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Alkaline phosphatase isoenzymes in feline serum using an agarose gel alkaline phosphatase kit method.

Total serum alkaline phosphatase (ALP) activity is the product of the combined activity of isoenzymes from a number of tissue sources. In this study, a commercially available kit for electrophoretic separation of ALP isoenzymes in an agarose gel was used to separate ALP isoenzymes in feline tissue extracts and serum. Five separate bands of ALP activity were identified. These bands were numbered 1 to 5 with band 1 having the most anodal migration. The tissue of origin corresponding to the migration position of the isoenzymes are as follows: Band 3 was the liver isoenzyme, band 4 was the bone isoenzyme and ALP isoenzymes of both intestine and kidney migrate in the position labelled band 5. Band 1 appears to be related to albumin and does not represent true ALP activity. The tissue source of band 2 (a and b) was not identified. Serum ALP activity of mature, healthy cats is primarily of liver origin. Immature cats (< 1 year of age) have a greater proportion of the bone isoenzyme in the serum.

Alkaline Phosphatase↗

Profile of placental alkaline phosphatase expression in human malignancies: effect of tumour cell activation on alkaline phosphatase expression.

Cellular alkaline phosphatases (ALP) are increasingly recognised as important markers for monitoring tumour cell behaviour in human malignancies. Colorimetric, flow-cytometric, and immunocytochemical assays were employed to assess the influence of activation on expression of cellular ALP in human tumour cell lines. The results showed the following: (1) Testis tumour biopsies (16/16) unlike bladder (0/14) and head and neck (0/16) tumours showed positive staining for ALP, particularly the placental type, i.e. PLAP, although this was not always present on all the cells of non-seminoma biopsies. (2) The intensity of ALP expression differed widely in tumour cell lines. Based on biochemical analysis, the profile of ALP fell into two categories: (a) low expressing (MW 70 kD, placental type ALP) like Hep2 and KB lines, and (b) those expressing both low and high molecular (MW 95 kD) bands like testis lines Tera II and Ep2102. In all cases treatment of tumour cell lysates with heat prior to biochemical analysis showed the disappearance of the higher and sharpening of the lower molecular weight ALP band. (3) Exposure of tumour cells to epidermal growth factor (EGF) expressing EGF receptor led to a decreased ALP expression by as much as 54% as assessed by biochemical or flow-cytometric techniques. These data demonstrated that testis tumour tissues and cell lines expressed ALP which were different from others. The data also showed that exposure of tumour cell lines expressing EGFr to EGF resulted in suppression of ALP expression. These observations are consistent with the notion that EGFr and PLAP expression may be taken as a marker of proliferation and differentiation in human malignancies, respectively.

Alkaline Phosphatase↗

Genetic complexity, structure, and characterization of highly active bovine intestinal alkaline phosphatases.

Mammalian alkaline phosphatases (APs) display 10-100-fold higher kcat values than do bacterial APs. To begin uncovering the critical residues that determine the catalytic efficiency of mammalian APs, we have compared the sequence of two bovine intestinal APs, i.e. a moderately active isozyme (bovine intestinal alkaline phosphatase, bIAP I, approximately 3,000 units/mg) previously cloned in our laboratory, and a highly active isozyme (bIAP II, approximately 8, 000 units/mg) of hitherto unknown sequence. An unprecedented level of complexity was revealed for the bovine AP family of genes during our attempts to clone the bIAP II cDNA from cow intestinal RNAs. We cloned and characterized two novel full-length IAP cDNAs (bIAP III and bIAP IV) and obtained partial sequences for three other IAP cDNAs (bIAP V, VI, and VII). Moreover, we identified and partially cloned a gene coding for a second tissue nonspecific AP (TNAP-2). However, the cDNA for bIAP II, appeared unclonable. The sequence of the entire bIAP II isozyme was determined instead by a classical protein sequencing strategy using trypsin, carboxypeptidase, and endoproteinase Lys-C, Asp-N, and Glu-C digestions, as well as cyanogen bromide cleavage and NH2-terminal sequencing. A chimeric bIAP II cDNA was then constructed by ligating wild-type and mutagenized fragments of bIAP I, III, and IV to build a cDNA encoding the identified bIAP II sequence. Expression and enzymatic characterization of the recombinant bIAP I, II, III, and IV isozymes revealed average kcat values of 1800, 5900, 4200, and 6100 s-1, respectively. Comparison of the bIAP I and bIAP II sequences identified 24 amino acid positions as likely candidates to explain differences in kcat. Site-directed mutagenesis and kinetic studies revealed that a G322D mutation in bIAP II reduced its kcat to 1300 s-1, while the converse mutation, i.e. D322G, in bIAP I increased its kcat to 5800 s-1. Other mutations in bIAP II had no effect on its kinetic properties. Our data clearly indicate that residue 322 is the major determinant of the high catalytic turnover in bovine IAPs. This residue is not directly involved in the mechanism of catalysis but is spatially sufficiently close to the active site to influence substrate positioning and hydrolysis of the phosphoenzyme complex.

