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Mutation of a single amino acid converts germ cell alkaline phosphatase to placental alkaline phosphatase.

Human placental and germ cell alkaline phosphatases (PLAP and GCAP, respectively), are characterized by their differential sensitivities to inhibition by L-leucine, EDTA, and heat. Yet, they differ by only 7 amino acids at positions 15, 67, 68, 84, 241, 254, and 429 within their respective 484 residues. To determine the structural basis and the amino acid(s) involved in these physicochemical differences, we constructed three GCAP mutants by site-directed mutagenesis and six GCAP/PLAP chimeras and then expressed these alkaline phosphatase mutants in COS-1 cells. We report that the differential reactivity of PLAP and GCAP depends critically on a single amino acid at position 429. GCAP with Gly-429 is strongly inhibited by L-leucine, EDTA, and heat, whereas PLAP with Glu-429 is resistant. By substituting Gly-429 of GCAP with a series of amino acids, we demonstrate that the relative sensitivities of these mutants to L-leucine, EDTA, and heat inhibition are, in general, parallel. Mutants in the order of resistance to these treatments are: Glu (most resistant), Asp/Ile/Leu, Gln/Val/Lys, Ser/His, and Arg/Thr/Met/Cys/Phe/Trp/Tyr/Pro/Asn/Ala/Gly (least resistant). However, the Ser-429 and His-429 mutants were more resistant to EDTA and heat inhibition than the wild-type GCAP, but were equally sensitive to L-leucine inhibition. Structural analysis of mammalian alkaline phosphatase modeled on the refined crystal structure of Escherichia coli alkaline phosphatase indicates that the negative charge of Glu-429 of PLAP, which simultaneously stabilizes the protein as a whole and the metal binding specifically, probably acts through interactions with the metal ligand His-320 (His-331 in E. coli alkaline phosphatase). Replacement of codon 429 with Gly in GCAP leads to destabilization and loosening of the metal binding. The data suggest that the natural binding site for L-leucine may be near position 429, with the amino and carboxyl groups of L-leucine interacting with bound phosphate and His-432 (His-412 in E. coli alkaline phosphatase), respectively.

Alkaline Phosphatase↗

Lack of homology between dog and human placental alkaline phosphatases.

Alkaline phosphatases [ALPases; orthophosphoric-monoester phosphohydrolase (alkaline optimum), EC 3.1.3.1] from dog and human placenta, liver, bone, kidney, and intestine were investigated by inhibition studies with L-homoarginine, L-phenylalanine, and L-phenylalanylglycyl-glycine; by thermostability studies; and by electrophoresis, both before and after treatment with neuraminidase. The inhibitions obtained for each inhibitor with dog placental ALPase closely match those obtained with dog and human liver, bone, and kidney ALPases, but are quite different from those obtained with human placental ALPase. Dog placental ALPase is thermolabile, as are dog and human liver, bone, and kidney ALPases, in marked contrast to human placental ALPase, which is very thermostable. Dog placental ALPase has the same electrophoretic mobility as dog liver, bone, and kidney ALPases after removal of sialic acid residues with neuraminidase. Desialated human placental ALPase differs electrophoretically from desialated human liver, bone, and kidney ALPases, which show the same mobilities. Dog and human intestinal ALPases are distinguished by these various criteria from the liver, bone, kidney, and placental ALPases of both species, but are similar to each other. These results suggest that the ALPase gene locus expressed in dog placenta is not homologous to that expressed in human placenta. Rather, it appears to be homologous to the ALPase locus expressed in dog and human liver and possibly also bone and kidney. Other incomplete data suggest that this may also be true for placental ALPase in other mammalian species. One possible explanation is that human placental ALPase, a relatively recent newcomer on the evolutionary scene, arose from a gene duplication that occurred subsequent to the evolutionary divergence of many other mammalian species.

Alkaline Phosphatase↗

Isolation and characterization of a cDNA encoding a human liver/bone/kidney-type alkaline phosphatase.

