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C Gerard

Publications and source records attributed to C Gerard.

At least 91 records · Page 5Linked to original sources

Probing the "message:address" sites for chemoattractant binding to the C5a receptor. Mutagenesis of hydrophilic and proline residues within the transmembrane segments.

The C5a anaphylatoxin ligand-receptor interaction on polymorphonuclear granulocytes stimulates chemotaxis, degranulation, and the oxidative burst. The receptor is a member of the large G-protein-coupled family. The ligand is a cationic peptide of 72 amino acids derived from the C5 component of complement and has been shown to have a number of structural requirements for interaction with the receptor. In order to probe the potential interaction sites between ligand and receptor, we constructed a series of mutated receptor molecules, targeting cysteines, prolines, and additional amino acids of interest because of combinations of charge or hydrophobicity and putative location with respect to the membrane. Transfected mutant receptors were analyzed for cell surface expression, ligand binding, and ligand-activated phospholipase C activity. The receptors created can be placed generally in four distinct classes: those which bind and signal like the natural receptor; those which bind but fail to transduce signals; those which are expressed but neither bind nor transduce signal; and those which are not expressed at the cell surface.

Amino Acid Sequence↗

Structural characterization and chromosomal location of the mouse macrophage migration inhibitory factor gene and pseudogenes.

Macrophage migration inhibitory factor, MIF, is a cytokine released by T-lymphocytes, macrophages, and the pituitary gland that serves to integrate peripheral and central inflammatory responses. Ubiquitous expression and developmental regulation suggest that MIF may have additional roles outside of the immune system. Here we report the structure and chromosomal location of the mouse Mif gene and the partial characterization of five Mif pseudogenes. The mouse Mif gene spans less than 0.7 kb of chromosomal DNA and is composed of three exons. A comparison between the mouse and the human genes shows a similar gene structure and common regulatory elements in both promoter regions. The mouse Mif gene maps to the middle region of chromosome 10, between Bcr and S100b, which have been mapped to human chromosomes 22q11 and 21q22.3, respectively. The entire sequence of two pseudogenes demonstrates the absence of introns, the presence of the 5' untranslated region of the cDNA, a 3' poly(A) tail, and the lack of sequence similarity with untranscribed regions of the gene. The five pseudogenes are highly homologous to the cDNA, but contain a variable number of mutations that would produce mutated or truncated MIF-like proteins. Phylogenetic analyses of MIF genes and pseudogenes indicate several independent genetic events that can account for multiple genomic integrations. Three of the Mif pseudogenes were also mapped by interspecific backcross to chromosomes 1, 9, and 17. These results suggest that Mif pseudogenes originated by retrotransposition.

Amino Acid Sequence↗

Neutral endopeptidase modulation of septic shock.

Neutral endopeptidase (NEP; EC. 3.4.24.11) is a type 2 cell surface metalloprotease known by a variety of eponyms, including enkephalinase, common acute lymphoblastic leukemia antigen, and CD10. Identified substrates are largely neural or humoral oligopeptide agonists, and the enzyme functions to terminate signaling by degrading the ligand, analogously to acetylcholine/acetylcholinesterase. Targeted disruption of the NEP locus in mice results in enhanced lethality to endotoxin shock with a pronounced gene dosage effect. The site(s) of action appears downstream from release of tumor necrosis factor and interleukin-1 since NEP-deficient animals demonstrate increased sensitivity to these mediators as well. This unexpected finding indicates an important protective role for NEP in septic shock.

Animals↗

Expression and biologic characterization of the murine chemokine KC.

KC, the product of an immediate early gene induced in mouse fibroblasts by platelet-derived growth factor, was expressed in Escherichia coli by using a maltose binding protein vector and biochemically characterized as a ligand for both murine and human polymorphonuclear neutrophils (PMN). On murine PMN, KC is both a potent chemoattractant and up-regulator of Mac-1 cell surface expression. On human PMN, in contrast, KC exhibits dissociation of its chemoattractant and Mac-1 up-regulatory activities. Although KC strongly increases Mac-1 expression on human PMN, it does not induce chemotaxis in vitro. 125I-KC-Tyr binds to both mouse and human PMN with two classes of binding sites, including high affinity sites of 0.8 and 2 nM, with approximately 9,000 and 10,000 sites per cell, respectively. On mouse PMN, human macrophage inflammatory protein (MIP)-2 alpha and MIP-2 beta compete for 125I-KC-Tyr binding with high affinity, whereas the murine beta-chemokine TCA-3 does not compete. KC binds to human PMN by the IL-8 type B receptor and to murine PMN by a murine IL-8 type B receptor homologue. 125I-KC-Tyr also binds to human RBC with a single class of high affinity sites. KC mRNA is constitutively expressed in multiple murine tissues. With human IL-8 and KC cDNA as probes, a mouse neutrophil exudate library was screened: KC and MIP-2 were the dominant chemokine species found. Thus, KC appears to be intimately involved in murine inflammation and its constitutive expression may have a role in the basal trafficking of neutrophils.