Alkaline Phosphatase↗

cDNA encoding a functional feline liver/bone/kidney-type alkaline phosphatase.

Feline alkaline phosphatase (FeALP) was copurified with the putative 70-kDa feline leukemia virus subgroup-A (FeLV-A) receptor protein from feline T-lymphocyte cells (FeT) by two-dimensional gel electrophoresis. The sequence of the N-terminal 17 amino acids and five other internal tryptic peptides revealed that it is homologous to the liver/bone/kidney (L/B/K)-type alkaline phosphatase of other mammalian species. Corresponding oligonucleotides were synthesized and used for amplification of a 1.2-kb segment of the FeALP gene by polymerase chain reaction, using phage DNA from a FeT cell cDNA library as template. The 1.2-kb FeALP gene fragment generated was then used as a probe to isolate a 2127-bp L/B/K-type FeALP cDNA clone from the same library harboring a large, intact open reading frame. This cDNA possessed an open reading frame encoding a 524-amino-acid protein including a putative signal peptide of 17 amino acids followed by 14-amino-acid residues identical to the N-terminal sequence determined from the purified protein. Sequences closely related to five tryptic peptides from the purified protein were also contained within the cDNA-encoded protein. Homology with the human, bovine, rat and mouse L/B/K-type ALP was found to be 88-90% at both the nucleotide and the amino acid levels. The cDNA was transferred into a eukaryotic expression vector and expressed following transfection into murine and mink lung fibroblast cell lines. High levels of enzymatically active ALP were detected, along with a 70-kDa protein reactive in immunoblot assay using a polyclonal antibody against the original crude FeALP preparation. FeALP was specifically released from intact cells by treatment with phosphoinositol-specific phospholipase-C. By Northern blot analysis, only one species of mRNA was detected using a 32P-labeled cDNA probe. These results indicate that the 2127-bp cDNA encodes a functional feline L/B/K-type ALP expressed on cell surfaces via phosphatidylinositol-glycan linkage. Despite electrophoretic comigration in two dimensions and following deglycosylation in a third dimension, FeALP failed to function as an FeLV receptor since its expression failed to provide for attachment or entry of virus into cells.

Alkaline Phosphatase↗

Excretion of alkaline phosphatase by Escherichia coli K-12 pho constitutive mutants transformed with plasmids carrying the alkaline phosphatase structural gene.

Escherichia coli alkaline phosphatase constitutive mutants carrying a pst or a phoS mutation and a plasmid-bearing gene phoA+ excreted into the growth medium up to 50% of the total alkaline phosphatase production. This excretion was pH dependent and did not involve drastic modifications of the cell envelope. Alkaline phosphatase accounted for 80% of total released proteins. Amplification of gene phoA+ was a necessary condition for excretion to occur. When the beta-lactamase structural gene bla+ was coamplified with gene phoA+, both enzymes were excreted. pst-transformed excretory strains did not show the pleiotrophic phenotype previously described for lky mutants.

