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F Grunert

Publications and source records attributed to F Grunert.

At least 37 records · Page 2Linked to original sources

From genes to proteins: the nonspecific cross-reacting antigens.

The existence of nonspecific cross-reacting antigens (NCAs), following their first description by von Kleist, was regarded as a disadvantage for the characterization and determination of carcinoembryonic antigen (CEA) using monoclonal antibodies or antiserum. Nowadays, after identification of a family of genes highly homologous to the CEA gene and some of the corresponding proteins, there is increasing evidence for important roles of these molecules in cell adhesion, bacterial binding, bile acid transport and other functions. For example, rapid up-regulation of the well-established NCAs (NCA-160, NCA-95 and NCA-90) on the surface of neutrophilic granulocytes by different inflammatory agents and the inhibition of binding of these cells to cytokine-activated endothelial cells by antibodies against NCAs are good indications for an important role in granulocyte functions. The presence of a consensus sequence in the cytoplasmic domains of some transmembrane members of the CEA family, which was first described for subunits of signal transduction complexes of the immune system (e.g. B and T cell receptor), also suggests a role in signal transduction. Additionally, using stably transfected cells expressing members of the CEA family, NCAs could be clustered to the 'cluster of differentiation' (CD) CD66a-d, during the recent 5th Leukocyte Typing Workshop. Therefore, further contributions to our knowledge about NCAs can be expected not only from researchers working in the CEA field but also from scientists working with cells of the hematopoietic system.

Animals↗

A repertoire of monoclonal antibodies reveals extensive epitope heterogeneity in CEA purified from neoplasms originating from different organs.

The heterogeneity of carcinoembryonic antigen (CEA) from 5 individual hepatic metastases of tumours originating in different organs (1 colon, 1 stomach and 3 breast adenocarcinomas) was analyzed with a repertoire of 56 alpha CEA murine MAbs. In each tumour preparation, the MAbs disclosed 2 distinct molecular species displaying remarkable variability in their apparent molecular weights (e.g. 130-170 kDa for the fast-migrating CEA variant and 180-260 kDa for the slowly-migrating one). After chemical deglycosylation this heterogeneity was abolished and 2 main proteins of 84 and 64 kDa were generated; the difference in their molecular weights could not be accounted for by differential glycosylation. Although 3 of the analyzed preparations were derived from individual adenocarcinomas of the breast, the glycosylated molecules differed considerably from one another, in their relative molecular mass. The MAbs used showed essentially 3 different recognition patterns according to their reactivity either with both CEA molecular weight variants, or just with the higher or the lower one. In a quantitative comparison of the immunoprecipitation yields of the MAbs with CEA, considerable immunological variability (ranging up to 26-fold), as well as preferential expression of CEA epitopes, could be demonstrated among the 5 different preparations. Here again no uniform epitope presentation could be observed among the 3 breast tumours thus far tested. Comparison of the precipitation yields with the glycosylated and deglycosylated CEA species revealed that, whereas the CEA antigenic heterogeneity remained in some cases unchanged, most of the MAbs exhibited, in carbohydrate-free CEA, the appearance of a new heterogeneity.

Adenocarcinoma↗

Expression of the CEA gene family members NCA-50/90 and NCA-160 (CD66) in childhood acute lymphoblastic leukemias (ALLs) and in cell lines of B-cell origin.

The carcinoembryonic antigen (CEA) and the classical non-specific cross-reacting antigens (NCAs) belong to the CEA gene family which is part of the immunoglobulin superfamily. In normal hematopoiesis, CEA gene family members (CGMs) have only been reported on cells of myeloid and monocytic origin. In the present study, we analyzed 62 childhood acute lymphoblastic leukemias (ALLs) and seven surface immunoglobulin positive (sig+) B-cell lines for the expression of the CEA family members CEA, NCA-50/90, NCA-95, NCA-160, CGM1 and CGM7. We demonstrated that members of the CEA family were present in 76% of childhood ALLs of B- and T-cell origin. In ALLs of B-cell origin, 82% of the samples expressed at least one CEA subgroup member: 38% NCA-50/90 (CD66c), 31% NCA-160 (CD66a), and 13% both. Six of seven B-cell lines solely expressed NCA-160. In seven ALL of T-cell origin, sole NCA-160 expression was present in 29% of the cases. CEA and CGM1 were not expressed in childhood ALLs or in the sIg+ B-cell lines. In 15 ALLs and seven B-cell lines which could be analyzed for CGM7 expression, the antigen was not detected. NCA-95 was not expressed in 91% of the B-lineage ALLs, in T-lineage ALLs and in the B-cell lines. However, five B-lineage ALLs showed conflicting data on the binding patterns of two, on leukocytes specifically NCA-95 recognizing antibodies suggesting either expression of unknown forms of NCA-95 or NCA-50/90 or of a yet unknown member of the CEA family in these ALL cells. The expression of CEA subgroup members in childhood ALL cells might have prognostic impacts, as an inverse correlation exists between NCA expression on leukemic blasts and the risk factor white blood count at diagnosis.

