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Augmentation of death ligand-induced apoptosis by aminopeptidase inhibitors in human solid tumor cell lines.

We previously reported that the aminopeptidase inhibitor bestatin induced apoptosis in several human leukemia cell lines. The present study was performed to examine whether bestatin can also induce apoptosis in solid tumor cell lines. Bestatin alone exhibited neither direct growth inhibition nor induction of apoptosis in the tumor cell lines examined. However, it significantly augmented the growth-inhibitory effect and induction of apoptosis by agonistic anti-Fas antibody (CH11). The augmentation by bestatin was also observed with other death ligands including tumor necrosis factor-alpha (TNF-alpha) in EBC-1 cells, a cell line sensitive to these death ligands. However, the HeLa S3 cell line, which is insensitive to TNF-alpha, showed no growth inhibition even by combination treatment. Bestatin methyl ester, a more cell-permeable derivative of bestatin with similar inhibitory activity to cytosolic neutral aminopeptidase, potentiated cell growth inhibition of CH11 more efficiently than bestatin. Other cytosolic neutral aminopeptidase inhibitors such as actinonin and puromycin also augmented cell growth suppression by CH11, while an enantiomer of bestatin lacking aminopeptidase inhibitory action did not increase the growth-inhibitory effects of CH11. The combination of 10 microg/ml of bestatin with CH11 promoted processing of caspase 3 to the active form p17 and efflux of mitochondrial cytochrome c into the cytosol more quickly and more intensely than CH11 alone. Inhibition of aminopeptidase was not involved in dATP- and cytochrome c-dependent caspase 3-activation in a cell-free system. Bestatin significantly augmented activation of caspase 8, which is upstream of cytochrome c efflux in the apoptosis cascade. These results suggested that intracellular neutral aminopeptidase might play an important role in Fas- or TNF-alpha-induced solid tumor cell apoptosis.

Adenosine Triphosphate↗

3-Amino-2-tetralone derivatives: novel potent and selective inhibitors of aminopeptidase-M (EC 3.4.11.2).

Derivatives of 3-amino-2-tetralone were evaluated for their ability to selectively inhibit the membrane-bound zinc-dependent aminopeptidase (EC 3.4.11.2), isolated from porcine kidney. These novel nonpeptidic compounds are potent competitive inhibitors of the enzyme. Some of them have Ki values in the nanomolar range (g, Ki = 80 nM). Moreover, these inhibitors are selective for aminopeptidase-M (AP-M) since they do not inhibit aspartate aminopeptidase and arginine aminopeptidase and only poorly inhibit cytosolic leucine aminopeptidase at high concentrations (g, Ki = 70 microM). The availability of inhibitors which are selective for AP-M with respect to other mammalian aminopeptidases may aid in identifying new endogenous substrates and thus clarify the physiological or pathophysiological role(s) of AP-M.

Aminopeptidases↗

Prolyl aminopeptidase gene from Flavobacterium meningosepticum: cloning, purification of the expressed enzyme, and analysis of its sequence.

In spite of the numerous studies regarding prolyl aminopeptidase, little is known about its mechanism and the significance of its similarity to a number of hydrolases of diverse specificity that belong to the alpha/beta hydrolase-fold family (Pseudomonas 2-hydroxymuconic semialdehyde hydrolase, atropinesterase, and 2-hydroxy-6-oxophenylhexa-2,4-dienoic acid hydrolase; human and rat epoxide hydrolases). We report the cloning and sequencing of the novel prolyl aminopeptidase gene from Flavobacterium meningosepticum (FPAP) which allowed a more comprehensive sequence comparison. FPAP was found to be a 35-kDa monomeric enzyme, releasing N-terminal proline but not hydroxyproline residues from small peptides and naphthylamide esters. Using the unweighted pair group method with arithmetic mean method, an evolutionary tree that depicts the probable relationship between the prolyl aminopeptidases and the alpha/beta hydrolase-fold enzymes was constructed. Since the alpha/beta hydrolase-fold family might also include the members of the prolyl oligopeptidase family (prolyl oligopeptidase, dipeptidyl peptidase IV, and prolyl carboxypeptidase), this proposal links all the known Pro-Y bond-cleaving proline-specific peptidases (prolyl oligopeptidase family, prolyl aminopeptidases, and prolinase) as enzymes with similar scaffolds and hydrolytic mechanisms. On the other hand, the enzymes that cleave X-Pro bonds are metalloenzymes grouped within the "pita-bread" fold family (aminopeptidase P and prolidase). Although the latter two enzymes show significant sequence homology, prolyl aminopeptidase, prolinase, and the members of the prolyl oligopeptidase family do not, and might share the alpha/beta hydrolase-fold scaffold. This rationale would explain the failure in finding a common "proline-recognizing motif" in the primary structures of these proline-specific peptidases.

