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Endocytosis of lysosomal acid phosphatase; involvement of mannose receptor and effect of lectins.

Acid phosphatase and beta-glucosidase are unique among lysosomal enzymes in that they have both high mannose and complex type sugasr chains, whereas oligosaccharide chains of lysosomal enzymes in matrix are of high mannose type. We have previously shown that beta-glucosidase was endocytosed into macrophages via an unidentified receptor different from a mannose/fucose receptor (K. Imai, Cell Struct. Funct. 13, 325-332, 1988). Here, we show that uptake of acid phosphatase purified from rat liver lysosomes into rat macrophages was inhibited by ligands for a mannose/fucose receptor and was mediated via an apparently single binding site with Kuptake of 24.7 nM. These results indicate that acid phosphatase and beta-glucosidase recognize different types of receptors even if they have similar sugar chains. Polyvalent concanavalin A which binds both to the enzyme and to macrophages specifically stimulated the uptake in a dose dependent manner, whereas wheat germ agglutinin and phytohaemagglutinin did not.

Acid Phosphatase↗

[Diurnal variation of the elevated acid phosphatase activity in cases of prostate carcinoma (author's transl)].

The diurnal rhythm of total acid phosphatase and prostatic phosphatase activities was investigated in patients with prostate carcinoma. In these patients, the activities of total acid phosphatase, the tartrate-sensitive fraction of acid phosphatase, and lactate dehydrogenase decrease after therapy, whereas the activity of alkaline phosphatase increases. In all patients with prostate carcinoma, the total and tartrate-inhibited acid phosphatase, and the level of cortisol show a diurnal rhythm before therapy, with a minimum at night. In one patient, after orchiectomy, the cortisol rhythm remained unchanged, but the daily phosphatase variation was absent. Diurnal variations of lactate dehydrogenase and alkaline phosphatase were also observed in 2 patients without prostate carcinoma, but with elevated levels of these enzymes.

Acid Phosphatase↗

The endogenous substrate of low molecular weight acid phosphatase in the brain is an epidermal growth factor receptor.

We have recently reported that low molecular weight (LMW) acid phosphatase, which is supposed to possess phosphotyrosine protein phosphatase activity, showed a significant decrease of activity in Alzheimer brains compared to control brains [Ann. Neurol., 33 (1993) 616-621]. In the present study, we investigated the endogenous substrate of LMW acid phosphatase in the brain. LMW acid phosphatase was purified from bovine brain, and the enzyme was obtained with both a high specific activity and a good yield. The bovine brain enzyme was a monomer with a molecular mass of 17 kDa. We used a specific monoclonal anti-phosphotyrosine antibody to detect phosphotyrosine protein in rat brain extracts. The LMW acid phosphatase from bovine brain dephosphorylated a M(r) 170 kDa phosphotyrosine protein in rat brain extracts. This M(r) 170 kDa protein was considered to be the epidermal growth factor (EGF) receptor using a specific antibody. These results suggest that LMW acid phosphatase in the brain may regulate EGF receptor-dependent transmembrane signalling by dephosphorylating the phosphorylated receptor.

Acid Phosphatase↗

An evaluation of a kinetic acid phosphatase method.

The authors have evaluated a new kinetic acid phosphatase method in which the substrate is alpha-naphthyl phosphate. The original claim that this substrate was highly specific for the prostatic isozyme has been strongly challenged. Therefore, large numbers of patients in the following groupings were included in the evaluation: 52 urology clinic patients, 17 patients with uremia, 11 patients with multiple myeloma and 231 patients who had undergone prostatic biopsies. Two hundred seventy of these patients were found to be free of prostatic cancer. Of these, seven had acid phosphatase values above the upper limit of normal. Five of these seven patients had diagnoses of fibromuscular glandular hyperplasia. One was a woman who had multiple myeloma, and one was a uremic patient. Fifteen of 17 patients who had metastatic cancer of the prostate had elevated acid phosphatase activities, whereas one of 24 patients who had cancer of the prostate but no evidence of metastases had an elevated value.

Acid Phosphatase↗

The fine localization of acid phosphatase activity in the unvacuolated notochordal cells of the early chick embryo.

