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Biomedical subjects

M Merida

Publications and source records attributed to M Merida.

14 recordsLinked to original sources

Aminopeptidase activity in human nasal mucosa.

BACKGROUND: Aminopeptidases activate bradykinin and degrade many inflammatory peptides. OBJECTIVE: The objective of this study was to identify the types of aminopeptidase activities in human nasal mucosa. METHODS: Human nasal mucosa was homogenized (n = 12), and cytoplasmic (S2) and membrane-rich (P2) fractions were obtained. Several aminopeptidase (Ap) activities were defined by (1) substrate specificity with leucine-enkephalin (leu-Ap) and alanine-nitroanilide (ala-Ap), (2) inhibitor studies with puromycin and bestatin, (3) enzyme activity histochemistry (zymography), (4) immunohistochemistry, and (5) gel electrophoresis. Human volunteers had methacholine, histamine, and allergen nasal provocations to determine the mechanisms controlling nasal aminopeptidase secretion in vivo. RESULTS: P2 was the largest reservoir of puromycin-resistant aminopeptidase activity (630 pmol leu-enk/min/mg protein). S2 contained 32 pmol leu-enk/min/mg activity, with 80% representing puromycin-resistant activity and 20% puromycin-sensitive aminopeptidase (PS-Ap). Ala-Ap was detected in both P2 and S2 fractions and was localized by zymography to epithelial and gland cells. Anti-rat brain-soluble PS-Ap IgG detected immunoreactive material in epithelium, glands, and endothelium. In nasal provocation studies, leu-AP correlated with glandular exocytosis but not vascular leak. CONCLUSIONS: The predominant aminopeptidase in human nasal epithelial and submucosal gland cells was membrane-bound puromycin-resistant aminopeptidase. A novel soluble puromycin-resistant aminopeptidase and lower amounts of soluble PS-Ap were also detected.

Aminopeptidases↗

Human nasal mucosal carboxypeptidase: activity, location, and release.

BACKGROUND: Carboxypeptidases (CPs), such as carboxypeptidase N (CPN) (kininase I, E.C.3.4.17.3), may regulate peptide-mediated vasodilation and vascular permeability in respiratory mucosa by degrading proinflammatory peptides such as bradykinin, anaphylatoxins, and neuropeptides during allergic and nonallergic inflammation. The sources of CP activity in human nasal secretions were investigated. METHODS: Well-characterized human nasal provocation and secretion analysis methods were used. Potential sources of CPN in human nasal mucosa were identified by immunohistochemistry. CP activity was defined as DL-2-mercaptomethyl-3-guanidinoethylthiopropanoic acid inhibitable Bz-Gly-Lys degradation. CP activity was measured in nasal mucosal homogenates and nasal lavage fluids induced by methacholine, histamine, and allergen nasal provocation. RESULTS: CPN-immunoreactive material was localized to the glycocalyx of the epithelium, some vessels, and gland ducts near the epithelial basement membrane but not to submucosal gland cells. CP activity in human nasal lavage fluid after saline nasal provocation was 0.10 +/- 0.04 U/L. Histamine provoked secretion of significantly more CP activity (3.84 +/- 0.99 U/L; p < 0.01 vs saline). Methacholine did not significantly increase secretion (0.54 +/- 0.22 U/L). After nasal allergen challenge, CP activity was at a maximum between 11 and 20 minutes, and CP activity correlated with IgG concentration (r = 0.91, p < 0.01), a marker for proteins of plasma origin, suggesting that CP activity originated in plasma. CONCLUSIONS: These data suggest that plasma is the predominant source of CP activity secreted from human nasal mucosa and that plasma extravasation and interstitial fluid exudation across the epithelium are the primary processes regulating its appearance in nasal secretions.

Adult↗

Angiotensin-converting enzyme in the human nasal mucosa.