Amino Acid Sequence↗

A new type of major aminopeptidase in bovine brain.

A new type of major aminopeptidase was purified from bovine brain by ammonium sulfate fractionation and TMAE-fractogel (anion exchange), arginine-Sepharose 4B, Sephadex G-150, and Sephadex G-100 column chromatography. The purified enzyme showed a maximum activity at pH 7.2, and its molecular size was estimated to be 98,000 by gel filtration and 104,000 by SDS-PAGE with or without 2-mercaptoethanol. Further properties were activation by thiol reagents; inhibition by EDTA, puromycin, bestatin, amastatin, actinonin, leuhistin and probestin; and very low concentrations of Cu2+, Cd2+, Pb2+, Al3+, Fe3+, and Zn2+ inhibited activity. The enzyme hydrolyzed several amino acyl-7-amido-4-methylcoumalin derivatives (amino acid-MCA). The order of MCA-substrate specificity expressed as kcat/Km is Lys-MCA > Arg-MCA > Leu-MCA > Met-MCA > Phe-MCA > Tyr-MCA > Ala-MCA >> Gly-MCA, Pro-MCA, Ser-MCA, Asn-MCA. Immunoreactivity of the antibody against the purified aminopeptidase was observed in human brain and most rat tissues examined including brain, liver, kidney, lung, heart, and skeletal muscle at the same molecular size as in bovine brain aminopeptidase. Most of the Lys-, Leu-, Met-, and Phe-MCA degrading activity in crude bovine and human brain extracts was absorbed by the aminopeptidase IgG, suggesting that this aminopeptidase is a major enzyme, sharing at least Lys-, Leu-, Met-, and Phe-MCA degrading aminopeptidase activities in the brains.

Amino Acids↗

Aminopeptidase-like protease released from oocytes affects oocyte surfaces and suppresses the acrosome reaction in establishment of polyspermy block in oocytes of the mussel Mytilus edulis.

Suppression of the acrosome reaction of sperm on fertilized oocytes inhibits sperm-oocyte binding and is considered one of the three mechanisms responsible for polyspermy block in oocytes of the mussel Mytilus edulis (Togo et al., 1995). When unfertilized oocytes were inseminated in the presence of aminopeptidase inhibitors and the fertilized oocytes were inseminated again, neither the acrosome reaction nor sperm binding to fertilized oocytes were suppressed, suggesting that aminopeptidase-like protease participates in suppression of the acrosome reaction. The supernatant solution obtained after centrifuging a suspension of fertilized oocytes hydrolyzed aminopeptidase substrates, and these activities were inhibited strongly or effectively by aminopeptidase inhibitors. When unfertilized oocytes were incubated with this supernatant solution and inseminated, both the number of sperm bound and the acrosome reaction rate decreased, and these effects were reversed by conducting this treatment in the presence of aminopeptidase inhibitors. These results suggest that aminopeptidase-like protease released from the oocyte at fertilization affects the oocyte surface to suppress the acrosome reaction and consequently inhibits sperm-oocyte binding.

Acrosome↗

An opiate receptor-associated aminopeptidase that degrades enkephalins.

