on the optimization of a continuous monitored determination of acid phosphatase, II.

The catalytic activity and the stability of prostatic acid phosphatase were studied with respect to pH and temperature: 1. Enzymatic activity in serum decreases with time, and the rate of decrease depends on pH and temperature. Half life times were estimated. 2. To preserve at least 90% of its original activity, serum must be cooled as soon as possible below room temperature and/or the pH must be lowered to 6. 3. Considering the effect of pH on side reactions and kinetic parameters, a pH of 5.2 is recommended for the assay. 4. Between 25 and 37 degrees C, the value for Km app, in the absence of alcohols, is constant within the limits of error. In the presence of alcohols there is a significant increase of Km app at lower temperatures, and higher substrate concentrations are needed to avoid nonsaturation of the enzyme. vmax increases with temperature. Inactivation is observed above 45 degrees C, especially in the presenc of alcohols. 5. The Arrhenius plot shows a strict linear regression between 20 degrees C and 40 degrees C, in the presence or absence of 1,4-butanediol, 1,5-pentanediol or 1,6-hexanediol. 6. Temperature conversion factors for catalytic activity were calculated to be: 1.33 (25 to 30 degrees C), 1.96 (25 to 37 degrees C) and 1.47 (30 to 37 degrees C).

Acid Phosphatase↗

Acid phosphatase: new developments.

Acid phosphatase was the first "tumor marker" to be measured in the blood, and over 40 years have passed since an elevation of the serum acid phosphatase level was observed in patients with prostatic carcinoma. However, significant elevations in the level of this enzyme have been observed in other diseases, as well as elevations of other tissue phosphatases. Many improvements in the colorimetric technique have been introduced, but none has been used successfully to detect the tissue origin of this ubiquitous enzyme. The finding that prostatic acid phosphatase is antigenically distinct from acid phosphatase of other tissues opened a new horizon in the measurement of acid phosphatase in prostatic cancer. On the basis of this immunochemical specificity, several immunoassays have been employed for determining the prostatic acid phosphatase level.

Acid Phosphatase↗

Characterization of antigenic sites of human prostatic acid phosphatase.

Human prostatic acid phosphatase [PAP] is antigenically uniquely different from acid phosphatases of other tissue origins. Nevertheless, a small degree of antigenic cross-reactivity between PAP and other lysosomal acid phosphatase(s) [LAP] has been suspected. In order to resolve this question, we have adopted two approaches: one involving structural studies by peptide mapping, and the other involving topological mapping through the use of uniquely defined antibodies. Purified PAP was dissociated into subunits and was further cleaved by chemical and enzymological methods. The limited digestion of PAP by submaxillary protease yielded three fragments [Sp-1, 2, and 3]. One of the fragments, Sp-3 [Mr = 11,000-12,000], was shown to regain catalytic activity after interaction with anti-PAP antibodies. This along with other data suggested that the active site is localized in the Sp-3 fragment. These submaxillary protease fragments were also used in the antigenic studies. For the detailed antigenic mapping studies, we prepared 12 monoclonal anti-PAP antibodies. These monoclonal anti-PAP antibodies exhibited a remarkably specific binding to PAP, particularly to the Sp-1 fragment, without binding to other acid phosphatase preparations. We also prepared lysosomal acid phosphatase [LAP] and raised anti-LAP antibodies in rabbits. The anti-LAP antibodies were fractionated into subpopulations by the preparative isoelectric focusing method. Three anti-LAP antibody subpopulations [pI 5.2, 6.9, and 7.5] exhibited specific binding to LAP. However, two anti-LAP subpopulations [pI 5.3 and and 6.8] showed binding to the Sp-3 fragment, an active site fragment of PAP. Thus, the PAP molecule seems to consist of three domains, namely, Sp-1, Sp-3, and Sp-2. Sp-3, which is the active site domain, is an antigenically cross-reactive region. The Sp-1 domain represents an antigenically unique region of PAP, whereas none of the antibodies studied thus far bind to the Sp-2 fragment.

Acid Phosphatase↗

Pulmonary phosphatidic acid phosphatase. A comparative study of the aqueously dispersed phosphatidate-dependent and membrane-bound phosphatidate-dependent phosphatidic acid phosphatase activities of rat lung.