Angiotensin-converting enzyme (ACE; EC 3.4.15.1) may participate in respiratory inflammatory diseases by regulating levels of inflammatory peptides such as bradykinin. The presence of ACE in the human nasal mucosa and in nasal secretions was determined by immunohistochemistry, measures of enzyme activity, and immunoblot. ACE activity was significantly more abundant in the membrane-rich fraction than in the soluble cytosolic fraction of nasal mucosal extracts (74.18 +/- 24.50 versus 3.99 +/- 1.83 pmol/min/mg protein, respectively, P < 0.01 by an enkephalin degradation assay; 89.16 +/- 16.17 versus 2.30 +/- 0.89 mU/mg protein, P < 0.01 by colorimetric assessment of Bz-Gly-Gly-Gly degradation). Topical application of histamine stimulated secretion of ACE activity into nasal lavage fluid (2.90 +/- 0.88 versus 1.53 +/- 0.45 U/liter after saline provocation, P < 0.05 by Bz-Gly-Gly-Gly assay). Allergen challenge also induced nasal secretion of ACE. In both histamine and allergen challenges, ACE release correlated closely with that of the vascular proteins IgG and albumin. Methacholine, a stimulant of glandular secretions, failed to augment ACE levels above baseline. ACE-immunoreactive material was localized by the immunogold technique with silver enhancement to the glycocalyx, between epithelial cells, and to interstitial, extracellular sites in the superficial lamina propria, with the highest intensity of staining immediately beneath the basement membrane. Some ACE was detectable in the mucus material of gland and duct lumens but not in gland cells themselves. Endothelial cells and some interstitial mononuclear cells also stained for ACE. ACE was identified by immunoblotting as a 150 kD band on SDS-PAGE.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Muscarinic receptor subtypes in human nasal mucosa: characterization, autoradiographic localization, and function in vitro.

Muscarinic receptors play important roles in the regulation of glandular secretion and vasomotor tone in human nasal mucosa. M1, M2, and M3 muscarinic receptor subtypes were pharmacologically characterized in human inferior turbinates by receptor-binding assays using [3H](-)quinuclidinyl benzilate (QNB, identifies total muscarinic receptors) and [3H]-pirenzepine (PZ). Receptors were localized by autoradiography, and their function examined in vitro by assaying mucus secretion from cultured nasal mucosal explants. In competition assays, PZ was employed as a selective muscarinic antagonist for M1 receptors, gallamine and AF-DX 116 for M2 receptors, and 4-DAMP for M3 receptors. These ligands are selective at low nanomolar concentrations, but can interact with other muscarinic receptors at higher concentrations. It is not known if they can interact with putative M4 and M5 muscarinic receptor subtypes. Using [3H](-)QNB, total muscarinic receptor binding was 688.4 +/- 49.6 fmol/mg protein (Bmax), with a Kd of 1.47 +/- 0.13 nM. [3H]-PZ bound to 45% of the total QNB binding sites. In competition experiments, 4-DAMP displaced [3H](-)QNB with the lowest IC50, followed by PZ and AF-DX 116. Autoradiograms demonstrated that [3H](-)QNB binding was completely displaced by 4-DAMP, partially displaced by PZ, but not displaced by gallamine or AF-DX 116, and suggested that M1 and M3 subtypes coexist in submucosal glands. The localization of M1 receptors on submucosal glands was confirmed by direct labeling with [3H]-PZ. [3H]-PZ also labeled vessels, but with a low silver grain density. Autoradiographic [3H]-QNB binding was displaced by 4-DAMP and atropine, but not by PZ, gallamine, or AF-DX 116. In studies of mucus secretion in vitro, 4-DAMP significantly inhibited methacholine-induced secretion. Although less effective, PZ also had significant inhibitory effects. Neither gallamine nor AF-DX 116 had any inhibitory effect. M1 receptors (PZ binding sites) may regulate glandular secretion while M3 receptors (4-DAMP binding sites) may regulate glandular secretion and vasomotor tone in human nasal mucosa.

Autoradiography↗

Human nasal mucosal neutral endopeptidase (NEP): location, quantitation, and secretion.