Animals↗

In Chinese hamster ovary K1 cells dog and human thyrotropin receptors activate both the cyclic AMP and the phosphatidylinositol 4,5-bisphosphate cascades in the presence of thyrotropin and the cyclic AMP cascade in its absence.

Thyrotropic hormone, through its human thyrotropin receptor, activates both the cyclic AMP and the phosphatidylinositol 4,5-bisphosphate-phospholipase-C cascades in human thyroid cells and in Chinese hamster ovary cells (CHO-K1) expressing this receptor. However, thyrotropin only activates the cyclic-AMP cascade in dog thyroid cells. In order to establish whether this different pattern of responses reflects a different structure of the human and dog thyrotropin receptors, CHO-K1 cells were permanently transfected with a plasmid coding for one or the other receptor. For various levels of receptor expression, CHO-K1 cells expressing either receptor presented qualitatively similar cyclic AMP and inositol phosphates responses to thyrotropin. This suggests that the difference in the response of the dog and human thyroid to thyrotropin involves elements of the phosphatidylinositol 4,5-bisphosphate cascade downstream of the receptor. In CHO-K1 cells overexpressing the thyrotropin receptor, the basal level of cyclic AMP was raised, suggesting a constitutive activity of the wild-type receptor. This was confirmed in COS-7 cells transiently expressing the human or dog thyrotropin receptors, the basal cyclic AMP levels of these cells increased in parallel with thyrotropin binding. This spontaneous activity of the thyrotropin receptor may have physiological and pathological consequences.

Animals↗

Characterization of an electrogenic sodium/glucose cotransporter in a human colon epithelial cell line.

In this study, we have characterized the Na/glucose transporter in polarized monolayers formed by the clonal human colon carcinoma cell line HT-29-D4. Isotopic tracer flux measurements show that differentiated HT-29-D4 cells possess a sodium-dependent alpha-methyl-D-glucopyranoside (AMG) uptake that is competed for by increasing concentrations of D-glucose, D-galactose, and phlorizin. This transport is exclusively localized on the apical side of the epithelium. Kinetic data demonstrate the existence of a single Michaelian sodium-dependent AMG transporter with a Km of 1.2 +/- 0.12 mM and a Vmax of 3.24 +/- 0.25 nmol/mg of protein per min. Hill analysis reveals a coefficient of 1.9 +/- 0.03, consistent with at least two sodium ions involved in AMG transport. Interestingly, the cotransporter function is not modulated by glucose in the culture medium. Transepithelial electrical parameter measurements show that the transepithelial potential difference (Vt) is glucose dependent and phlorizin sensitive. Antibodies directed against a peptide of the rabbit intestinal glucose cotransporter (Ser402-Lys420) recognize, in western blot experiments, the characteristic bands of the cotransporter on a crude membrane preparation of differentiated HT-29-D4 cells and react strongly with the apical domain of the monolayer in immunofluorescence experiments. We conclude that HT-29-D4 cells express the sodium/glucose cotransporter SGLT1 at their apical membrane and that this transporter generates the basal transepithelial potential difference.

Blotting, Western↗

The murine interleukin 8 type B receptor homologue and its ligands. Expression and biological characterization.

KC, the product of an immediate early gene induced in mouse fibroblasts by platelet-derived growth factor, was synthesized as a recombinant protein in Escherichia coli and binds with 0.8 nM affinity to mouse neutrophils. Human neutrophils also bind recombinant KC at a site competitive with human interleukin (IL8) and Gro-alpha/MGSA, consistent with binding at the IL8 type B receptor (IL8RB). The cDNA corresponding to human IL8RB hybridizes strongly with two restriction fragments in murine genomic DNA, representing candidate receptor genes for KC. Molecular cloning of both mouse genomic DNA and neutrophil exudate cell cDNA libraries yielded a receptor with approximately 68% sequence identity to both the human IL8 type A and B receptors. Transient expression of the murine receptor cDNA in COS cells conferred binding ability to KC and a related gene product, macrophage inflammatory protein-2 (MIP-2) with high affinity (approximately 5 nM). Human IL8 was a poor agonist for this expressed receptor (Kd = approximately 400 nM). The potent activity of human IL8 on mouse polymorphonuclear neutrophils is not consistent with binding on the cloned receptor and suggests that murine homologues of IL8 and an IL8 type A receptor remain to be identified. Our data indicate that KC is the murine homologue of human Gro-alpha, and the KC receptor is an IL8 type B receptor homologue capable of binding both KC and macrophage inflammatory protein-2 with high affinity.

