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Possible involvement of aminopeptidase A in hypertension in spontaneously hypertensive rats (SHRs) and change of refractoriness in response to angiotensin II in pregnant SHRs.

BACKGROUND: Hypertension complicated with pregnancy is a major cause of maternal and fetal mortality, but its pathophysiology is unclear. OBJECTIVE: To investigate the pressor response to angiotensin II (Ang II) and the involvement of the Ang II degrading protease, aminopeptidase A, in spontaneously hypertensive rats (SHRs). DESIGN: Pregnant SHRs and Wistar-Kyoto (WKY) rats were studied. Angiotensin II (200 ng/kg per min) or saline was infused by osmotic pump from day of 15 gestation, and caesarean section was performed at day 20 of gestation. Blood pressure during pregnancy, weight of placentas and pups at caesarean section, and aminopeptidase A activity in placenta and renal cortex were measured. RESULTS: Ang II treatment induced increases in blood pressure that were greater in non-pregnant WKY rats than those in pregnant WKY rats, pregnant SHRs, and non-pregnant SHRs. Renal aminopeptidase A activity in SHRs was significantly lower than that in WKY rats. Renal aminopeptidase A activity in pregnant SHRs was significantly greater than that in non-pregnant SHRs, but there was no significant increase in pregnant WKY rats. Placental aminopeptidase A activity in SHRs was greater than that in WKY rats. Placental aminopeptidase A activity in WKY rats was increased by Ang II, but was not increased in SHRs. Weights of placentas and pups were significantly lower in SHRs than in WKY rats. CONCLUSIONS: Renal aminopeptidase A may be involved in the development of hypertension and the regulation of blood pressure in SHRs. Placental aminopeptidase A may be upregulated in response to fetal stress in pregnant SHRs.

Aminopeptidases↗

Fractionation and characterization of cystine aminopeptidase (oxytocinase) and arylamidase of human serum during pregnancy.

Cystine aminopeptidase and arylamidase activities in human serum were determined by enzymic hydrolysis of L-cystine-di-beta-naphthylamide (CysNA) and L-leucine-beta-naphthylamide (LeuNA), respectively. The activities of both enzymes increased during pregnancy, cystine aminopeptidase 12.5-fold and arylamidase 8.3-fold. Serum CysNA and LeuNA hydrolysing aminopeptidases were separated by gel filtration on Sepharose 6B. Serum from non-pregnant women (control) contained arylamidase (Ic), which hydrolysed LeuNA and (weakly) CysNA, and cystine aminopeptidase II, hydrolysing only CysNA. During pregnancy a new enzyme appeared in maternal serum and showed cystine aminopeptidase and arylamidase activity (Im). Maternal serum Enzyme(s) I had higher pH optima (6.5 with CysNA; 7.5 with LeuNA) and higher molecular weights (309,000) than arylamidase Ic (pH optima at 5.52-5.5 with CysNA and 7.0 with LeuN; mol.wt approximately 130,000). Arylamidase Ic was more sensitive to L-methionine, but more resistant to heat than maternal serum Enzyme(s) I. Both control and maternal serum Enzyme(s) I were inhibited by EDTA, but were re-activated by Zn2+ and Co2+ with LeuNA and CysNA as substrates and by Ni2+ with CysNA. Cystine aminopeptidase Im and arylamidase Im may be a single enzyme although differences were obtained in pH optima and reactivation by Ni2+ after EDTA treatment. Since maternal serum Enzyme(s) I had biochemical characteristics similar to those of placental aminopeptidase(s) I, it is suggested that the activities are of placental origin. Cystine aminopeptidase II appeared in all sera. It differed clearly from both maternal and control serum enzyme(s) I: it had the lowest molecular weight (76,000), a different pH optimum (6.0) and was resistant to EDTA and L-methionine. It was not as effectively inhibited by Ni2+ as was Enzyme(s) I.

Aminopeptidases↗

A novel mammalian high-molecular-weight aminopeptidase.