Neutral endopeptidase (E.C.3.4.24.11, enkephalinase, NEP) is a potentially important enzyme capable of regulating the activity of neuropeptides released in the respiratory mucosa. In order to confirm the existence of NEP in the human respiratory mucosa, inferior nasal turbinate mucosae obtained at surgery and nasal secretions induced by topical provocations with methacholine, histamine, and allergen were analyzed for: (1) NEP activity (pmol product/min/ml) by enzymatic degradation of [3H]leu-enkephalin, (2) the presence of NEP-immunoreactive material by Western blot analysis, and (3) cellular localization of NEP distribution by immunohistochemistry. NEP activity in human nasal secretions obtained after normal saline challenge was 0.15 +/- 0.06 pmol/min/ml. Secretion increased to 0.86 +/- 0.26 pmol/min/ml after methacholine provocation and 1.69 +/- 0.74 pmol/min/ml after histamine provocation. The increase in NEP activity in methacholine-induced secretions was prevented by atropine (0.13 +/- 0.06 pmol/min/ml). After methacholine, histamine, and antigen nasal provocation, the kinetics of NEP appearance correlated more closely to the glandular marker, lactoferrin, than with the vascular markers albumin and IgG. In homogenates of nasal mucosa, the membrane fraction contained significantly more NEP on a per mg protein basis than did the soluble fraction (227.6 +/- 50.52 versus 9.61 +/- 3.18 pmol/min/mg protein, respectively, P < 0.01, n = 6). NEP in the membrane fraction was detected as a single band migrating at 97 kD on Western blots using antibodies specific for NEP and the common acute lymphoblastic leukemia antigen (CALLA). Immunoreactive NEP was localized to serous cells of the submucosal glands, epithelial cells, and endothelial and myoepithelial cells of small vessels. Staining for NEP in the serous cells was of the same intensity as that in epithelial cells. These results indicate that 97 kD NEP-immunoreactive material exists in discrete locations in the nasal mucosa, including the epithelium, serous cells of the submucosal glands, and vessel walls, and that NEP activity is detected as a minor component in nasal secretions enriched by glandular products. In addition to the modulating functions of NEP on neuropeptide-mediated activities on vessels and glands, it is possible that NEP in secretions plays a role in regulating mucosal responses to luminal neuropeptides or other as yet uncharacterized NEP substrates.

Blotting, Western↗

Characterization and autoradiographic localization of histamine H1 receptors in human nasal turbinates.

To examine the localization of histamine H1 receptors (H1R) in human nasal mucosa, the autoradiographic distribution of H1R was studied in human nasal inferior turbinates. Cryostat sections were incubated with various concentration of [3H]pyrilamine in saturation-binding studies and with 1 nmol/L of [3H]pyrilamine for autoradiography. Nonspecific binding was determined by adding 2 mumol/L of pyrilamine. Scatchard analysis demonstrated high-affinity binding sites with a maximum binding capacity of H1R of 193 +/- 46 fmol/mg of protein, and dissociation constant was 0.6 +/- 0.1 nmol/L. Autoradiograms indicated H1R exist exclusively on the endothelium of vessels. No specific labeling could be observed in the submucosal glands or epithelium. These results extend and support our previous finding that histamine directly causes vascular permeability through H1R and stimulates nasal glandular secretion indirectly through reflexes.

Autoradiography↗

Double aortic arch.

In conclusion, the diagnosis of DAA should be suspected in an infant with either biphasic stridor or feeding-related respiratory distress. Radiographic studies combined with appropriate thorough endoscopic evaluation should confirm clinical suspicion. Thoracotomy with surgical division of the DAA has given excellent long-term results.

Aorta, Thoracic↗

Substance P and neurokinin A in human nasal mucosa.