The electron microscopical localization of acid phosphatase activity was investigated in ultra-thin and semi-thin sections of unvacuolated notochordal cells of chick embryos from stages 9 to 14 (as defined by Hamburger & Hamilton). At stage 9, many notochordal cells show a lightly positive reaction for acid phosphatase activity. Thereafter, the acid phosphatase-positive cells of the notochord increase in number and, at stage 14, the reaction products for the enzymes are distributed throughout almost all the cisternae of the nuclear envelope and a well-differentiated endoplasmic reticulum, the parallel cisternal and reticular parts of the Golgi complex, and various lysosomes in nearly all notochordal cells. In the cisternae of the nuclear envelope and endoplasmic reticulum, the acid phosphatase reaction products are in a fine granular form. In the outermost layer of the cisternal parts of the Golgi complex, faint lead deposits similar to those in the endoplasmic reticulum are found, but in other cisternal and reticular regions which may correspond to the GERL, considerable amounts of reaction products are present. Knob-like projections are also seen protruding from the reticular parts of the Golgi complex. These results suggest that, at least up to stage 14, the notochordal cells are actively synthesizing acid phosphatase which is directly transported from the endoplasmic reticulum to the Golgi complex. The enzyme may be accumulated by the Golgi complex from which primary lysosomes are formed. Furthermore, the pattern of the ultrastructural localization of acid phosphatase activity in embryonic notochordal cells of the chick differs from that of adult cells of other animals.

Acid Phosphatase↗

Structure of a filamentous phosphoglycoprotein polymer: the secreted acid phosphatase of Leishmania mexicana.

The insect stage of the protozoan parasite Leishmania mexicana secretes a filamentous acid phosphatase (secreted acid phosphatase, SAP), a polymeric phosphoglycoprotein. The wild-type (wt) SAP filament is a copolymer composed of two related gene products SAP1 and SAP2, which are identical in the enzymatically active NH2-terminal domain and the COOH-terminal domain, but differ in the length of a highly glycosylated Ser/Thr-rich repeat region (32 amino acids and 383 amino acids, respectively) which is located between these domains. When expressed separately, full length SAP1, SAP2, or the NH2-terminal domain alone, are able to assemble into filaments. The Ser/Thr-rich region is the exclusive target for a novel type of O-glycosylation via phosphoserines. By using glycerol spraying/low-angle rotary metal shadowing and labelling with monoclonal antibodies it is demonstrated that the repetitive region adopts an extended conformation forming side arms which project radially from the filament core and terminate with the COOH-terminal domain. The length of the side arms of SAP1 and SAP2 (20 nm and 90 nm, respectively) corresponds to the predicted length of the Ser/Thr-rich repeat region of SAP1 and SAP2. Mass determination by scanning electron microscopy (STEM) shows that one morphologically defined globular particle of the filament core is a polypeptide dimer. We propose a model for the filament core, in which the globular NH2-terminal SAP domains form one strand composed of polypeptide dimers or two tightly associated strands of monomers which may twist into a double helix, similar to actin filaments. The highly O-glycosylated side arms project from the filament core conferring an overall bottle-brush-like appearance. The L. mexicana SAP is compared to SAPs secreted by the closely related species L. amazonensis and L. donovani.

Acid Phosphatase↗

Localization of the acid phosphatasic activity in plant cell nucleoli.

We have made an ultrastructural study of the nuclear acid phosphatase localization in the different tissues of Allium cepa L. anthers, after meiosis. The enzyme is preferentially located in the fibrillar component, within the nucleolus, with a greater reaction density around the nucleolar organizing region (NOR). The specificity of the reaction was proved by contrasting the results with those obtained in two different series of anthers. One of these series was incubated in Gomori's medium with an acid phosphatasic inhibitor, and the other in Gomori's medium without substrate. In both cases the acid phosphatase reaction was negative. Some authors (Hardin and Spicer, 1970; Tandler et al., 1970; Rodríguez-García and Stockert, 1979) have observed an accumulation of inorganic cations (Ca++, Mg++, ... and Na+) within the nucleolar region where the phosphatase acid activity was detected by us. The coincidence of this localization is discussed, suggesting that these cations are probably involved in the phosphatasic activity of these nucleolar zones. Our results agree with the idea that this enzyme contributes to an increase in the amount of nuclear ortophosphate ions (Harris, 1963). On the other hand this enzyme could play a part in the successive triming of the different preribosomal RNA species that occurs during their maturation (Dalgarno and Shine, 1977).

Acid Phosphatase↗

Ultracytochemical localization of acid phosphatase and trimetaphosphatase activities in the transitional epithelium of the rat urinary bladder.