During the purification of opiate receptor by affinity chromatography on wheat germ agglutinin-agarose, an aminopeptidase is coeluted with the receptor. Virtually all of both the enzyme and the receptor is retained on the hydroxylapatite column. The aminopeptidase functions optimally at neutral pH and is activated by Mn2+. The enzyme is sensitive to dithiothreitol, is inhibited by amastatin and bestatin, and is insensitive to puromycin. The enzyme seems to be linked to the receptor, since its activity is enhanced by D-Ala2-Met-enkephalinamide or naltrexone. The properties of this aminopeptidase indicate that it is distinct from neutral arylamidase, leucine-aminopeptidase, aminopeptidases A and B, brain acidic aminopeptidase, and the membrane aminoenkephalinase that we purified recently (4).

Aminopeptidases↗

Subcellular localisation of leucine aminopeptidase in human polymorphonuclear leukocytes.

Human polymorphonuclear leukocytes were homogenised in isotonic sucrose and subjected to analytical subcellular fractionation by sucrose density gradient centrifugation. The gradient fractions were assayed for leucine aminopeptidase and for principal organelle marker enzymes. Leucine aminopeptidase, when assayed with both L-leucine-7-amido-4-methyl-coumarin and leucyl-2-naphthylamide as substrate, showed a unimodal distribution with an equilibrium density of 1.18 g X cm-3. This distribution was quite distinct from that exhibited by marker enzymes for all the recognized subcellular organelles: there was no leucine aminopeptidase associated with the plasma membrane. Fractionation experiments with neutrophils treated with isotonic sucrose containing a low concentration of digitonin, and studies with the non-permeant ectoenzyme inhibitor, diazotised sulphanilic acid, confirmed that leucine aminopeptidase had a purely intracellular localisation. Fractionation experiments with neutrophils homogenised in sucrose medium containing digitonin, showed leucine aminopeptidase associated with a membrane fraction. It is suggested that leucine aminopeptidase is located to the membrane of a previously unrecognised population of cytoplasmic granules of the human neutrophil.

Cytoplasmic Granules↗

A new aminopeptidase in monkey cerebral membrane fraction: hydrolysis of enkephalin.

A new aminopeptidase, which cleaves the Tyr1-Gly2 bond of enkephalin, was partially purified from the monkey brain membrane fraction. The molecular weight of the enzyme was estimated to be about 53,000, and the optimum pH was in the neutral region (pH 6.5). The enzyme hydrolyzed Leu-enkephalin with a Km value of 238 microM. It strongly hydrolyzed L-tyrosine and L-leucine beta-naphthylamide, but showed only weak affinity for L-arginine or L-alanine beta-naphthylamide. The enzyme was much more potently inhibited by bestatin (IC50: 2 x 10(-8) M) than the other specific aminopeptidase inhibitors examined, while it showed low sensitivity to puromycin and actinonin, inhibitors of cerebral enkephalin-degrading aminopeptidase and aminopeptidase M, respectively. These results indicate that the new enkephalin-degrading aminopeptidase is clearly distinct from aminopeptidase M, which has been reported to be a key enzyme in enkephalin inactivation.

Aminopeptidases↗

Multiple molecular forms of human pancreas alanine aminopeptidase.

Human pancreas is the source of an alanine aminopeptidase (HPAA) that is unique to pancreas and is readily distinguishable from the liver, kidney, and duodenal alanine aminopeptidases. Each of these three aminopeptidases appears in small quantities in blood and therefore may consitute tissue/organ specific marker enzymes. In this study alanine aminopeptidase from pancreas has been purified. Pancreas alanine aminopeptidase was resolved upon purification with ion exchange chromatography into three isoenzymes. Gel filtration chromatography of these isoenzymes indicates that their molecular weights are near 235 000 daltons. The isoenzymes contain a firmly bound divalent cation that could be removed with EDTA only at temperatures above 40 degrees C (at which the enzymes were stable) and below 52 degrees C (at which thermal denaturation begins to take place). Treatment with EDTA at 4 degrees C yields fully active enzymes, which, however may be stimulated approximately 200% by the addition of Co2+ at 10(-4) mol/l. This cobalt stimulation is easily reversed by dialysis of the stimulated isoenzymes against deionized water. The pancreas alanine aminopeptidases were not inhibited by tosyl-phenylalanine chloromethylketone or by tosylleucine chloromethylketone, whereas phenylalanine chloromethylketone was inhibitory. The Km values for methionyl-, arginyl-, leucyl-, alanyl-, and isoleucyl-beta-naphthylamide for each isoenzyme are statistically identical and the average values are 0.36, 0.60, 0.69, 1.25, and 1.29 X 10(-4) mol/l, respectively. The kcat values are 2.50, 1.58, 0.82, 0.38, and 0.19 X 10(4) sec-1, respectively.