The tachykinins substance P (SP) and neurokinin A (NKA) were studied in human inferior turbinate nasal mucosa by radioimmunoassay, immunohistochemistry, and autoradiography and for their effect upon mucus release in an in vitro culture system in order to infer their potential functions in the upper respiratory tract. Similar amounts of SP (1.03 +/- 0.12 pmol/g wet weight; mean +/- SEM; n = 26) and NKA (0.76 +/- 0.23; n = 7) were found. NKA and SP immunoreactive nerve fibers were found in the walls of arterioles, venules, and sinusoids and as individual fibers in gland acini, near the basement membrane, and in the epithelium. [125I]SP bound to arterioles, venules, and glands. [125I]NKA bound only to arterioles. In short-term explant culture of fragments of human nasal mucosa, both 1 microM SP and 1 microM NKA stimulated release of [3H]glucosamine-labeled respiratory glycoconjugates. These results indicate that SP and NKA have similar distributions in nociceptive sensory nerves in human nasal mucosa. The distribution of [125I]SP binding sites is consistent with a role for SP as a vasodilator and mucous secretagogue. The presence of [125I] NKA binding sites on vessels suggests a primary role for NKA in regulating vasomotor tone.

Amino Acid Sequence↗

Calcitonin gene-related peptide in human nasal mucosa.

To explore the potential range of functions for calcitonin gene-related peptide (CGRP) in human mucosa, we quantified human inferior turbinate nasal mucosal CGRP content by radioimmunoassay, localized CGRP-immunoreactivity by immunohistochemistry, detected 125I-CGRP binding sites by autoradiography, and tested the ability of CGRP to induce submucosal gland secretion in short-term explant culture of human nasal mucosa. Nasal mucosa contained 0.45-0.54 pmol CGRP/g wet wt (n = 18). Immunoreactive CGRP was found in nerve fibers that densely innervated the walls of small muscular arteries arterioles. Venules and venous sinusoids were innervated by individual CGRP staining fibers. Occasional CGRP-containing nerve fibers were also noted adjacent to submucosal gland acini, near the epithelial basement membrane, and between epithelial cells. Specific 125I-CGRP binding sites were concentrated on small muscular arteries and arterioles. CGRP (4 microM) did not stimulate glycoconjugate or lactoferrin release from mucosal explants. These results indicate that in the human nasal mucosa, CGRP is present in nerve fibers, which most likely represent nociceptive sensorimotor nerves that innervate vascular structures (muscular arteries, arterioles, veins and venous sinusoids). It is likely that CGRP release from sensory neurons may play a role in the regulation of vasomotor responses, but no evidence for a role of CGRP in glandular secretion was found.

Calcitonin Gene-Related Peptide↗

Bradykinin and respiratory mucous membranes. Analysis of bradykinin binding site distribution and secretory responses in vitro and in vivo.

Bradykinin (BK) and lysyl-BK (lys-BK, kallidin) have been proposed as potentially important mediators of rhinorrhea. Possible mechanisms by which BK might contribute to rhinorrhea were investigated by several approaches. (1) The autoradiographic distribution of 125I-BK binding sites in human inferior turbinate nasal mucosa was determined. (2) The effects of BK and lys-BK and antagonists on radiolabeled respiratory glycoconjugate (RGC) release from human nasal mucosa was measured. (3) The secretory effects of BK were studied in cat tracheal mucosa maintained in short-term explant culture, and in ferret trachea maintained in Ussing chambers. (4) The effects of BK on macromolecule secretion in guinea pig nasal mucosa was studied in vivo. Autoradiographic examination of human nasal mucosa revealed that 125I-BK specifically bound to small muscular arteries, venous sinusoids, and submucosal fibers. No specific binding to submucosal glands or goblet cells was noted. Human nasal fragments secreted significantly increased amounts of RGC in response to 10 microM BK (15.0% +/- 1.8 compared with control values; mean +/- standard error of the mean; n = 7; p less than 0.01 by Student's unpaired t test), 10 microM lys-BK (12.2% +/- 3.3; n = 5; p less than 0.05), and 100 microM methacholine (35.7% +/- 2.3; p less than 0.0001). The addition of 1 microM BK, or 1 microM lys-BK, did not induce release. The addition of the BK receptor antagonist des-Arg9-[Leu8]-BK (10 microM) or inhibition of arachidonic acid metabolism with 50 microM nordihydroguaiaretic acid or 65 microM ibuprofen inhibited the prosecretory effect of 10 microM BK.(ABSTRACT TRUNCATED AT 250 WORDS)

Albumins↗

Neuropeptide Y (NPY) in human nasal mucosa.