Studies with the human lymphoma U937 cell line revealed the presence of two soluble aminopeptidase activities. Using specific antisera one of these was identified as the puromycin-specific aminopeptidase, while the other appeared to be a novel approximately 200-kDa activity. The kinetic properties of this high-molecular-weight aminopeptidase, referred to as Ap200, were similar to those of the puromycin-sensitive aminopeptidase, but showed quantitative differences. Ap200 is relatively insensitive to inhibition by both puromycin, K(i) = 27 microM, and bestatin, K(i) = 1.6 microM. Among the synthetic beta-naphthylamides, Ap200 is more specific for alanine-beta-naphthylamide compared to the puromycin-sensitive aminopeptidase. Similarly, this enzyme cleaves a more limited number of physiological peptides exhibiting a preference for the enkephalins. Ammonium sulfate, but not sodium chloride at the same ionic strength, was able to dissociate the high-molecular-weight aminopeptidase to a approximately 100-kDa active form. The high-molecular-weight aminopeptidase is found as a low abundant protein in a number of tissues including intestine, kidney, liver, lung, muscle, spleen, and testes, but could not be detected in adrenal, heart, or brain. Thus, it has a tissue distribution which differs from the puromycin-sensitive aminopeptidase.

Alanine↗

A new proline aminopeptidase assay for diagnosis of bacterial vaginosis.

Bacterial vaginosis is one of the most common occurring vaginal conditions among women of reproductive age. A rapid and reliable laboratory test for diagnosis of bacterial vaginosis would be helpful in the clinical detection of this disease. Elevated proline aminopeptidase activity has been identified as a reliable marker enzyme for bacterial vaginosis. A proline aminopeptidase assay has been shown to predict accurately women with a clinical diagnosis of bacterial vaginosis. However, this assay has significant practical disadvantages, the most notable of which is the production of a carcinogenic end product, alpha-naphthylamine. We have developed a modified assay for this bacterial vaginosis marker enzyme with L-proline p-nitroanilide, a substrate that does not yield a carcinogenic end-product. The new proline aminopeptidase assay is a one-step test that is analyzed colorimetrically with microsomal leucine aminopeptidase used as a standard enzyme (linear from 3 to 125 mU per well). We have determined the activity of proline aminopeptidase in vaginal wet preparations from 57 patients with both assay methods. In addition, vaginal smears were examined with Gram's stain and analyzed for bacterial vaginosis with the Spiegel method. When compared with the Spiegel method, the two proline aminopeptidase assay methods were similar with respect to assay sensitivity (93%), specificity (91% to 93%), and the predictive value of a positive result (78% to 82%) or a negative result (97% to 98%). Vaginal wash samples also were assessed for proline aminopeptidase activity. Values for samples identified as bacterial vaginosis positive were significantly different (p less than 0.0001) from those that were negative according to the Spiegel analysis of Gram's stain: negative results, 66 +/- 41 mU/ml; positive results, 704 +/- 145 mU/ml. These findings indicate that this improved proline aminopeptidase assay will offer a rapid, sensitive, and objective laboratory method for the diagnosis of bacterial vaginosis.

Aminopeptidases↗

Subcellular localization and levels of aminopeptidases and dipeptidase in Saccharomyces cerevisiae.

Three aminopeptidases (L-aminoacyl L-peptide hydrolases, EC 3.4.11) and a single dipeptidase (L-aminoacyl L-amino acid hydrolase, EC 3.4.13) are present in homogenates of Saccharomyces cerevisiae. Bassed on differences in substrate specificity and the sensitivity to Zn2+ activation, methods were developed that allow the selective assay of these enzymes in crude cell extracts. Experiments with isolated vacuoles showed that aminopeptidase I is the only yeast peptidase located in the vacuolar compartment. Aminopeptidase II (the other major aminopeptidase of yeast) seems to be an external enzyme, located mainly outside the plasmalemma. The synthesis of aminopeptidase I is repressed in media containing more than 1% glucose. In the presence of ammonia as the sole nitrogen source its activity is enhanced 3--10-fold when compared to that in cells grown on peptone. In contrast, the levels of aminopeptidase II and dipeptidase are less markedly dependent on growth medium composition. It is concluded that aminopeptidase II facilitates amino acid uptake by degrading peptides extracellularly, whereas aminopeptidase I is involved in intracellular protein degradation.