Animals↗

Chloride channel blockers inhibit the Na+/I- symporter in thyroid follicles in culture.

Porcine thyroid cells in culture are able to reorganize into well-polarized follicle-like structures in the presence of cAMP analogs. These follicles exhibit on their basolateral membrane domain the Na+/I- symporter which allows iodide to accumulate in the thyrocytes. The initial rate of iodide influx through the Na+/I- symporter is inhibited up to 98% by the chloride channel blockers. 5 nitro-2(3-phenylpropylamino)benzoic acid and 3',5-Dichlorodiphenylamine-2-carboxylic acid are the most effective inhibitors, with a K0.5 value of 60 microM. This inhibition is not secondary to inhibition of chloride transport. Other chloride transporter blockers have been studied but showed lesser activities.

4,4'-Diisothiocyanostilbene-2,2'-Disulfonic Acid↗

Constitutive and inducible nitric oxide synthase gene expression, regulation, and activity in human lung epithelial cells.

Histochemical activity and immunoreactivity of nitric oxide synthase (NOS, EC 1.14.13.39) have been recently demonstrated in human lung epithelium. However, the molecular nature of NOS and the regulation and function of the enzyme(s) in the airway is not known. A549 cells (human alveolar type II epithelium-like), BEAS 2B cells (transformed human bronchial epithelial cells), and primary cultures of human bronchial epithelial cells all exhibited constitutive NOS activity that was calcium dependent and inhibitable by the NOS inhibitor NG-monomethyl-L-arginine. Nitric oxide production by epithelial cells was enhanced by culture in the presence of interferon gamma, interleukin 1 beta, tumor necrosis factor alpha, and lipopolysaccharide; the NOS activity expressed under these conditions showed less dependence on calcium, reminiscent of other inducible forms of NOS. Two distinct NOS mRNA species, homologous to previously identified constitutive brain (type I) and inducible hepatic (type II) NOS, were demonstrated by reverse transcription-polymerase chain reaction in all cell lines. Northern analysis confirmed the expression of inducible NOS mRNA. Cell culture with epidermal growth factor, a principal regulator of epithelial cell function, decreased inducible NOS activity by posttranscriptional action but did not affect constitutive NOS activity. The coexistence of constitutive and inducible NOS in human alveolar and bronchial epithelial cells is consistent with a complex mechanism evolved by epithelial cells to protect the host from microbial assault at the air/surface interface while shielding the host from the induction of airway hyperreactivity.

Adenocarcinoma↗

Receptor-dependent internalization of platelet-activating factor.

A human neutrophil platelet-activating factor (PAF) receptor expressed in transfected cells was utilized to study receptor-dependent interactions with the ligand. This receptor displays ligand-binding properties comparable with those observed with naturally occurring receptor-positive cells when binding experiments are performed using COS-7 cells at 4 degrees C. The ligand-receptor interaction is markedly temperature dependent, with approximately 10-fold more [3H]PAF specifically associated with the cells at 37 degrees C than at 4 degrees C. Such temperature dependence is not observed with other ligand-receptor pairs. At 37 degrees C essentially all the cell-associated PAF appears to be internalized and incorporated into a phospholipid pool. In the absence of transfected receptor no specific binding is detected in COS-7 cells at 4 degrees C, and at 37 degrees C, no significant ligand internalization is observed. The epitope-tagged fusion protein, Flag-PAF receptor, was used to track the receptor independently of ligand binding, and showed that the receptor protein expressed on the cell surface is not influenced by temperature alone. Incubation with PAF at 37 degrees C resulted in the disappearance of approximately 20% of the Flag-PAF receptor epitope from the cell surface relative to cells incubated without PAF or cells preincubated with or without PAF at 4 degrees C. Ligand internalization in PAF receptor-transfected cells is inhibited by the receptor antagonist, WEB 2086, further supporting the receptor-dependence of this action. Stimulation of untransfected cells with phorbol ester, or C5a receptor-transfected cells with C5a, shows minimal increase in PAF internalization relative to PAF receptor-transfected cells, another feature that distinguishes the receptor-dependent pathway. These data suggest that in the COS-7 cell system PAF internalization is dependent on expression of the PAF receptor, and that the apparently nonspecific uptake observed in human neutrophils and other cells may involve receptor-independent mechanisms.