Acid phosphatase and trimetaphosphatase activities have been demonstrated cytochemically in the transitional epithelium of the rat urinary bladder. Acid phosphatase activity was examined by the method of Robinson and Karnovsky (1983), and trimetaphosphatase activity was examined by the method of Kobayashi et al. (1988). Intense positive reaction for acid phosphatase activity was observed with both beta-glycerophosphate and p-nitrophenyl phosphate as substrates, in lysosomes, Golgi complex, GERL, multi-vesicular bodies and wrapping lysosomes. The reaction product of the trimetaphosphatase activity was visualized as fine particulated deposits along the limiting membrane of some lysosomes, and of tubular structures located in the basal cytoplasm. There seems to be a fine distinction and reciprocal complementary functional relationship between two kinds of lysosomes containing either acid phosphatase or trimetaphosphatase activity.

Acid Anhydride Hydrolases↗

[Histochemical and ultrastructural studies on anti-edematous and radiation-protective action of 0-(beta-hydroxyethyl)-rutosides on the rat brain after single irradiation. 2. Histochemical study on carbohydrate metabolism and acid phosphatase activation].

The disturbances of the carbohydrate metabolism and the activation of acid phosphatases with and without protection by O-(beta-hydroxyethyl)-rutoside (HR) were studied in irradiated rat brains by means of the light microscope. The histochemically demonstrable deposition of glycogen and acid mucopolysaccharides serves as a criterion for a reversible lesion of the irradiated cerebral tissue. The extent of local activation of repair processes following to irradiation can be determined by the quantity of acid phosphatases in the lysosomes. For the dose range of 1 to 5 Gy, HR seems to exert a protective effect on the cellular metabolism of the irradiated cerebral tissue shown by a slight decrease of glycogen and mucopolysaccharide deposits compared to the untreated animals. However, when exceeding a threshold dose of 10 Gy, the deposition of carbohydrates in the HR group is strongly increased. A slightly increased activity of acid phosphatases induced by HR can be supposed at best for the dose range of 5 to 7.5 Gy. If the dose is even more increased, the reverse effect found in the carbohydrate metabolism, too, and an increased activation of acid phosphatases in the control group will be observed. This unexpected reversion of the protective effect could be related to the assumed inhibitory effect of HR on the ATPases and thus on the anaerobic part of glycolysis or to a breakdown of the cell interaction system of endothelial cells, glia cells, and neurons.

Acid Phosphatase↗

High affinity of acid phosphatase encoded by PHO3 gene in Saccharomyces cerevisiae for thiamin phosphates.

The enzymatic properties of acid phosphatase (orthophosphoric-monoester phosphohydrolase, EC 3.1.3.2) encoded by PHO3 gene in Saccharomyces cerevisiae, which is repressed by thiamin and has thiamin-binding activity at pH 5.0, were investigated to study physiological functions. The following results led to the conclusion that thiamin-repressible acid phosphatase physiologically catalyzes the hydrolysis of thiamin phosphates in the periplasmic space of S. cerevisiae, thus participating in utilization of the thiamin moiety of the phosphates by yeast cells: (a) thiamin-repressible acid phosphatase showed Km values of 1.6 and 1.7 microM at pH 5.0 for thiamin monophosphate and thiamin pyrophosphate, respectively. These Km values were 2-3 orders of magnitude lower than those (0.61 and 1.7 mM) for p-nitrophenyl phosphate; (b) thiamin exerted remarkable competitive inhibition in the hydrolysis of thiamin monophosphate (Ki 2.2 microM at pH 5.0), whereas the activity for p-nitrophenyl phosphate was slightly affected by thiamin; (c) the inhibitory effect of inorganic phosphate, which does not repress the thiamin-repressible enzyme, on the hydrolysis of thiamin monophosphate was much smaller than that of p-nitrophenyl phosphate. Moreover, the modification of thiamin-repressible acid phosphatase of S. cerevisiae with 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide resulted in the complete loss of thiamin-binding activity and the Km value of the modified enzyme for thiamin monophosphate increased nearly to the value of the native enzyme for p-nitrophenyl phosphate. These results also indicate that the high affinity of the thiamin-repressible acid phosphatase for thiamin phosphates is due to the thiamin-binding properties of this enzyme.

Acid Phosphatase↗

Affinity separation of an acid phosphatase from rat tissues and Gaucher spleen with immobilized Cibacron Blue.