Aminopeptidases↗

[Urinary elimination of multiple forms of gamma-glutamyltranspeptidase and aminopeptidase (author's transl)].

Concentrated and dialyzed 24-h urines of healthy persons were separated by 105000 X g ultracentrifugation into a pellet (P105) and a supernatant (S105) fraction. Chromatography of the P105 fraction on Sepharose 4B and 2B revealed that gamma-glutamyltranspeptidase and aminopeptidase activities had a molecular mass of 20 X 10(5) to 40 X 10(6), whereas in the S105 fraction soluble gamma-glutamyltranspeptidase and aminopeptidase had 86000 and 160000, respectively. Triton X-100 solubilization was performed on the P105 fraction and on a human renal cortex 40000 X g pellet, used as a reference. All the activity was recovered in both cases in a single peak of detergent gamma-glutamyltranspeptidase and detergent aminopeptidase eluted by filtration on Ultrogel Ac A22. Apparent molecular mass of Triton X-100 solubilized urinary and renal enzymes were 250000 and 243000 for gamma-glutamyltranspeptidase, and 298000 for both aminopeptidases. Protease solubilized forms were obtained by trypsic digestion of detergent urinary and renal forms. Both gamma-glutamyltranspeptidases were found to have an apparent molecular mass of 86000 on Sephadex G 150, which is identical to the value found for the S105 urinary gamma-glutamyltranspeptidase. The aminopeptidases had 238000 and 232000, which is a higher value than the molecular mass of the S105 urinary aminopeptidase. This letter could be a degraded form of the renal aminopeptidase. These findings suggest that gamma-glutamyltranspeptidase and aminopeptidase in the P105 fraction are similar to native renal enzymes. Evaluation of the P105 fraction enzymatic activities may thus be useful in the diagnosis of tubular damage.

Aminopeptidases↗

Synthesis and structure activity relationships of novel non-peptidic metallo-aminopeptidase inhibitors.

Racemic derivatives of 3-amino-2-tetralone were synthesised and evaluated for their ability to inhibit metallo-aminopeptidase activities. New compounds substituted in position 2 by methyl ketone, substituted oximes or hydroxamic acids as well as heterocyclic derivatives were evaluated against representative members of zinc-dependent aminopeptidases: leucine aminopeptidase (E.C. 3.4.11.1), aminopeptidase-N (E.C. 3.4.11.2), Aeromonas proteolytica aminopeptidase (E.C. 3.4.11.10), and the aminopeptidase activity of leukotriene A(4) hydrolase (E.C. 3.3.2.6). Several compounds showed K(i) values in the low micromolar range against the 'one-zinc' aminopeptidases, while most of them were rather poor inhibitors of the 'two-zinc' enzymes. This interesting selectivity profile may guide the design of new, specific inhibitors of target mammalian aminopeptidases with one active site zinc.

Aeromonas↗

Downstream change in leucine aminopeptidase activity and leucine assimilation by epilithic microbiota along the River Swale, northern England.

Parallel determinations of epilithic extracellular leucine aminopeptidase activity and leucine assimilation were made at five sites along 112 km of the River Swale and also in two tributaries, the River Wiske and Cod Beck. Epilithic leucine aminopeptidase activity along the Swale increased with distance downstream; this increase was gradual, rather than stepwise in response to specific sewage-works outfalls. Epilithic leucine assimilation, in contrast, did not consistently increase along the river. Epilithic leucine aminopeptidase activity and leucine assimilation were both potentially controlled by epilithic microbial variables (bacterial abundance and chlorophyll a) while leucine aminopeptidase activity was also strongly related to water-quality variables, especially temperature, pH and conductivity. Epilithic leucine aminopeptidase activity and leucine assimilation were coupled, but the magnitude of aminopeptidase activity was always substantially greater than that of leucine assimilation. Arguments are presented, however, which suggest that this did not necessarily indicate the constant availability of excess leucine, and by inference amino-acid nitrogen, to epilithic bacteria. Values of epilithic leucine aminopeptidase activity and leucine assimilation, expressed relative to rates in overlying water, suggested that most activity and assimilation was epilithic rather than planktonic, although the planktonic contribution was proportionately greater at the deeper, more downstream, sites. In the tributaries, River Wiske and Cod Beck, values of epilithic leucine aminopeptidase activity and epilithic microbial abundance, as well as those of many water-quality variables, resembled values in the middle and lower Swale. Thus, these tributaries were essentially lowland, enriched watercourses being very different from the headstreams of the main river.