Alkaline phosphatases (ALPs) [orthophosphoric-monoester phosphohydrolase (alkaline optimum), EC 3.1.3.1] isolated from human liver, bone, and kidney (L/B/K) exhibit very similar biochemical and immunologic properties that differentiate them from other human ALPs, such as those characteristically found in placenta and intestine. Despite their similarities, the L/B/K ALPs produced in different tissues show slight physical differences. To examine structural and evolutionary relationships between the various ALPs, a cDNA corresponding to L/B/K ALP mRNA has been isolated. A lambda 11 cDNA expression library was constructed using poly(A) RNA from the osteosarcoma cell line Saos-2 and screened with anti-liver ALP antiserum. The 2553-base-pair cDNA contains an open reading frame that encodes a 524 amino acid polypeptide with a predicted molecular mass of 57.2 kDa. This ALP precursor protein contains a presumed signal peptide of 17 amino acids followed by 37 amino acids that are identical to the amino-terminal sequence determined from purified liver ALP. In addition, amino acid sequences of several CNBr peptides obtained from liver ALP are found within the cDNA-encoded protein. The deduced L/B/K ALP precursor polypeptide shows 52% homology to human placental ALP and 25% homology to Escherichia coli ALP precursor polypeptides. Sixty percent nucleotide homology exists between the human L/B/K and placental cDNAs over the protein coding regions. The 5' and 3' untranslated regions of the L/B/K ALP cDNA, 176 and 805 base pairs, respectively, show no homology to the corresponding regions of placental ALP cDNA.

Alkaline Phosphatase↗

Cell membrane enzymes. II. Alkaline phosphatase and alkaline phosphodiesterase I in normal and leukaemic lymphocytes.

The distribution of two cell membrane enzymes, alkaline phosphatase and alkaline phosphodiesterase I has been studied in normal and leukaemic lymphocytes. No reduction in the level of activity of either enzyme was found in the chronic or acute B- and T-cell leukaemias. Alkaline phosphatase activity was elevated in the lymphocytes from T-CLL, cord blood and tonsils and the blast cells from Null-ALL. Alkaline phosphodiesterase was elevated in lymphocytes from cord blood and tonsils and the blast cells from Null-ALL. As findings in Null-ALL were based on only two cases, they need confirmation in a larger series. The significance of these results is discussed in relation to current theories of maturation and differentiation in the lymphoproliferative disorders.

Alkaline Phosphatase↗

Calcium pyrophosphate dihydrate (CPPD) crystal dissolution by alkaline phosphatase: interaction of alkaline phosphatase on CPPD crystals.

OBJECTIVE: As alkaline phosphatase (ALP) can dissolve calcium pyrophosphate dihydrate (CPPD) crystals, and as dissolution is facilitated when the enzyme is proximate to the crystals, we studied the mechanism of ALP interaction with CPPD crystals in vitro. METHODS: ALP was incubated with CPPD crystals in an in vitro model system. Fluorescein isothiocyanate conjugated alkaline phosphatase (FITC-ALP), alkaline phosphatase product staining of calcium pyrophosphate dihydrate (CPPD) crystals and scanning electron microscopy were used to visualize ALP-CPPD crystal interactions. RESULTS: ALP preferentially binds to the small end faces (optical 010 faces) of CPPD crystals. Etch pits indicative of dissolution were demonstrated coexistent with ALP crystal binding and ALP pyrophosphohydrolytic activity. CONCLUSION: ALP binding to CPPD crystals is preferential for the smallest end faces (optical 010 faces). As ALP crystal binding is altered by ions but not by heat inactivation of ALP, ALP-CPPD crystal binding is considered a nonenzymatic mechanism distinct from ALP pyrophosphohydrolytic activity. Our study demonstrates that ALP binds and dissolves CPPD crystals in a stereoselective manner. This suggests that the CPPD crystal dissolution rate is limited by the availability of surface area on the crystal faces most susceptible to ALP binding.