1. The properties of the aqueously dispersed phosphatidate-dependent phosphatidic acid phosphatase (EC 3.1.3.4) activities of rat lung have been studied in microsomal and cytosol preparations and compared with the properties of the membrane-bound phosphatidate-dependent activities. 2. The microsomal phosphatidic acid phosphatase displayed a prominent pH optimum at 6.5 with a minor peak which varied between 7.5--8 in different experiments. With the cytosol, the major activity was at the higher pH (7.5--8.0) but a distinct optimum was also observed at pH 6.0--6.5. With the membrane-bound substrate, a single broad optimum was observed between pH 7.4 and 8.0 with the cytosol and 6.5--7.5 with the microsomal fraction. 3. Subcellular fractionation studies revealed that the microsomal fraction possessed the greatest proportion of the total phosphatidic acid phosphatase activity and the highest relative specific activity. However, studies with marker enzymes indicated that the aqueously dispersed phosphatidate-dependent activity could be present in plasma membrane, lysosomes and osmiophilic lamellar bodies as well as in the endoplasmic reticulum. 4. The aqueously dispersed phosphatidic acid-dependent activities present in the microsomal and supernatant fractions were inhibited by Ca2+, Mn2+, F- and by high concentrations of Mg2+. In contrast to the membrane-bound phosphatidate-dependent activities, there was little Mg2+ stimulation and only a very slight inhibitory effect was noted with EDTA. A small EDTA-dependent Mg2+ stimulation could be observed with the microsomal fraction but only at the lower pH optimum (6.5). 5. The presence of a number of phosphate esters tended to stimulate rather than inhibit the microsomal activity, indicating that the hydrolase is relatively specific for lipid substrates. Marked inhibitions were noted with lysophosphatidic acid and phosphatidylglycerol phosphate. Phosphatidylcholine produced a slight inhibition. 6. The results indicate that the bulk of the aqueously dispersed phosphatidate-dependent phosphatidic acid phosphatase activities of rat lung microsomes and cytosol is not related to the activities observed with membrane-bound phosphatidate. The Mg2+-dependent hydrolase activities may be synonymous. However, unequivocal conclusions will only be possible when the polypeptide or polypeptides responsible for these activities can be purified.

Animals↗

Immunoreactivity of proteolytic degradation products of human prostatic acid phosphatase.

Prostatic acid phosphatase (EC 3.1.3.2) was fragmented by trypsin and papain in the presence of sodium dodecyl sulphate. Trypsin-catalysed cleavage gave a peptide of 33 kDa which was subsequently trimmed to 18 kDa, 15 kDa and 13 kDa peptides. Even the small tryptic fragments reacted with antiphosphatase antibodies from rabbit serum and with monoclonal antibody mAb-14. Papain treatment under these conditions resulted in the release of a 40 kDa peptide which was gradually reduced to a 18 kDa peptide. The monoclonal antibody mAb-14 to the prostatic phosphatase was bound exclusively to the 50 kDa subunit of the phosphatase and to the 40 kDa peptide. The results suggest that the monoclonal antibody mAb-14 binding site represents a "local" sequence rather than a "conformational" one and does not require an extensive tertiary folding of the antigen molecule.

Acid Phosphatase↗

Isolation and characterization of electrophoretic variants of human prostatic acid phosphatase.

Prostatic acid phosphatase (EC 3.1.3.2) purified from benign hypertrophic prostate tissue was fractionated by preparative slab isoelectric focusing over a pH gradient of 3.16 to 7.16. Twenty-two of 29 fractions contained enzyme activity. We further examined each active fraction by determining the Michaelis-Menten constant and specific activity. The protein concentration used in the latter determination was estimated either spectrophotometrically or immunochemically by three different radioimmunoassays for the enzyme. Determination of specific activities for each fraction directly correlated enzyme activity with an immunochemical determination, which indicated the immunochemical relationships among different molecular species of the enzyme. We found that the Michaelis-Menten constants for the isolated fractions were similar to the Km value for purified, unfractionated enzyme. Most fractions analyzed by each immunoassay had similar specific activities; the few fractions with discrepant specific activities were found at either end of the pH gradient. The similarity in specific activities among the fractions indicates that RIAs involving polyclonal antisera detect all of the electrophoretic variants of the enzyme.

Acid Phosphatase↗

Purification and characterization of banana fruit acid phosphatase.

An acid phosphatase (APase, EC 3.1.3.2) from ripened banana (Musa cavendishii L. cv. Cavendish) fruit has been purified 1,876-fold to electrophoretic homogeneity and a final p-nitrophenylphosphate (pNPP)-hydrolyzing specific activity of 745 micromol Pi produced (mg protein)(-1) min(-1). Non-denaturing PAGE of the final preparation resolved a single protein-staining band that co-migrated with APase activity. SDS-PAGE and analytical gel filtration demonstrated that the purified enzyme exists as a 40-kDa monomer. That the enzyme is glycosylated was indicated by its tight absorption to Concanavalin A-Sepharose. Banana APase was relatively heat stable, displayed a symmetrical pH/activity profile with maximal activity at pH 5.8, and was activated 180% and 150% by 5 mM Mn2+ and Mg2+, respectively. The enzyme exhibited a broad substrate selectivity, with maximal specificity constants (Vmax/Km) obtained with pNPP, phosphoenolpyruvate, phenyl phosphate, and O-phospho-L-tyrosine. Potent inhibition by Pi, molybdate, vanadate, arsenate, and Zn2+ was observed. Putative metabolic functions of the APase are discussed in relation to maintaining significant Pi mobility during banana fruit ripening.