Neuropeptide Y (NPY), a potent vasoconstrictor peptide found in sympathetic neurons, was analyzed in human inferior turbinate nasal mucosal tissue. NPY content determined by radioimmunoassay was 3.13 +/- 0.79 pmol/g tissue (n = 6) in mucosa extracted with ethanol-acetic acid. NPY-immunoreactive nerves were found around small muscular arteries, arterioles, arteriovenous anastomoses, and as free fibers near arteriolar and venous vessels. They formed a plexus around the arterial vessels, and were also present between vascular smooth muscle cells. Few NPY fibers were present near glands or the epithelium. [125I]NPY binding sites were localized by autoradiography to small muscular arteries, arterioles, and a few venous sinusoids. In explant culture experiments, 4 microM NPY did not stimulate release of [3H]glucosamine-labeled glycoconjugates or lactoferrin (a product of serous cells) from nasal mucosal fragments. Degradation of NPY by a tissue homogenate was rapid (t1/2 = 13.5 +/- 2.3 min). The degradation was inhibited by thiorphan and phosphoramidon, inhibitors of neutral endopeptidase activity. NPY released from sympathetic neurons may play a role as a constrictor of arterial vessels and regulate vasomotor tone in the human nasal mucosa.

Arteries↗

Gastrin-releasing peptide in human nasal mucosa.

Gastrin-releasing peptide (GRP), the 27 amino acid mammalian form of bombesin, was studied in human inferior turbinate nasal mucosa. The GRP content of the mucosa measured by radioimmunoassay was 0.60 +/- 0.25 pmol/g tissue (n = 9 patients; mean +/- SEM). GRP-immunoreactive nerves detected by the immunogold method of indirect immunohistochemistry were found predominantly in small muscular arteries, arterioles, venous sinusoids, and between submucosal gland acini. 125I-GRP binding sites determined by autoradiography were exclusively and specifically localized to nasal epithelium and submucosal glands. There was no binding to vessels. The effects of GRP on submucosal gland product release were studied in short-term explant culture. GRP (10 microM) significantly stimulated the release of the serous cell-specific product lactoferrin, and [3H]glucosamine-labeled glycoconjugates which are products of epithelial goblet cells and submucosal gland cells. These observations indicate that GRP released from nerve fibers probably acts on glandular GRP receptors to induce glycoconjugate release from submucosal glands and epithelium and lactoferrin release from serous cells, but that GRP would probably not affect vascular permeability.

Autoradiography↗

Vasoactive intestinal peptide in human nasal mucosa.

Vasoactive intestinal peptide (VIP), which is present with acetylcholine in parasympathetic nerve fibers, may have important regulatory functions in mucous membranes. The potential roles for VIP in human nasal mucosa were studied using an integrated approach. The VIP content of human nasal mucosa was determined to be 2.84 +/- 0.47 pmol/g wet weight (n = 8) by RIA. VIP-immunoreactive nerve fibers were found to be most concentrated in submucosal glands adjacent to serous and mucous cells. 125I-VIP binding sites were located on submucosal glands, epithelial cells, and arterioles. In short-term explant culture, VIP stimulated lactoferrin release from serous cells but did not stimulate [3H]glucosamine-labeled respiratory glycoconjugate secretion. Methacholine was more potent than VIP, and methacholine stimulated both lactoferrin and respiratory glycoconjugate release. The addition of VIP plus methacholine to explants resulted in additive increases in lactoferrin release. Based upon the autoradiographic distribution of 125I-VIP binding sites and the effects on explants, VIP derived from parasympathetic nerve fibers may function in the regulation of serous cell secretion in human nasal mucosa. VIP may also participate in the regulation of vasomotor tone.

Cells, Cultured↗