Alkaline Phosphatase↗

A single Fc binding domain--alkaline phosphatase gene fusion expresses a protein with both IgG binding ability and alkaline phosphatase enzymatic activity.

A recombinant gene fusion was created and cloned using a previously constructed gene encoding a monodomain IgG Fc binding protein and the gene coding for bacterial alkaline phosphatase. The construct was able to express and secrete a fusion protein that exhibited both IgG binding and alkaline phosphatase enzymatic activities. Greater than 60% of the protein demonstrating both biological activities was detected from periplasmic space preparations. Nanogram concentrations of the Fc binding--alkaline phosphatase fusion protein allowed primary IgG antibody detection without the use of conjugated secondary antibodies. Removal of the domain coding for alkaline phosphatase resulted in decreased resistance of the protein to proteolytic degradation and the loss of IgG Fc binding ability. Using affinity-purified fusion protein, the specificity of binding to IgG, IgM and IgA was examined; binding was strong to IgG and barely detectable against IgM or IgA. Affinity for binding of the fusion protein to IgG (Kd = 6.7 x 10(-8) M) was determined to be equal to or greater than previously reported for protein A.

Alkaline Phosphatase↗

The tumor-derived fetal-intestinal alkaline phosphatase cDNA is identical in sequence to the adult intestinal alkaline phosphatase isozyme gene.

The alkaline phosphatase (AP) of Caco-2 cells, a cell line derived from a human adenocarcinoma of the colon, is quite similar to fetal intestinal AP in its enzymatic properties. The nucleotide sequence of a cDNA encoding AP produced in Caco-2 cells was examined. The sequence was identical to one of the three sequences of adult intestinal AP reported previously. We further investigated the entire nucleotide sequence of cDNA of intestinal-type AP produced in cancer cell lines such as HuH-7 cells, FL-amnion cells, and HuG-1 cells. The sequence of these cell APs was identical to that of Caco-2 cell AP. These results indicate that cancer cells producing intestinal-type AP have the same nucleotide sequence as that of adult intestinal AP, and suggest that the differences in electrophoretic mobilities of these cell APs compared with adult intestinal AP may be due to post-translational modifications.

Adult↗

The Bacillus subtilis 168 alkaline phosphatase III gene: impact of a phoAIII mutation on total alkaline phosphatase synthesis.

The first alkaline phosphatase (APase) structural gene mutant of Bacillus subtilis 168 was constructed by using a clone identified by hybridization to a synthetic degenerative oligonucleotide. The design of the probe was based on the first 29 amino acids of the sequenced mature APase III protein, which had been isolated from the secreted fraction of vegetative, phosphate-starved cells. DNA sequencing of the clone revealed the first 80 amino acids of the APase III protein, including a typical procaryotic signal sequence of 32 amino acids preceding the start of the mature protein. The 29 amino acids encoded by the predicted open reading frame immediately following the signal sequence are identical to the first 29 amino acids of the sequenced mature protein. This region shows 80% identity to strand A of the beta sheet that is very well conserved in Escherichia coli and mammalian APases. A phoAIII structural mutant was constructed by insertional mutagenesis with a fragment internal to the coding region. The effects of this mutation on APase production in B. subtilis 168 were analyzed under both phosphate starvation and sporulation conditions. The mutation in APase III reduced the total vegetative APase specific activity by approximately 40% and sporulation APase specific activity by approximately 45%. An APase protein was isolated from sporulating cells at stage III and was identified as APase III by protein sequencing of the amino terminus and by its absence in the phoAIII mutant. The APase III gene has been mapped to approximately 50 degrees on the B. subtilis chromosome.

Alkaline Phosphatase↗

Amniotic fluid alkaline phosphatase, gamma-glutamyltransferase, and 5'-nucleotidase activity from 13 to 40 weeks' gestation, and alkaline phosphatase as an index of fetal lung maturity.