Animals↗

The role of aminopeptidases in haemoglobin degradation in Plasmodium falciparum-infected erythrocytes.

Intra-erythrocytic Plasmodium parasites digest host cell haemoglobin and use the liberated amino acids for protein synthesis. Although several endoproteases (aspartic, cysteine, and metallo-) have been shown to be involved in the initial stages of haemoglobin degradation, little is known about the steps immediately before amino acid release. In our studies, fluorometric enzyme assays indicated that the stage of the P. falciparum erythrocytic cycle with highest aminopeptidase activity was the stage at which most haemoglobin degradation occurs, i.e. the trophozoite. Consistent with these results, metabolic growth assays indicated that the late ring/trophozoite stage was most susceptible to aminopeptidase inhibitors. To reconstitute the terminal stages of haemoglobin breakdown in vitro, we synthesised three peptides with amino acid sequences corresponding to known products of the endoproteolytic digestion of haemoglobin and employed them as substrates for aminopeptidases. Both trophozoite cytosolic extract, and partially-purified aminopeptidase, hydrolysed these peptide fragments to amino acids. Hydrolysis appeared to occur sequentially from the amino-termini of the peptides, and was inhibited in a concentration-dependent manner by the aminopeptidase-specific inhibitor nitrobestatin. The results suggest that P. falciparum aminopeptidases could be the enzymes responsible for the hydrolysis of haemoglobin-derived peptides to free amino acids. Lack of ultrastructural change in parasites treated with relevant concentrations of aminopeptidase-specific inhibitors, however, indicated that little feedback exists whereby the inhibition of cytosolic aminopeptidases results in obvious inhibition of initial haemoglobin degradation in the digestive vacuole.

Aminopeptidases↗

Purification and characterization of aminopeptidase P from Lactococcus lactis subsp. cremoris.

Aminopeptidase P was purified 65.3-fold from the cytoplasm of Lactococcus lactis subsp. cremoris AM2 with a 5.8% yield. The purified enzyme was found to consist of one polypeptide chain with a relative molecular mass of 41,600. Metal chelating agents were found to be inhibitory and Mn2+ and Co2+ stimulated activity 7-fold and 6-fold respectively. The purified enzyme removed the N-terminal amino acid from peptides only where proline (and in one case alanine) was present in the penultimate position. No hydrolysis was observed either with dipeptides even when proline was present in the C-terminal position or when either N-terminal proline or pyroglutamate was present preceding a proline residue in the penultimate position of longer peptides. On the basis of this substrate specificity either aminopeptidase P or post-proline dipeptidyl aminopeptidase are necessary along with a broad specificity aminopeptidase to effect complete hydrolysis of casein-derived peptides containing a single internally placed proline residue. However, both aminopeptidase P and post-proline dipeptidyl aminopeptidase would be required together with a broad specificity aminopeptidase in order to completely hydrolyse casein-derived peptides that contain two internally placed consecutive proline residues. As bitter casein-derived peptides are likely to contain either single prolines or pairs of prolines, aminopeptidase P appears to be an important enzyme for debittering.

Aminopeptidases↗

Purification and characterization of an enkephalin aminopeptidase from rat brain membranes.