Acid Phosphatase↗

Phosphate forms an unusual tripodal complex with the Fe-Mn center of sweet potato purple acid phosphatase.

Purple acid phosphatases (PAPs) are a family of binuclear metalloenzymes that catalyze the hydrolysis of phosphoric acid esters and anhydrides. A PAP in sweet potato has a unique, strongly antiferromagnetically coupled Fe(III)-Mn(II) center and is distinguished from other PAPs by its increased catalytic efficiency for a range of activated and unactivated phosphate esters, its strict requirement for Mn(II), and the presence of a mu-oxo bridge at pH 4.90. This enzyme displays maximum catalytic efficiency (k(cat)/K(m)) at pH 4.5, whereas its catalytic rate constant (k(cat)) is maximal at near-neutral pH, and, in contrast to other PAPs, its catalytic parameters are not dependent on the pK(a) of the leaving group. The crystal structure of the phosphate-bound Fe(III)-Mn(II) PAP has been determined to 2.5-A resolution (final R(free) value of 0.256). Structural comparisons of the active site of sweet potato, red kidney bean, and mammalian PAPs show several amino acid substitutions in the sweet potato enzyme that can account for its increased catalytic efficiency. The phosphate molecule binds in an unusual tripodal mode to the two metal ions, with two of the phosphate oxygen atoms binding to Fe(III) and Mn(II), a third oxygen atom bridging the two metal ions, and the fourth oxygen pointing toward the substrate binding pocket. This binding mode is unique among the known structures in this family but is reminiscent of phosphate binding to urease and of sulfate binding to lambda protein phosphatase. The structure and kinetics support the hypothesis that the bridging oxygen atom initiates hydrolysis.

Acid Phosphatase↗

Induction of repressible acid phosphatase by unsaturated fatty acid in Saccharomyces cerevisiae.

We studied the induction of acid phosphatase (APase) by fatty acids in Saccharomyces cerevisiae. S. cerevisiae has two types of APase: constitutive and repressible enzymes. The synthesis of the latter APase is normally derepressed by depletion of inorganic phosphate (Pi) in the incubation medium. Of the saturated and unsaturated fatty acids tested, linoleic, linolenic and arachidonic acids induced the synthesis of APase even in the presence of a high concentration of Pi, whereas palmitic, stearic and oleic acids did not. De novo protein synthesis but not stimulation of secretion of the enzyme was required for the induction. Genetic analyses using plasmids carrying the genes, PHO5 and PHO3, that code for repressible APase and constitutive APase, respectively, showed that linolenic acid induced the formation of repressible APase. Linolenic acid inhibited the uptake of exogenous 32Pi and simultaneously lowered the intracellular level of Pi. These circumstances indicate that linolenic acid-induced derepression of repressible APase is primarily caused by a fall in the intracellular level of Pi. However, cells that had been preincubated in the presence of a high concentration of Pi produced APase shortly after the addition of linolenic acid. It is, therefore, suggested that, as well as a normal regulatory mechanism for derepression of repressible APase, a mechanism independent of the external level of Pi participates in the induction of repressible APase by linolenic acid.

Acid Phosphatase↗

[Acid phosphatase (ACP)].

The acid phosphatases are a group of enzymes capable of hydrolyzing esters of orthophosphoric acid in an acid medium. Acid phosphatase activity is widely distributed in human tissues and acid phosphatases represent a heterogeneous group of enzymes containing many isoenzymes, each specific for one type of tissue. The human prostate is particularly rich in this enzyme (PAP) and serum enzyme levels have been used as a tumor marker of prostate cancer. While PAP was markedly increased in patients with bone metastases of prostate cancer, it is unable to detect earlier stage tumors reliably. The sensitivity and specificity of serum acid phosphatases and PAP are low in diagnosing, staging and following patients with prostate cancer. Presently, prostate-specific antigen (PSA) is superior to PAP for diagnosis, screening, and monitoring prostate cancer. PAP may have an adjuvant value in the management of prostate cancer because a combination of PSA and PAP testing has revealed a high sensitivity and specificity in detecting prostate cancer.

Acid Phosphatase↗