Reference ranges for amniotic fluid alkaline phosphatase, gamma-glutamyltransferase, and 5-nucleotidase are described from 13 to 40 weeks' gestation. Gamma-glutamyltransferase and 5-nucleotidase activities peak early in the second trimester and then decrease to low values. Alkaline phosphatase shows a similar pattern of activity from 13 to 29 weeks' gestation, but thereafter activity increases to term; this late increase is mainly related to the heat-labile particulate form of alkaline phosphatase. Total and heat-labile alkaline phosphatase alone or expressed as a ratio with gamma-glutamyltransferase can be used with or as an alternative to lecithin/sphingomyelin ratios in the investigation of fetal lung maturity. A total alkaline phosphatase activity of 0.36 mukat/L and an alkaline phosphatase/gamma-glutamyltransferase ratio greater than 2 indicate pulmonary maturity.

Alkaline Phosphatase↗

DNA polymorphism of alkaline phosphatase isozyme genes: linkage disequilibria between placental and germ-cell alkaline phosphatase alleles.

The use of human placental alkaline phosphatase (PLAP) cDNA as a probe allows the detection and identification of restriction DNA fragments derived from three homologous genes, i.e., intestinal alkaline phosphatase (AP), germ-cell AP (GCAP), and PLAP. In previous RFLP studies we have reported linkage disequilibria between an RsaI and two PstI (a and b) polymorphic restriction sites and electrophoretic types of PLAP. In this report we present evidence that, in spite of the strong correlation with PLAP types, PstI(b) is an RFLP of GCAP. The data indicate close linkage between the PLAP and GCAP loci.

Alkaline Phosphatase↗

[Alkaline phosphatase in human lymphocytes. I. Cytochemical detection of alkaline phosphatase in normal human peripheral blood lymphocytes].

The present paper deals with a sensitive cytochemical method of identifying alkaline phosphatase (AP) in rosette-forming lymphocytes gained from the peripheral blood of healthy human beings. The percentage of AP-positive lymphocytes amounts to 5%, with all cells comprising B- and O-lymphocyte population and with T-lymphocytes being negative. In a group of healthy test persons, recently, however, having undergone various inflammatory processes or virus diseases, the number of AP-positive lymphocytes is significantly higher, from 41-73% in B- and O-lymphocytes and from 6-38% in T-lymphocytes. This observation indicates that AP in lymphocytes may have a clinical significance in reactive lymphoproliferative processes, which must be elucidated by further investigations.

Adult↗

Purification and properties of a phosphorylase (phosphoprotein) phosphatase associated with an alkaline phosphatase of Mr 35000 from bovine adrenal cortex.

A metal-ion-independent, nonspecific phosphoprotein phosphatase (Mr = 35000) which represents the major phosphorylase phosphatase activity in bovine adrenal cortex has been purified to apparent homogeneity. An alkaline phosphatase activity (p-nitrophenyl phosphate as a substrate) of the same molecular weight, which requires both a metal ion (Mg2+ greater than Mn2+ greater than Co2+) and a sulfhydryl compound for activity, has been found to co-purify with the phosphoprotein phosphatase throughout the purification procedures. Characterization of the phosphoprotein and the alkaline phosphatase activities with respect to their catalytic properties, substrate and metal ion specificities, relationship with large molecular forms of the enzymes and responses to various effectors has been carried out. The results indicate that the phosphoprotein phosphatase can be converted by pyrophosphoryl compounds (e.g. PPi and ATP) to a metal-ion-dependent form which, subsequently, can be reactivated by Co2+ greater than Mn2+ but not by Mg2+ or Zn2+. The results also indicate that, although the phosphoprotein and the alkaline phosphatase activities are closely associated, they exhibit distinct physical and catalytic properties. Discussions concerning whether these two activities represent two different forms of the same protein or two different yet very similar polypeptide chains have been presented.

Adrenal Cortex↗

N(omega)-phosphoarginine phosphatase (17 kDa) and alkaline phosphatase as protein arginine phosphatases.