Alkaline Phosphatase↗

A comparison of canine normal hepatic alkaline phosphatase and variant alkaline phosphatase of serum and liver.

The isoenzyme of alkaline phosphatase from normal liver, the corticosteroid induced isoenzyme of alkaline phosphatase from serum and liver and a hepatocellular variant isoenzyme of alkaline phosphatase induced by lymphosarcoma have been partially purified and their the present modification incorporates Polybrene into buffer to eliminate this heparin interference. The proposed method shown excellent agreement with a reference procedure based on clottable protein, and excellent day-to-day precision (C.V.3.5%). The present method is easily adaptable to semi-automated measurements.

Adrenal Cortex Diseases↗

Conjugation of antibodies to alkaline phosphatase.

Alkaline phosphatase is coupled to immunoglobin G antibody in a one-step procedure using the homobifunctional reagent glutaraldehyde, which reacts with amino groups in the two proteins. The procedure is simple to perform and requires minimal equipment.

Alkaline Phosphatase↗

Skeletal dysplasias with osteopenia in the newborn: the value of alkaline phosphatase.

Alkaline phosphatase is a commonly measured enzyme in clinical practice. Normal, excessively elevated and depressed serum or plasma levels have clinical value in the approach to the differential diagnosis of skeletal dysplasias associated with osteopenia in the newborn period. Two cases are described to illustrate this contention. In the first case we describe a neonate with congenital hypophosphatasia and markedly depressed levels of plasma alkaline phosphate, and in the second case we report a patient with a fracture of the femur, congenital rickets and an elevated alkaline phosphate level. In skeletal dysplasias with osteopenia, the nature of the abnormality in alkaline phosphate values, in association with that of calcium and phosphate, is an invaluable diagnostic aid in differential diagnosis.

Adult↗

Bone-specific alkaline phosphatase protein, total alkaline phosphatase activity and lactate dehydrogenase in sera of patients with sickle cell disease.

Serum bone-specific alkaline phosphatase protein (bAP) was evaluated as indicator of bone turnover by immunoradiometric assay (IRMA) in twenty patients with sickle cell disease and in twenty healthy control subjects. Serum bAP was also compared with serum total alkaline phosphatase activity and serum lactate dehydrogenase in the same group. The concentrations of serum bAP and serum lactate dehydrogenase were significantly higher in the study group than in the control group (p < 0.05, p < 0.01, respectively). The serum total alkaline phosphatase activity showed no significant difference with the control healthy subjects. There was no correlation between serum bAP and total alkaline phosphatase or lactate dehydrogenase levels in the patient group. In conclusion, serum bAP protein measured by IRMA can be considered a sensitive marker of bone turnover and could be especially useful as valuable non-invasive biochemical marker for identifying sickle cell patients with skeletal complications.

Adolescent↗

Further investigations on the structure and function of the saccus vasculosus of the rainbow trout, Salmo gairdneri Richardson. Ultrastructural cytochemistry of membrane-bound alkaline phosphatase.

Alkaline phosphatase activity in coronet cells of the saccus vasculosus of the rainbow trout was localized ultracytochemically. Deposits of reaction product were found in varying amounts on the membranes of primary vesicles in the globules. This observation is discussed in relation to other morphological data and the possible resorptive function of the coronet cells in the homeostasis of the CSF.

Alkaline Phosphatase↗

[Computed image analysis of neutrophils: alkaline phosphatase].

Alkaline phosphatase (AP) activity was detected under optic microscope in neutrophilic leukocyte granules and intergranular cytoplasm. Computer analysis of the image showed that activation of neutrophils in the blood of patients with purulent peritonitis was paralleled by a drastic increase in the activity of AP and its intracellular redistribution. AP granules increased in size and their capacity to conglomeration increased. The enzyme activity increased both in the granules and diffuse zone of the cytoplasm. Total area of AP granules directly correlated with the size of the zone of the enzyme diffuse-granular location.