A membrane-bound aminopeptidase was purified from rat brain, and its activity was assayed by high-pressure liquid chromatography with Met-enkephalin as the substrate. The enzyme was extracted with 1% Triton X-100 and purified by chromatography, successively on DEAE-Sepharose CL-6B, Bio-Gel HTP, and Sephadex G-200 columns. The overall purification was about 1200-fold, with 25% yield. The purified enzyme showed one band on disc gel electrophoresis and two bands on sodium dodecyl sulfate electrophoresis with molecular weights of 62 000 and 66 000. The aminopeptidase has a pH optimum of 7.0, a Km of 0.28 mM, and a Vmax of 45 mumol (mg of protein)-1 min-1 for Met-enkephalin. It releases tyrosine from Met-enkephalin, but it does not split the byproduct. It does not hydrolyze gamma- or beta-endorphin, or dynorphin, but it does hydrolyze neutral and basic aminoacyl beta-naphthylamides. The enzyme is inhibited by the aminopeptidase inhibitors amastatin, bestatin, and bestatin-Gly. Its properties, such as its subcellular localization, substrate specificity, pH optimum, and molecular weight, distinguish it from leucine aminopeptidase, aminopeptidase A, aminopeptidase B, aminopeptidase M, and the soluble aminopeptidase for enkephalin degradation.

Aminopeptidases↗

Recombinantly expressed isoenzymic aminopeptidases from Helicoverpa armigera (American cotton bollworm) midgut display differential interaction with closely related Bacillus thuringiensis insecticidal proteins.

Several investigators have independently identified membrane-associated aminopeptidases in the midgut of insect larvae as the initial interacting ligand to the insecticidal crystal proteins of Bacillus thuringiensis. Though several isoenzymes of aminopeptidases have been identified from the midgut of an insect and their corresponding cDNA cloned, only one of the isoform has been expressed heterologously and studied for its binding to Cry toxins. Here we report the cloning and expression of two aminopeptidases N from Helicoverpa armigera (American cotton bollworm) (HaAPNs). The full-length cDNA of H. armigera APN1 (haapn1) is 3205 bp in size and encodes a 1000-amino-acid protein, while H. armigera APN2 (haapn2) is 3116 bp in size and corresponds to a 1012-amino-acid protein. Structurally these proteins show sequence similarity to other insect aminopeptidases and possess characteristic aminopeptidase motifs. Both the genes have been expressed in Trichoplusia ni (cabbage looper) cells using a baculovirus expression vector. The expressed aminopeptidases are membrane-associated, catalytically active and glycosylated. Ligand-blot analysis of both these aminopeptidases with bioactive Cry1Aa, Cry1Ab and Cry1Ac proteins displayed differential interaction. All the three toxins bound to HaAPN1, whereas only Cry1Ac interacted with HaAPN2. This is the first report demonstrating differential Cry-toxin-binding abilities of two different aminopeptidases from a susceptible insect.

Amino Acid Sequence↗

Renin-angiotensin system-regulating aminopeptidase activities are modified in the pineal gland of rats with breast cancer induced by N-methyl-nitrosourea.

OBJECTIVE: Pineal function has been considered particularly as a neuroendocrine modulator in hormone responsive tumors, like the hormone-dependent mammary tumors. The complexity of the gland function, moreover, is denoted by the presence of a local renin-angiotensin-system (RAS) that regulates melatonin biosynthesis. Classically, angiotensin II (Ang II) has been considered as the effector peptide of the RAS, but Ang II is not the only active peptide. Several of its degradation products, including angiotensin III (Ang III) and angiotensin IV (Ang IV) also possess biological functions. These peptides are formed via the activity of several aminopeptidases. Our aim is to know their role in the regulation of pineal RAS and breast cancer. DESIGN: Aminopeptidase N (APN), aminopeptidase B (APB) and aminopeptidase A (aspartyl- and glutamyl-aminopeptidase, APA) activities are measured in the pineal gland of rats with breast cancer induced by N-methyl nitrosourea (NMU). METHODS: Aminopeptidase activities were measured fluorimetrically using their corresponding aminoacyl-beta-naphthylamides as substrates. RESULTS: Specific APN and APB activities in pineal gland of controls and NMU-treated rats were not modified. Aspartyl aminopeptidase activity significantly decreased in NMU-treated rats when compared with control group. On the contrary, glutamyl aminopeptidase activity did not show significant differences between groups. CONCLUSIONS: We propose that the local RAS in pineal gland is modified in rats with breast cancer induced by NMU through the inhibition of AspAP activity, which may lead to increased levels of Ang II. Ang II could be responsible of the overproduction of melatonin, supporting a mechanism to restrain the promotion and/or progression of breast cancer.