Seven synthetic polymers, (Glu4, Tyr)n, (Arg)n, (Arg, Pro, Thr)n, (Arg-Gly-Glu)6, (Arg-Gly-Phe)6, (Glu-Arg-Gly-Phe)5, and (Ala-Leu-Arg-Arg-Ile-Arg-Gly-Glu-Arg)2, were treated with phosphoryl chloride to phosphorylate their Tyr, Thr, and Arg residues. Protamines and histones were phosphorylated similarly. These phosphorylated peptides were examined as to whether or not they serve as substrates for intestinal alkaline phosphatase [EC 3.1.3.1] and liver N(omega)-phosphoarginine phosphatase [Kuba, M., Ohmori, H., and Kumon, A. (1992) Eur. J. Biochem. 208, 747-752]. Phosphorylated polyarginine was hydrolyzed with a lower Km with alkaline phosphatase than with N(omega)-phosphoarginine phosphatase, while the phosphorylated forms of (Arg-Gly-Phe)6 and culpeine were better substrates for N(omega)-phosphoarginine phosphatase. When (Arg, Pro, Thr)n and culpeine were phosphorylated chemically after treatment with phenylglyoxal, these phosphorylated peptides were worse substrates for N(omega)-phosphoarginine phosphatase than for alkaline phosphatase. Moreover, the results of proton-decoupled 31P NMR analysis indicated that N(omega)-phosphoarginine phosphatase released Pi from N(omega)-phosphoarginine residues of phosphopeptides. These results indicate that both phosphatases function as protein arginine phosphatases in different manners, and that N(omega)-phosphoarginine phosphatase is useful for selectively detecting N(omega)-phosphoarginine residue in peptides containing various kinds of phosphorylated amino acids.

Alkaline Phosphatase↗

Microheterogeneity of rat serum alkaline phosphatase in fasting state: characterization of two duodenal alkaline phosphatase glycoforms.

Using concanavalin A-Sepharose affinity chromatography (Con A) we found that the serum of normal fasted adult rats contains two alkaline phosphatase (APase) glycoforms, one weakly bound (II) and the other strongly (III) bound to the column. Both serum APase glycoforms had an apparent molecular mass of 163 kD on Sepharose CL-6B and 118 kD on SDS-PAGE under nondenaturing conditions. We consider the molecular forms as dimeric, since monomers of 60.3 and 58.5 kD for the Con A weakly and strongly bound glycoform, respectively, were obtained. However, these two dimeric glycoforms were different in their pH optimum, affinity to p-nitrophenyl phosphate as substrate, the degree of L-phenylalanine inhibition and relative thermostability. Judging by the relative thermostability and by L-phenylalanine inhibition, it seems that both serum APase glycoforms in fasted rats are mainly of duodenal mucosal cell origin. The Con A weakly bound (II) glycoform could be derived from the cytosol, and the Con A strongly bound (III) one from both the cytosolic and membranous fractions of duodenal mucosal cells. However, in addition to the heat-stable component, the Con A strongly bound serum APase glycoform also contains a minor heat-labile and L-phenylalanine-resistant component which could be of nonspecific tissue origin since such a fraction was not discovered by us in rat duodenal mucosal cells.

Alkaline Phosphatase↗

[Alkaline phosphatase in human lymphocytes. II. A method for ultracytochemical detection of alkaline phosphatase in lymphocytes].

For the ultracytochemical identification of alkaline phosphatase in lymphocytes gained from the peripheral blood of healthy individuals a sensitive method is described which allows the low enzyme activity of these cells to be determined. This was possible because the authors succeeded in stabilizing lead ions in the alkaline medium by forming a complex directly between tris-(hydroxymethyl) aminomethan and lead (II) citrate. AP localized ultrachemically in lymphocytes in particular formations similar to phosphasomes of neutrophilic granulocytes. In those lymphocytes stimulated by lipopolysaccharides a high enzyme activity could be observed and, in addition to phosphasomes, the product of response can also be found in canal-like structures of the endoplasmatic reticulum. These findings contribute to clarify the ultrastructural localization of alkaline phosphatase in lymphocytes and may be regarded as an aid in discovering the importance of the enzyme in the biology of lymphocytes or in its activation, respectively.