Amino Acid Sequence↗

Investigation of moricizine hydrochloride polymorphs.

The antiarrhythmic agent moricizine hydrochloride exhibits a single melting-decomposition endotherm peak at temperatures ranging from 209 to 214.5 degrees C (Form I) when recrystallized from polar solvents, as determined by differential scanning calorimetric analysis. However, a different polymorphic form (Form II), with a differential scanning calorimetric melting-decomposition peak temperature of 190 degrees C, was generated by recrystallizing moricizine hydrochloride from nonpolar solvents. These two polymorphic forms can be reversibly converted to one another by selecting recrystallization solvents. The existence of these polymorphs was confirmed by Fourier transform IR microscopy, X-ray powder diffractometry, and solution calorimetry. Polymorphic Form I exhibited a slightly slower initial dissolution rate than Form II, which correlated well with heats of solution data (less heat needed to dissolve Form II). A simulated wet granulation process did not change the polymorphic form, suggesting that wet granulation is feasible for tablet preparation.

Calorimetry, Differential Scanning↗

Crystallinity, hygroscopicity and dissolution of moricizine hydrochloride hemihydrate.

A typical anhydrous moricizine hydrochloride, an antiarrhythmic agent, is a non-hygroscopic crystalline material. Three lots of moricizine hydrochloride were found to deliquesce within a day at 85% relative humidity, exhibit different X-ray powder diffraction (XRPD) patterns and have more rapid dissolution rate than that of typical anhydrous material. No change in XRPD pattern was observed when the solvent (ethanol) was removed from these lots by heating to 80 degrees C. A two-step water release was observed by thermogravimetric analysis (TGA): a surface water release and a water of hydration release, for these heated samples. The stoichiometry of the water of hydration suggests that it is a hemihydrate. The dissolution rate of the hemihydrate was faster than that of typical anhydrous material. This hemihydrate could be converted to a typical anhydrous material by heating to 90 degrees C. The granules obtained by a simulated wet granulation process on typical lots and typical lots containing up to 20% of hemihydrate exhibited similar physical behaviour to that of typical anhydrous material.

Calorimetry, Differential Scanning↗

Abnormal regional CBF response in left hemisphere of dysphasic children during a language task.

This study used xenon 133 inhalation and single-photon computed tomography to measure regional cerebral blood flow during a quiet resting condition, a simple auditory task, and an auditory phonemic discrimination task in 3 age-matched groups of children suffering from developmental language disabilities: expressive dysphasia, expressive-receptive dysphasia, and attention-deficit hyperactivity disorder. An absence of left hemisphere activation was observed in the expressive-receptive group during the phonemic discrimination task as compared to both expressive and attention-deficit hyperactivity disorder children, together with an absence of left inferior parietal region activation in dysphasics as compared to hyperactive children. These results favor the hypothesis of an abnormal lateralization for language in dysphasic children and point toward possible different pathologic localizations in the different clinical subtypes of dysphasia.

Aphasia↗

The pro-inflammatory seven-transmembrane segment receptors of the leukocyte.

The past few years have witnessed the convergence of research into inflammation and research on the G protein linked receptors; the receptors encoded by this gene family recognize the ligands C5a, interleukin 8 and related chemokines, such as platelet activating factor and formyl peptide. The theme that is emerging suggests that distinct signals at the cell surface feed into common pathways of cell activation. Different agonist functions may relate to G protein heterogeneity, kinetics of activation, receptor phosphorylation, and non-selective coupling of receptors with multiple varieties of G proteins.

Animals↗

C5A anaphylatoxin and its seven transmembrane-segment receptor.

The molecular cloning of the C5a receptor places this molecule in the superfamily of G-protein coupled receptors. This superfamily is characterized by the presence of signature motifs including seven hydrophobic domains which span the cell membrane and impart a predicted serpentine topology to the receptor proteins. The identification of other members of this family, including receptors for the chemokines IL-8 and Mip-1/Rantes, thrombin, formyl peptide, and platelet activating factor, provide new tools for understanding structure-function relationships relevant to the inflammatory process. This review focuses on the recent biological studies concerning the ligand C5a and its cellular receptor, the structure/activity relationships so far discerned, signal transduction mechanisms, progress toward identification of receptor antagonists, and some likely directions for future studies. Where appropriate, relevant work on related seven transmembrane segment receptors is discussed.