Alkaline Phosphatase↗

Phospholipase resistance of the glycosyl-phosphatidylinositol membrane anchor on human alkaline phosphatase.

Alkaline phosphatase (ALP) is attached to the cell surface in mammalian tissues via a glycosyl-phosphatidylinositol (GPI) anchor and can be released from the membrane by GPI-specific phospholipases. In a range of cultured human cell lines, however, the sensitivity of ALP to phospholipases was observed to be variable in magnitude (approximately 20-90%). The mechanism of phospholipase resistance was explored with phospholipases of different bond specificities. The results suggest that phospholipase resistance is the result of acylation of the inositol ring in the GPI anchor. The occurrence of phospholipase-resistant forms of ALP may have important implications for the in vivo release and disposition of plasma ALP.

Acylation↗

Identification of proliferating lymphocyte subpopulations by combined alkaline phosphatase anti-alkaline phosphatase (APAAP) staining and autoradiography.

An improvement in the classification of proliferating ([3H]thymidine incorporating) lymphocyte subpopulations in mitogen- or antigen-stimulated microcultures is described. The binding of subset-specific monoclonal antibodies is detected by the alkaline phosphatase anti-alkaline phosphatase method (APAAP). There are two advantages compared to the peroxidase anti-peroxidase (PAP) method; (1) endogenous enzyme (peroxidase) activity exhibited by some cells causes no interference, and (2) the red alkaline phosphatase staining obtained with new fuchsin provides a far superior contrast to silver grains than conventional peroxidase staining.

Alkaline Phosphatase↗

Histochemical identification of the vascular endothelial isoenzyme of alkaline phosphatase.

Alkaline phosphatase (AP) is a widely studied membrane bound ecto-enzyme with an extensive distribution in nature. Three major human isoenzymes have been defined and can be distinguished on the basis of their differential sensitivity to specific inhibitors. Despite the voluminous literature describing AP, the physiological role of this enzyme is unclear. Microvascular endothelium is strongly AP positive and may provide a convenient model for study of the role of AP in vitro. This report describes the use of freeze-substitution and high-resolution plastic embedding techniques to identify the isoenzyme of endothelial AP by quantitative analysis of the relative inhibition by specific inhibitors of AP, using human gingival tissues and a number of rat tissues. Endothelial AP is found to be the liver/bone/kidney isoenzyme, indicating kidney as a credible source of enzyme for further experimental work investigating the role of AP.

Alkaline Phosphatase↗

Affinity purification and some molecular properties of human liver alkaline phosphatase.

Alkaline phosphatase from human liver was purified to homogeneity. The purification procedure included solubilization with butanol, fractionation with acetone, and chromatography on concanavalin A-Sepharose, DEAE-cellulose, Sephadex G-200 and DEAE-Sephadex. Purity was established by standard and sodium dodecyl sulphate/polyacrylamide-gel electrophoresis. The isoelectric point of the protein was determined to be 4.0. Sephadex-gel filtration gave a mol.wt. of 146000, although a higher value was obtained in the presence of 100mM-NaC1. The subunit mol.wt. 76700, was determined by sodium dodecyl sulphate/polyacrylamide-gel electrophoresis. Neuraminidase treatment resulted in two enzyme-activity bands on isoelectric-focused gels with isoelectric points of 6.6 and 6.8. The desialylated enzyme gave only one protein band on sodium dodecyl sulphate/polyacrylamide-gel electrophoresis with a subunit molecular weight indistinguishable from that of the non-neuraminidase-treated protein. The desialylated enzyme was more readily denatured by sodium dodecyl sulphate in the presence of mercaptoethanol than was the native enzyme.

Alkaline Phosphatase↗

Structural study on the carbohydrate moiety of human placental alkaline phosphatase.