Alkaline Phosphatase↗

Mutations at positions 153 and 328 in Escherichia coli alkaline phosphatase provide insight towards the structure and function of mammalian and yeast alkaline phosphatases.

In order to understand some of the differences between human placental, human, Saccharomyces cerevisiae and Escherichia coli alkaline phosphatases in specific activity, activation by magnesium, and pH versus activity profiles, the X-ray crystal structures of three mutant E. coli alkaline phosphatases have been determined. The aligned sequences of alkaline phosphatases from mammalian, yeast and E. coli show that 25 to 30% of the amino acids are absolutely conserved and the active site residues are completely conserved with the exception of residues 153, 328 and 155. The bacterial enzyme has a salt-bridge, Asp153/Lys328, near the third metal binding site which, based on sequence homology, is apparently absent in the yeast and mammalian enzymes. The human enzymes have histidine at positions 153 and 328, and the yeast enzyme has histidine at position 328. In the E. coli enzyme, Asp153 was replaced by histidine (D153H), Lys328 was replaced by histidine (K328H), and a double mutant (DM) was constructed containing both mutations. The structure of the K328H enzyme was refined using cross-validation to a resolution of 2.3 A with a working R-factor of 0.181 and a free R-factor of 0.249. The DM structure was determined to a resolution of 2.5 A with a working R-factor of 0.166 and a free R-factor of 0.233. The structure of the D135H enzyme, which has been reported to a resolution of 2.4 A, has been re-refined using cross-validation to a working R-factor of 0.179 and a free R-factor of 0.239 for controlled comparisons with the two new structures. In all three structures the most significant changes are related to the bound phosphate inhibitor and the identity of the metal ion in the third binding site. The changes in the position of the phosphate group and the alterations at the third metal binding site indicate the structural basis for the variations in the steady-state kinetic parameters previously reported for these enzymes.

Alkaline Phosphatase↗

Roles of alkaline phosphatase and labile internal mineral in matrix vesicle-mediated calcification. Effect of selective release of membrane-bound alkaline phosphatase and treatment with isosmotic pH 6 buffer.

The roles of alkaline phosphatase and labile internal mineral in matrix vesicle-mediated mineralization have been studied by selectively releasing the enzyme from a wide variety of matrix vesicle preparations using treatment with a bacterial phosphatidylinositol-specific phospholipase C and by demineralization of the vesicles using isosmotic pH 6 buffer. Following depletion of 50-90% of the alkaline phosphatase activity or treatment with citrate buffer, the vesicles were tested for their ability to accumulate 45Ca2+ and 32Pi from a synthetic cartilage lymph. Removal of alkaline phosphatase by phospholipase C treatment caused two principal effects, depending on the matrix vesicle preparation. In rapidly mineralizing vesicle fractions which did not require organic phosphate esters (Po) to accumulate mineral ions, release of alkaline phosphatase had only a minor effect. In slowly mineralizing vesicles preparations or those dependent on Po substrates for mineral ion uptake, release of alkaline phosphatase caused significant loss of mineralizing activity. The activity of rapidly calcifying vesicles was shown to be dependent on the presence of labile internal mineral, as demonstrated by major loss in activity when the vesicles were decalcified by various treatments. Ion uptake by demineralized vesicles or those fractionated on sucrose step gradients required Po and was significantly decreased by alkaline phosphatase depletion. Uptake of Pi, however, was not coupled with hydrolysis of the Po substrate. These findings argue against a direct role for alkaline phosphatase as a porter in matrix vesicle Pi uptake, contrary to previous postulates. The results emphasize the importance of internal labile mineral in rapid uptake of mineral ions by matrix vesicles.

Adenosine Monophosphate↗