Adolescent↗

Determination of the specificities of monoclonal antibodies recognizing members of the CEA family using a panel of transfectants.

Carcinoembryonic antigen (CEA), one of the most clinically important tumor markers, is mainly used in the post-surgical surveillance of patients with colorectal carcinomas. CEA belongs to a large protein family, which includes cross-reacting antigens, e.g., non-specific cross-reacting antigens (NCAs) and biliary glycoprotein (BGP) as well as pregnancy-specific glycoproteins (PSGs). The genes encoding these proteins can be subdivided into the CEA and PSG subgroups. The members of the subgroups share antigenic determinants and show high similarity in amino-acid sequences. Their derived secondary structures show them to belong to the immunoglobulin superfamily. Due to the close relationship of the members of the CEA subgroup, it is very difficult to distinguish between the individual members with MAbs. Here we have used flow cytometric analysis of transfectants expressing individual members of the CEA subgroup as an alternative approach to determine the specificities of 13 MAbs. This allows us to examine the specificities of these antibodies for members of the CEA family, even of those which have not yet been characterized at the protein level. In addition, binding of the MAbs to NCAs expressed by polymorphonuclear cells (PMN) was tested by Western-blot analysis, immunoprecipitation and flow cytometry. Four antibodies bound exclusively to NCA-50/90 and one MAb (80H3) only to NCA-95. MAb 4/3/17 recognizes CEA and BGP on the surface of transfectants and NCA-160 from granulocytes. We assume that NCA-160 is a product of the BGP gene. On granulocytes, which do not express CEA, MAb 4/3/17 is specific for NCA-160 (BGP). Mutual inhibition of the MAbs binding to NCA-50/90 revealed 3 different epitope groups.

Antibodies, Monoclonal↗

Genomic organization, splice variants and expression of CGM1, a CD66-related member of the carcinoembryonic antigen gene family.

The tumor marker carcinoembryonic antigen (CEA) belongs to a family of proteins which are composed of one immunoglobulin variable domain and a varying number of immunoglobulin constant-like domains. Most of the membrane-bound members, which are anchored either by a glycosylphosphatidylinositol moiety or a transmembrane domain, have been shown to convey cell adhesion in vitro. Here we describe two splice variants of CGM1, a transmembrane member of the CEA family without immunoglobulin constant-like domains. CGM1a and CGM1c contain cytoplasmic domains of 71 and 31 amino acids, respectively. The cytoplasmic region of CGM1a is encoded by four exons (Cyt1-Cyt4). Differential splicing of the Cyt1 exon (53 bp) leads to the formation of CGM1c. The presence or absence of potential protein kinase phosphorylation sites in the cytoplasmic domains and a sequence consensus motif involved in signal transduction in multichain immune recognition receptors indicates that this splice event is of functional importance. CGM1a mRNA, the predominant CGM1 transcript, was found in the granulocytic lineage, but not in monocytes, lymphocytes nor in a number of tumors derived from all three germ layers. Weak staining using monoclonal antibodies Tu2 and 73 in fluorescence-activated cell scan analyses indicate low concentrations of CGM1 protein on the surface of granulocytes. The CGM1 protein is also recognized by CD66 antibodies. Therefore, the granulocyte-specific CD66 epitope is present on at least four CEA family members: CGM1, CEA, NCA-50/90 and NCA-160.

Amino Acid Sequence↗

Carcinoembryonic antigen and related glycoproteins in psoriasis.

Psoriasis is a benign but hyperproliferative skin disease. Psoriatic basal cells show a phenotype similar to that of normal skin, while psoriatic suprabasal cells exhibit a qualitatively altered keratinization pathway, resulting in the absence of the granular layer. These cells further show an abnormal expression of cellular differentiation antigens, which does not lead to tumor development. This immunohistological study demonstrates the appearance of carcinoembryonic antigen (CEA) in psoriatic suprabasal cells below the parakeratotic layer, while other markers such as CEA-related antigens, the nonspecific cross-reacting antigens and alpha-fetoprotein are not expressed. CEA is absent in normal skin, lichen planus, ichthyosis vulgaris and allergic dermatitis. Our data support the notion that dedifferentiation of psoriatic suprabasal keratinocytes is due to the reactivation of early developmental patterns of differentiation in this disease.

Antibodies, Monoclonal↗

CD66 nonspecific cross-reacting antigens are involved in neutrophil adherence to cytokine-activated endothelial cells.