Amino Acid Sequence↗

Human lung expresses unique gamma-glutamyl transpeptidase transcripts.

gamma-Glutamyl transpeptidase (EC 2.3.2.2, gamma GT) is a membrane-bound ectoenzyme that plays an important role in the metabolism of glutathione. It is composed of two subunits, both of which are encoded by a common mRNA. We examined the expression of gamma GT in human lung tissue by Northern blot analysis and screening a cDNA library made from human lung poly(A)+ RNA. Our results show that there are two gamma GT mRNA populations in human lung tissue. We define these as group I (2.4 kb) and group II (approximately 1.2 kb) transcripts. In the present communication, we characterize the unique lung transcript. Sequence analysis of representative clones shows that group I transcripts are virtually identical to those previously isolated from liver and placenta but possess a unique 5' untranslated region. In marked contrast, group II transcripts appear to be human-lung-specific. Group II transcripts appear on Northern blots probed with full-length or 3'-biased gamma GT cDNA. Sequence analysis of group II clones shows them to be homologous with group I clones in the region that encodes the reading frame for the light chain; however, they possess a series of unique 5' untranslated regions, which suggests that they arise from lung-specific message processing. Additionally, approximately 50% of the isolated group II clones contain 34 nt substitutions compared with the "wild-type" gamma GT transcripts. These data indicate that human lung expresses unique gamma GT transcripts of unknown function as well as the classical form. The abundant group II transcripts may encode part of a heterodimer related to gamma GT or represent processed lung-specific pseudogenes.

Amino Acid Sequence↗

Specific interactions of chemoattractant factor receptors with G-proteins.

Stimulation of leukocytes with chemoattractant ligands activates phospholipid turnover and calcium release, ultimately leading to chemotaxis, degranulation, and the inflammatory response. The leukocyte response to these ligands is transduced by the interaction of transmembrane receptors with GTP-binding regulatory proteins (G-proteins). To examine the mechanisms of signal transduction by these receptors, we transfected cDNA clones encoding the receptors for the active cleavage product of the fifth component of complement (C5a) and platelet-activating factor (PAF) into COS-7 cells, then measured the production of inositol phosphates (IP) in response to stimulation with these chemoattractant ligands. Cells transfected with the C5a receptor showed no increase in IP production when stimulated with ligand (5-120 nM). However, in cells co-transfected with these receptors and with the cDNA for G alpha 16, a G-protein alpha subunit that is specific to cells of hematopoietic lineage, addition of ligand caused up to a 5-fold increase in IP production. This interaction was specific, as co-transfection of receptors with the G-proteins G alpha q or G alpha 11 did not allow ligand-dependent increase in IP production. In contrast, ligand-dependent activation of IP production was seen in COS cells transfected solely with the PAF receptor. These results indicate that the C5a receptor utilizes signaling pathways distinct from the PAF receptor and suggest that a pertussis toxin-resistant G-protein, G alpha 16, may play a role in the leukocyte response to inflammatory ligands.

Animals↗

Human chemotaxis receptor genes cluster at 19q13.3-13.4. Characterization of the human C5a receptor gene.

The human C5a anaphylatoxin and formyl peptide receptor genes, as well as two genes with high sequence identity to the formyl peptide receptor, FPRH1 and FPRH2, have been mapped to chromosome 19 (Lu et al., 1992). Further analysis reveals that these genes are present in the 19q13.3 band adjacent to the 13.3-13.4 interface. MRNAs for the C5a and formyl peptide receptors, as well as for FPRH1, are expressed in cAMP differentiated U937 cells and human eosinophils, while all four transcripts are expressed in human lung. This observation opens the possibility for coordinate regulation of these genes. In order to initiate the mapping of fine structure at this locus, genomic clones have been analyzed. All four of the genes have a similar structure, with the receptor protein encoded in a single exon. Detailed characterization of the C5a receptor gene reveals a two exon structure, with the 5' untranslated sequence and initiating methionine located in the first exon. An intron of approximately 9 kb separates exon 1 from the receptor-encoding exon 2. The region of genomic DNA flanking the 5' untranslated sequence possesses promoter activity when transfected into the myeloid-derived rat basophilic leukemia RBL-1 cells, but the same region is inactive when transfected into nonmyeloid cells. Deletional analyses indicate that C5a receptor 5' flanking region contains both cell-specific suppressor and promoter regions.

Animals↗