An acid phosphatase species which was activated by Fe2+ was determined to be partially soluble but mainly particulate in rat spleen. The particulate enzyme could be extracted into 1 M KCl. This enzyme bound to Cibacron Blue-immobilized Sepharose (Blue-Sepharose) and was desorbed by 2 M KCl with a good yield, while the other acid phosphatases in rat spleen did not adsorb on Blue-Sepharose. The enzymes eluted on Blue-Sepharose chromatography of both the soluble and particulate fractions were electrophoretically identical. The enzyme hydrolyzed aryl monophosphates, phosphoproteins, and nucleoside di- and triphosphates. The activity for the three kinds of substrate was similarly activated by Fe2+, ascorbic acid and cysteine, and inhibited by molybdate, Cu2+ and F-. Cibacron Blue inhibited the enzyme competitively with respect to a substrate, p-nitrophenyl phosphate, but kinetic analysis suggested that more than one dye molecule binds to the enzyme. The Blue-Sepharose technique could be applied not only to quantitative separation of acid phosphatases similar to the spleen enzyme from bone and epidermis of rat, but also to that of a tartrate-resistant acid phosphatase from human spleen with Gaucher's disease.

Acid Phosphatase↗

Localization of two distinct acid phosphatases in secretory ameloblasts of rat molar tooth germs.

Acid phosphatases were examined histochemically at the light- and electron-microscopic levels using para-nitrophenyl phosphate (pNPP) and beta-glycerophosphate (beta-GP) as substrates. By light microscopy, there was intense activity with pNPP in supranuclear and distal regions of the secretory ameloblast, and moderate or slight activity respectively in those regions with beta-GP. These enzyme activities were less at the late secretory stage of amelogenesis and disappeared at the transitional stage. By electron microscopy, acid phosphatase activity was seen in the trans side cisternae of the Golgi apparatus, in lysosome-like granules, and in small vesicles in the Tomes' processes. The activity with pNPP but not beta-GP was also localized at the plasma membrane (proximal, lateral and distal surface). Activity with beta-GP was completely inhibited by 1 mM sodium tartrate and by 1 mM NaF; activity with pNPP was inhibited by 1 mM NaF and 10 mM sodium tartrate, but not by 1 mM sodium tartrate. Thus there are at least two different acid phosphatases, one tartrate-sensitive and the other 1 mM tartrate-resistant, in the secretory ameloblast; the tartrate-resistant enzyme is plasma-membrane bound.

Acid Phosphatase↗

Determination of acid phosphatase in biological fluids using a new substrate, 2,6-dichloro-4-nitrophenyl phosphate.

A new substrate, 2,6-dichloro-4-nitrophenyl phosphate (DCNP-P), is used for the determination of acid phosphatase (EC 3.1.3.2) in serum and urine. It was hydrolyzed by acid phosphatase to 2,6-dichloro-4-nitrophenol (DCNP) and phosphoric acid. At a pH of 4.5-6.0, the absorption of DCNP liberated by acid phosphatase was much higher than that of p-nitrophenol, which is commonly used as an aglycone in the acid phosphatase assay. By using DCNP-P as a substrate for acid phosphatase activity, determinations can be made without the colour reaction which requires the addition of an alkaline solution, and can be determined by the rate assay that does not require measurement of sample blanks in serum or urine. This method using DCNP-P is highly sensitive and is the most suitable for the rate assay of acid phosphatase activity in biological fluids.

Acid Phosphatase↗

An essential carboxylic acid group in human prostate acid phosphatase.

Treatment of homogenous human prostatic acid phosphatase (orthophosphoric-monoester phosphohydrolase (acid optimum), EC 3.1.3.2) with low concentrations of Woodward's reagent K (N-ethyl-5-phenylisoxazolium-3'-sulfonate) leads to a rapid loss of enzymic activity. The rate of inactivation of the enzyme is reduced in the presence of the competitive inhibitors phosphate and L-(+)-tartrate, but not in the presence of non-inhibitory D-tartrate. Measurement of the ethylamine produced upon hydrolysis of enzyme modified in the presence of D- and of L-tartrate permitted the quantitative estimation of the number of carboxylic acid residues at the active site. The data indicate that two carboxyl groups per (dimeric) enzyme molecule are essential for catalytic activity. It is proposed that one function of the active site carboxyl group may be to protonate the leaving alcohol or phenol portion of the phosphomonoester substrate during the formation of the covalent phosphoenzyme intermediate.

Acid Phosphatase↗

Identity of zinc ion-dependent acid phosphatase from bovine brain and myo-inositol 1-phosphatase.