Aminopeptidases↗

Leukotriene A4 hydrolase, a bifunctional enzyme. Distinction of leukotriene A4 hydrolase and aminopeptidase activities by site-directed mutagenesis at Glu-297.

We previously obtained evidence for intrinsic aminopeptidase activity for leukotriene (LT)A4 hydrolase, an enzyme characterized to specifically catalyse the hydrolysis of LTA4 to LTB4, a chemotactic compound. From a sequence homology search between LTA4 hydrolase and several aminopeptidases, it became clear that they share a putative active site for known aminopeptidases and a zinc binding domain. Thus, Glu-297 of LTA4 hydrolase is a candidate for the active site of its aminopeptidase activity, while His-296, His-300 and Glu-319 appear to constitute a zinc binding site. To determine whether or not this putative active site is also essential to LTA4 hydrolase activity, site-directed mutagenesis experiments were carried out. Glu-297 was mutated into 4 different amino acids. The mutant E297Q (Glu changed to Gln) conserved LTA4 hydrolase activity but showed little aminopeptidase activity. Other mutants at Glu-297 (E297A, E297D and E297K) showed markedly reduced amounts of both activities. It is thus proposed that either a glutamic or glutamine moiety at 297 is required for full LTA4 hydrolase activity, while the free carboxylic acid of glutamic acid is essential for aminopeptidase.

Amino Acid Sequence↗

Types and localization of aminopeptidases in different human blood cells.

1. Erythrocytes, polymorphonuclears, monocytes and lymphocytes isolated from human peripheral blood, were shown to possess in their cytosols, granules and microsomal fractions, aminopeptidases capable of hydrolysing arginyl-, leucyl-, methionyl-, phenylalanyl- and alanyl-2-naphthylamide. 2. In different cell compartments enzymes of different pI were responsible for these activities. 3. Chloride activated arginine aminopeptidase, broad specificity aminopeptidase and dipeptidyl peptidase III were found in cytosols of all examined cells. 4. In granules at least two aminopeptidases, a basic or neutral one, and an acidic one inactive at pH 4.4, could be discerned, whereas in microsomal fractions a broad specificity aminopeptidase preferring methionine was detected. 5. There is a considerable degree of similarity in the pattern of aminopeptidases within different blood cells. This may suggest that their functions are correlated to the physiological role of a particular cell compartment, rather than to that of a distinct cell type.

Aminopeptidases↗

Photoaffinity labeling of membrane-bound porcine aminopeptidase N.

To investigate the possible role of aminopeptidase N (alpha-aminoacyl-peptide hydrolase (microsomal), EC 3.4.11.2) in the transport of amino acids from oligopeptides, the modified amino acids Phe(N3) and Phe(N3, I) and the tetrapeptides Phe(N3) or Phe(N3, I)-L-or-DAla-Gly-Gly have been synthesized. The azido-amino acids were radioactively labeled by tritium or 125I before their coupling with the tripeptides. Their utilization as photoaffinity labels for aminopeptidase N has been studied. The modification imposed at the N-terminal residue of the tetrapeptides has not impaired their hydrolysis by porcine aminopeptidase N (same kinetic parameters as unmodified peptides). In addition, evidence is presented for a specific and reversible interaction in the dark of the azido-derivatives at the substrate recognition site of the enzyme. Upon photolysis, irreversible inactivation of aminopeptidase N and covalent attachment of Phe(N3, I) have been demonstrated. Soluble and membrane-bound aminopeptidases are both labeled to the same extent indicating that the free azido-amino acid preferentially reacts with the external part of the enzyme. Although the linkage of the azido-derivative is not strictly restricted to the region of the active site, the values obtained strongly suggest that 1 mol probe has been covalently attached per mol monomer of inhibited aminopeptidase.