Alkylating Agents↗

An aminopeptidase inhibitor, bestatin, enhances progesterone and oestradiol secretion by porcine granulosa cells stimulated with follicle stimulating hormone in vitro.

We examined the presence of cell surface aminopeptidase on cultured porcine granulosa cells by employing the aminopeptidase assay using alanine-p-nitroanilide and histochemical staining using L-leucyl-beta-naphthylamide. Porcine granulosa cells obtained from follicles 4-5 mm in diameter were cultured for 7 days. The aminopeptidase assay showed that the porcine granulosa cell culture had aminopeptidase activity and that this activity was inhibited in a dose-dependent manner by bestatin which binds to cell surfaces and inhibits cell surface aminopeptidases. Histochemical staining also indicated that cultured granulosa cells had aminopeptidase activity. Porcine granulosa cells were cultured in the presence or absence of porcine follicle stimulating hormone (FSH, 3.125 nmol/l) and/or bestatin (0.4, 4.0 and 40.0 micrograms/ml) for 7 days, and the production of progesterone and oestradiol was measured. In the presence of porcine FSH, the production of progesterone and oestradiol by granulosa cells was increased significantly by approximately 5- and 2-fold respectively. These increases were enhanced further by bestatin (40.0 micrograms/ml). In the absence of porcine FSH, progesterone production was enhanced by bestatin (40.0 micrograms/ml), whereas no significant effect of bestatin on oestradiol secretion was observed. These findings indicate that the inhibition of membrane-bound aminopeptidase(s) on the cell surfaces affects the steroidogenesis of granulosa cells, and that these aminopeptidase(s) are important regulators of granulosa cell differentiation.

Aminopeptidases↗

An Aneurinibacillus sp. strain AM-1 produces a proline-specific aminopeptidase useful for collagen degradation.

AIMS: We have been for a species of thermophilic bacteria that can effectively decompose collagen and collagen peptides that tend to be hard-to-degrade proteins because of their high content of proline residues. This study focused upon the enzymatic degradation of prolyl peptides by thermophilic bacteria. METHODS AND RESULTS: A strain, AM-1, producing a proline-specific aminopeptidase was isolated using a medium containing gelatin that was taken from soil samples collected at Arima Hot Spring located near Kobe, Japan. The strain showed the strongest level of hydrolysing activity toward prolyl-p-nitroanilide, and the activity proved to be thermostable. Phylogenetic analysis based on 16S rDNA sequences revealed that the isolated strain AM-1 was closest to Aneurinibacillus thermoaerophilus DSM10154T in its characteristics. Analysis of the purified proline-specific aminopeptidase suggested that the enzyme is an aminopeptidase containing metal that includes important disulphide bond(s). The strain AM-1 aminopeptidase has more similarities with leucyl aminopeptidases, but its activity level differs greatly with prolyl peptides. CONCLUSIONS: The proline-specific aminopeptidase from strain AM-1 is the first from the genus Aneurinibacillus and may be a new type of aminopeptidase for hydrolysing prolyl peptide. This enzyme also contributed to the degradation of collagen when used in combination with another collagenolytic protease. SIGNIFICANCE AND IMPACT OF THE STUDY: The proline-specific aminopeptidase obtained from strain AM-1 may be used in the treatment of wastewater containing collagen that is encountered in the meat industries, and for decreasing bitter peptides in milk products.