A 62 kDa Zn(2+)-dependent acid phosphatase has been purified from bovine brain. The protein was carboxymethylated and then cleaved by endoproteinase Glu-C, trypsin and CNBr. Several fragments were subjected to structural analysis either by using mass spectrometry or automated peptide sequencing. The four sequenced peptides were compared with the known protein sequences contained in the EMBL Data Bank. All four peptide sequences were identical to the corresponding amino-acid sequences present in myo-inositol 1-phosphatase from bovine brain. Furthermore we found that the amino-acid composition of Zn(2+)-dependent acid phosphatase purified in our laboratory is very similar to that of myo-inositol 1-phosphatase, and that several peptide fragments have molecular weights (measured by mass spectrometry techniques) identical to those expected for cleavage-fragments originated from the authentic myo-inositol 1-phosphatase. This is one of the key enzymes in the receptor-stimulated inositol phospholipid metabolism and it has been considered as the probable target of Li+ ion during LiCl therapy in manic-depressive patients. The comparison of the Zn(2+)-dependent acid phosphatase and the Mg(2+)-dependent myo-inositol-1-phosphatase activities, measured at different purification steps, shows that the ratio between the two activities was remarkably constant during enzyme purification. We also demonstrated that in the presence of Mg2+ this enzyme efficiently catalyses the hydrolysis of myo-inositol 1-phosphate, and that the Li+ ion inhibits this activity. Furthermore, the thermal treatment of the enzyme causes a time-dependent parallel decrease of both Zn-dependent p-nitrophenyl phosphatase (assayed at pH 5.5) and Mg(2+)-dependent myo-inositol-1-phosphatase (assayed at pH 8.0) activities, suggesting the hypothesis that the same protein possesses both these activities.

Acid Phosphatase↗

Stereochemistry of phospho transfer catalyzed by bovine liver acid phosphatase.

The hydrolysis of phosphoric monoesters by acid phosphatases is thought to proceed via the formation of a phosphoenzyme intermediate, but no stereochemical evidence exists on this point. We have carried out the transphosphorylation from phenyl (R)-[16O, 17O, 18O] phosphate to (S)-propane-1,2-diol in the presence of homogeneous bovine liver acid phosphatase, and have found that the reaction proceeds with greater 90% overall retention of configuration at phosphorus. This stereochemical course of phospho transfer during the enzyme-catalyzed reaction of the phosphoric monoester is consistent with a double displacement mechanism in which each step proceeds with inversion of the stereochemistry at phosphorus, and is similar to the behavior of the bacterial alkaline phosphatase.

Acid Phosphatase↗

Purification and Characterization of a Potato Tuber Acid Phosphatase Having Significant Phosphotyrosine Phosphatase Activity.

The major acid phosphatase (APase) from potato (Solanum tuberosom L. cv Chiefton) tubers has been purified 2289-fold to near homogeneity and a final O-phospho-L-tyrosine (P-Tyr) hydrolyzing specific activity of 1917 [mu]mol Pi produced min-1 mg-1 of protein. Nondenaturing polyacrylamide gel electrophoresis of the final preparation resolved a single protein-staining band that co-migrated with APase activity. Following sodium dodecyl sulfate polyacrylamide gel electrophoresis, glycosylated polypeptides of 57 and 55 kD were observed. The two polypeptides are immunologically closely related, since both proteins cross-reacted on immunoblots probed with rabbit anti-(Brassica nigra APase) immunoglobulin G. Immunoblotting studies revealed that the 55-kD subunit did not arise via proteolytic cleavage of the 57-kD subunit after tissue extraction. The native molecular mass was approximately 100 kD, suggesting that the holoenzyme could exist as either a homodimer or a heterodimer. The enzyme displayed a pH optimum of 5.8, was activated 40% by 4 mM Mg2+, and was potently inhibited by molybdate, vanadate, and ZnCl2. The final preparation displayed the highest activity and specificity constant with P-Tyr, but also dephosphorylated other phosphomonoesters including p-nitrophenylphosphate, O-phospho-L-serine, phosphoenolpyruvate, PPi, and ATP. Antibodies to P-Tyr were used to demonstrate that several endogenous phosphotyrosylated tuber polypeptides could serve as in vitro substrates for the purified APase. Although the precise physiological significance of the potato APase's substantial in vitro activity with P-Tyr remains obscure, the possibility that this APase may function to dephosphorylate certain protein-located P-Tyr residues in vivo is suggested.

Journal Article↗