Affinity Labels↗

Sequential hydrolysis of proline-containing peptides with immobilized aminopeptidases.

Proline-containing polypeptides are shown to be sequentially degraded by two aminopeptidases. Clostridial aminopeptidase (EC 3.4.11-) cleaves off any N-terminal amino acid residue including proline from polypeptide chains, but does not cleave the N-terminal secondary peptide bonds involving a prolyl nitrogen. Aminopeptidase P (EC 3.4.11.9) cleaves exclusively such secondary bonds. The two enzymes were immobilized by coupling them covalently to porous amino glass beads. Highly stable preparations were obtained with unchanged pH optimum and thermal stability. The applicability of clostridial aminopeptidase to sequence determination was demonstrated by the time-dependent hydrolysis of enkephalin and Substance P octapeptide. Sequential hydrolysis with the two immobilized enzymes was demonstrated with the proline-containing (Pro-Gly-Pro)10, [Asn1, Val5]angiotensin II, bradykinin, Substance P and tuftsin. Absence of endopeptidase activities was demonstrated by resistance of cytochrome c to hydrolysis and by the ordered release of amino acids during the sequential degradation by immobilized clostridial aminopeptidase and aminopeptidase P.

Amino Acid Sequence↗

Aminopeptidase-B in the rat testes: isolation, functional properties and cellular localization in the seminiferous tubules.

An aminopeptidase of the B-type, with an apparent M(r) 72,000 and pI = 4.9, was isolated from rat testes and characterized. The enzyme was able to remove only Arg and/or Lys residues from L-amino acid beta-naphthylamide derivatives and from the N-terminus of several peptides. No cleavage occurred in the case of Arg-Pro bonds as found in bradykinin and substance P. The enzyme was sensitive to cysteinyl reagents and to aminopeptidase inhibitors, such as bestatin, amastatin and arphamenines A and B. The aminopeptidase activity, tested with L-Arg beta-naphthylamide and with Arg0-Met-enkephalin as substrates, was inhibited by o-phenanthroline, and restored by Zn2+ suggesting its metallopeptidase character. The partial characterization of an aminopeptidase-B activity in rat brain cortex identified a protein which is biochemically and immunologically related to the testis enzyme. By immunohistochemistry, the aminopeptidase-B was found to be particularly abundant in the seminiferous tubules at late stages of spermatogenesis and was clearly detected in a restricted area of elongated spermatids. Remarkably, the enzyme was observed to concentrate massively in the residual bodies. Since this aminopeptidase-B was able in vitro to trim out N-terminal Arg and/or Lys residues from peptides mimicking processing intermediates, it is proposed that this enzyme may be involved in propeptide and proprotein processing mechanisms in the course of spermatid differentiation.

Amino Acid Sequence↗

Peptide degradation: effect of substrate phosphorylation on aminopeptidasic hydrolysis.

The effect of substrate phosphorylation on the susceptibility to exopeptidasic attack by leucyl aminopeptidase of swine kidney, alanyl aminopeptidase from human liver and aminopeptidase N of Escherichia coli was investigated using a synthetic heptapeptide (L-R-R-A-S-L-G) and its phosphorylated derivative. The enzyme-catalyzed products were analyzed by thin layer chromatography and electrophoresis. The sensitivities of peptide and phosphopeptide to leucyl aminopeptidase digestion were then compared. Data obtained indicated that when phosphopeptide was used as substrate one main product accumulated, which corresponded to the fragment A-S(P)-L-G, while unphosphorylated peptide was completely degraded to its constituent amino acids. Identical results were obtained using aminopeptidase N of E. coli. Using alanyl aminopeptidase as enzyme, the results obtained were essentially similar, since the exopeptidasic activity on the phosphorylated peptide was strongly hampered in the vicinity of phosphoseryl residue leading to accumulation of the same phosphorylated product, although this enzyme could not completely degrade the unphosphorylated peptide. It was concluded that phosphorylation of substrates does effect enzymic degradation of proteins.