Alkaline phosphatase purified from human placenta contains a single asparagine-linked sugar chain in one molecule. The sugar chain was quantitatively liberated as radioactive oligosaccharides from the polypeptide moiety by hydrazinolysis followed by N-acetylation and NaB3H4 reduction, and separated by paper electrophoresis into one neutral and two acidic fractions. By a combination of sequential exoglycosidase digestion and methylation analysis, the structures of oligosaccharides in the neutral fraction were confirmed to be as follows: Gal beta 1----4GlcNAc beta 1----2Man alpha 1----6(Gal beta 1----4GlcNAc beta 1----2Man alpha 1----3)Man beta 1----4GlcNAc beta 1----4(+/- Fuc alpha 1----6)GlcNAc. The acidic oligosaccharide fractions were mixtures of mono- and disialyl derivatives of the neutral fraction. All the sialic acid residues of the sugar chains occur as the NeuAc alpha 2----3Gal group. In the case of monosialyl derivatives, the N-acetylneuraminic acid was exclusively linked to the Man alpha 1----3 arm.

Alkaline Phosphatase↗

Identity of PB76 differentiation antigen and lymphocyte alkaline phosphatase.

Alkaline phosphatases (APases, EC 3.1.3.1) are ecto-enzymes bound to cell membranes by a phosphatidyl-inositol anchor. We have previously shown that APase is present on activated murine B cells and its expression correlates with the process of B cell differentiation into immunoglobulin secretion. Recently, a monoclonal antibody (mAb), G-5-2, that recognizes a 76-kDa molecule preferentially expressed on the surface of pre-B and plasma cells (PB76) was described. Some features shared by APase and PB76 differentiation antigen suggest that the G-5-2 mAb might be specific for lymphocyte APase. Here, we have analyzed this possibility and found an absolute correlation between PB76 expression in cells and their APase activity. Although PB76 has been described as a B cell-restricted marker, PB76 is also expressed on some T cells, such as the YAC-1 T cell lymphoma, that are known to bear APase. Treatment of YAC-1 cells with phosphatidylinositol-specific phospholipase C resulted in a quantitatively correlated removal of both APase and PB76 antigens. Moreover, we demonstrate that PB76 antigen has APase activity using an enzyme-antigen immunoassay with the G-5-2 mAb. We conclude that PB76 and lymphocyte APase are one and the same antigen.

Alkaline Phosphatase↗

Development and cross-reactive properties of monoclonal antibodies to bovine matrix vesicle alkaline phosphatase.

Alkaline phosphatase (ALPase), concentrated in the membranes of matrix vesicles, is believed to play a role in initial calcification. To further purify, characterize, and identify this enzyme in tissue, a monoclonal antibody was developed against the ALPase of isolated fetal calf matrix vesicles. Splenic lymphocytes derived from mice immunized with Sepharose 6B-purified fetal calf matrix vesicle ALPase were fused with mouse plasmacytoma cells (line X63-Ag-8.653) using standard hybridoma technology. Hyperimmune sera and hybridoma culture supernatants were screened for the presence of specific antibody using a newly developed double-immunosorbent assay in which putative antibody is added to microtiter plate wells precoated with affinity-purified rabbit antimouse immunoglobulin. After incubation and washing, partially purified fetal calf matrix vesicle ALPase is added to each well. The enzyme adheres only to wells that contain specific anti-ALPase antibody. These wells are identified by adding the enzyme substrate p-nitrophenyl phosphate and reading the wells in a plate-reading spectrophotometer at 405 nm. A hybridoma-producing specific antibody was subsequently cloned and grown as ascities-producing tumors in pristane-primed mice. Ouchterlony analysis indicated that the cell line secretes an immunoglobulin of IgG1 class. This antibody reacts specifically with ALPase derived from calf matrix vesicles and cross-reacts with ALPase of bovine kidney, liver, and placental origin and human bone but does not cross-react with bovine intestinal ALPase or ALPase derived from matrix vesicles isolated from rachitic rat growth plate cartilage.

Alkaline Phosphatase↗