Aminopeptidases↗

Characterization and overexpression of the Lactococcus lactis pepN gene and localization of its product, aminopeptidase N.

The chromosomal pepN gene encoding lysyl-aminopeptidase activity in Lactococcus lactis has been identified in a lambda EMBL3 library in Escherichia coli by using an immunological screening with antiserum against a purified aminopeptidase fraction. The pepN gene was localized and subcloned in E. coli on the basis of its expression and hybridization to a mixed-oligonucleotide probe for the previously determine N-terminal amino acid sequence of lysyl-aminopeptidase (P. S. T. Tan and W. N. Konings, Appl. Environ. Microbiol. 56:526-532, 1990). The L. lactis pepN gene appeared to complement an E. coli strain carrying a mutation in its pepN gene. High-level expression of the pepN gene in E. coli was obtained by using the T7 system. The overproduction of the 95-kDa aminopeptidase N could be visualized on sodium dodecyl sulfate-polyacrylamide gels and immunoblots. Cloning of the pepN gene on a multicopy plasmid in L. lactis resulted in a 20-fold increase in lysyl-aminopeptidase activity that corresponded to several percent of total protein. Nucleotide sequence analysis of the 5' region of the pepN gene allowed a comparison between the deduced and determined amino-terminal primary sequences of aminopeptidase N. The results show that the amino terminus of PepN is not processed and does not possess the characteristics of consensus signal sequences, indicating that aminopeptidase N is probably an intracellular protein. The intracellular location of aminopeptidase N in L. lactis was confirmed by immunogold labeling of lactococcal cells.

Amino Acid Sequence↗

Comparison of aminopeptidase activities in four strains of mutans group oral streptococci.

In this study, native cells of Streptococcus mutans VA-29R and Streptococcus rattus FA-1 displayed significantly higher aminopeptidase activity than did cells of Streptococcus cricetus AHT or Streptococcus sobrinus 6715 toward the nitroanilide derivatives of leucine, alanine, methionine, arginine, and lysine. These differences in cellular aminopeptidase activity led us to investigate the subcellular localization of the aminopeptidase in these mutans group streptococci. Following conversion of native cells to protoplasts by treatment with lysozyme, most of the aminopeptidase activity detected in the native-cell preparations remained associated with the intact protoplasts. After lysis of protoplasts and differential centrifugation, most of the total cellular aminopeptidase activity was recovered with the cytoplasmic fraction. Membrane-associated aminopeptidases represented only minor activities in these mutans group streptococci. Although the four strains showed no differences with respect to a predominant cytoplasmic localization for the aminopeptidase activities, the levels of activity in the cytoplasmic fractions from S. cricetus AHT and S. sobrinus 6715 were significantly lower than those measurable in the corresponding fractions from S. mutans VA-29R and S. rattus FA-1. These results support the conclusion that the differences in aminopeptidase activity expressed by these streptococci reflect quantitative differences rather than differences in enzyme subcellular localization.

Amino Acids↗

Processing of antigenic peptides by aminopeptidases.

Antigenic peptides presented to major histocompatibility complex (MHC) class I molecules are generated in the cytosol during degradation of cellular proteins by the ubiquitin-proteasome proteolytic pathway. Proteasome can generate N-extended precursors as well as final epitopes, and then the precursors are processed to mature epitopes by aminopeptidases. Both cytosolic peptidases (i.e. puromycin-sensitive aminopeptidase, bleomycin hydrolase and interferon-gamma-inducible leucine aminopeptidase) and recently identified metallo-aminopeptidase located in the endoplasmic reticulum (i.e. adipocyte-derived leucine aminopeptidase/endoplasmic reticulum aminopeptidase 1 and leukocyte-derived arginine aminopeptidase) can generate final epitopes from precursor peptides. Some of these aminopeptidases are also considered to destroy certain antigenic peptides to limit the antigen presentation. Taken together, it is getting evident that aminopeptidases located in the cytosol and the lumen of endoplasmic reticulum play important roles in the generation of antigenic peptides presented to MHC class I molecules.

Aminopeptidases↗