Amino Acid Sequence↗

Purification of a novel aminopeptidase from the pollen of Parietaria judaica that alters epithelial integrity and degrades neuropeptides.

BACKGROUND: Parietaria judaica pollen is a common cause of pollinosis in the Mediterranean area. OBJECTIVE: This study sought to purify and characterize the peptidase responsible for the majority of proteolytic activity present in the pollen extract of P judaica, and to investigate its contribution to the allergic response. METHODS: A serial of chromatographic steps was applied to isolate the peptidase from P judaica's pollen, and its biochemical properties were determined. Bioactive peptides present in the airways were incubated with the peptidase, and their degradation was visualized by direct protein sequencing. In addition, we measured the cellular detachment, by methylene blue binding assay, of an airway-derived epithelial cell line (A549) in the presence of the peptidase, and visualized, by Western blot, the degradation of proteins from intercellular junctions. RESULTS: We purified a 98-kDa peptidase from the pollen of P judaica that was classified as an aminopeptidase on the basis of its biochemical properties and internal amino acid sequence. The aminopeptidase was able to degrade bioactive peptides. Moreover, the aminopeptidase caused cellular detachment of A549 cell line and degradation of occludin and E-cadherin. CONCLUSION: Our results suggest that the P judaica aminopeptidase can alter the integrity of the epithelium barrier by degrading occludin as well as E-cadherin. In addition, P judaica aminopeptidase can degrade bioactive peptides, which can exacerbate the overall bronchoconstrictive effect detected in asthmatic lungs. CLINICAL IMPLICATIONS: The novel aminopeptidase described here could constitute a relevant therapeutic target in the treatment of allergic disorders induced by the pollen of P judaica.

Amino Acid Sequence↗

Purification and characterisation of a secreted aminopeptidase from adult Ascaris suum.

A metalloaminopeptidase was identified in culture fluids collected during in vitro cultivation of adult Ascaris suum. The enzyme was purified by anion-exchange and size-exclusion HPLC. The M(r) of the enzyme was estimated at 293 kDa and consisted of subunits with M(r)s of 153 and 142kDa. The isoelectric point of the aminopeptidase was 4.7. The aminopeptidase displayed a substrate preference for terminal arginyl residues. Aminopeptidase activity was also present in muscle, female reproductive tissue, pharynx, pseudocoelomic fluid and intestine. Among the various tissues, aminopeptidase activity was highest in the intestines; the highest activity was found in culture fluids (three-fold higher than intestinal tissue). The aminopeptidase released by adult A. suum was enzymatically and biochemically identical to an aminopeptidase released during in vitro development of A. suum third- to fourth-stage larvae.

Aminopeptidases↗

Functional analysis of leucine aminopeptidase in Caenorhabditis elegans.

To investigate the function of the enzyme leucine aminopeptidase in nematodes, a Caenorhabditis elegans leucine aminopeptidase gene identified in the genome sequence was functionally analysed by transfection of a leucine aminopeptidase beta-galactosidase reporter construct and characterisation of a null mutant. The leucine aminopeptidase transgene is expressed along the length of the gut, and immunolocalisation shows the enzyme in the buccal cavity, pharynx, anterior gut and rectum. It is constitutively expressed as seen by analysis of cDNAs constructed from mRNAs of nematodes taken at 2 h intervals through the life-cycle; and by western blot analysis of protein from the same set of nematodes. Leucine aminopeptidase null mutants had a slower growth rate and delayed onset of egg-laying. We suggest that in C. elegans, leucine aminopeptidase is a digestive enzyme.

Amino Acid Sequence↗