Neutrophil adherence to cytokine-activated endothelial cell (EC) monolayers depends on the expression of the endothelial leukocyte adhesion molecule-1 (ELAM-1). The ligand for ELAM-1 is the sialylated Lewis-x antigen (SLe(x)) structure. The selectin LAM-1 (or LECAM-1) has been described as one of the SLe(x)-presenting glycoproteins involved in neutrophil binding to ELAM-1. Other presenter molecules have not yet been described. Our data demonstrate that the carcinoembryonic antigen (CEA)-like surface molecules on neutrophils--known as the nonspecific cross-reacting antigens (NCAs)--are involved in neutrophil adherence to monolayers of IL-1-beta-activated EC. The NCAs are recognized by CD66 (NCA-160 and NCA-90) and CD67 (NCA-95). Because NCA-95 and NCA-90 have previously been found to be phosphatidylinositol (PI)-linked, paroxysmal nocturnal hemoglobinuria (PNH) neutrophils (which lack PI-linked surface proteins) were tested as well. PNH neutrophils showed a diminished binding to activated EC. CD66 (on PNH cells still recognizing the transmembrane NCA-160 form) still inhibited the adherence of PNH cells to IL-1-beta-activated EC, but to a limited extent. Soluble CEA(-related) antigens inhibited normal neutrophil adherence as well, whereas neutrophil transmigration was unaffected. Sialidase-treatment as well as CD66 preclearing abolished the inhibitory capacity of the CEA(-related) antigens. The binding of soluble CEA antigens to IL-1-beta-pretreated EC was blocked by anti-ELAM-1. These soluble antigens, as well as the neutrophil NCA-160 and NCA-90, both recognized by CD66 antibodies, presented the SLe(x) determinant. Together, these findings indicate that the CD66 antigens (i.e., NCA-160/NCA-90) function as presenter molecules of the SLe(x) oligosaccharide structures on neutrophils that bind to ELAM-1 on EC.

Antigens, CD↗

Thermo-stability and antitumor activity on colon cancer cell lines of monoclonal anti-CEA antibody-saporin immunotoxin.

Eight saporin peaks were obtained from the purification of seed extracts of Saponaria officinalis L. Saporin peak No. 6 (SAP-6) showed the highest activity in the inhibition of protein synthesis (98%) in an in vitro translation study. An immunotoxin (IT) was prepared from SAP-6 conjugated to a monoclonal anti-CEA antibody 26/5/1 (mab B) using N-succinimidyl pyridyl dithiopropionate (SPDP) and 2-iminothiolane as a cross linker. Under thermal stability study by a DSC (differential scanning calorimetry), the IT showed a denature temperature of 75 degrees C. In in vitro translation studies, the purified IT showed the same activity as SAP-6 at 10(-7) M and 10(-9) M protein concentration at 0, 30 and 60-min incubation effects with mab B and SAP-6 not conjugated at 24-hr incubation periods on human promyelocytic cell line HL 60 and on human colon adenocarcinoma cell lines which were SW 403, LoVo and LS 174 T. SAP-6, mab B and IT had no cytotoxic effect on HL-60. The IT showed a higher cytotoxic effect than SAP-6 in CEA-positive cell lines. The IT demonstrated the highest cytotoxic effect of 51% inhibition of control at 10(-7) M on the LS 174 T.

Antibodies, Monoclonal↗

CD66 identifies a neutrophil-specific epitope within the hematopoietic system that is expressed by members of the carcinoembryonic antigen family of adhesion molecules.

Preliminary results from the IVth Leucocyte Culture Conference have classified the monoclonal antibody (MoAb), YTH 71.3.2, as CD66. Two other MoAbs, YPC 2/12.1 and CE6/2D3.1, share a common cellular specificity, reacting with cells of the neutrophil series and colonic epithelium. The YTH 71.3.2 and CE6/2D3.1 MoAbs both recognize a similar CD66 defined epitope that is distinct from that identified by YPC 2/12.1. By Western blotting, these antibodies react with different molecular species from cells of different lineages. The antibodies identify 50- to 55-Kd, 80- to 100-Kd, and 130- to 200-Kd components present in a semi-purified carcinoembryonic antigen (CEA) preparation from colonic adenocarcinomas and a 90- to 130-Kd molecule from HL-60 cells. With the colonic cell line, LS174T, YPC2/12.1 stains diffuse bands of 160 to 200 Kd and 90 to 130 Kd with equal intensity, whereas the binding of CE6/2D3.1 and YTH 71.3.2 is biased toward the lower molecular weight set of molecules. Remarkably, all three antibodies recognize CEA-related molecules. Defined analyses using HeLa cells transfected with CEA, NCA(NCA-50/90), and CGM6(NCA-95) cDNAs show that the three MoAbs identify CEA to varying degrees. While YTH 71.3.2 and CE6/2D3.1 also bind to NCA-50/90, YPC 2/12.1 recognizes an epitope expressed by both the NCA-50/90 and NCA-95 molecular species.

Antibodies, Monoclonal↗

Carcinoembryonic antigen gene family: molecular biology and clinical perspectives.

The carcinoembryonic antigen (CEA) gene family belongs to the immunoglobulin super-gene family and can be divided into two main subgroups based on sequence comparisons. In humans it is clustered on the long arm of chromosome 19 and consists of approximately 20 genes. The CEA subgroup genes code for CEA and its classical crossreacting antigens, which are mainly membrane-bound, whereas the other subgroup genes encode the pregnancy-specific glycoproteins (PSG), which are secreted. Splice variants of individual genes and differential post-translational modifications of the resulting proteins, e.g., by glycosylation, indicate a high complexity in the number of putative CEA-related molecules. So far, only a limited number of CEA-related antigens in humans have been unequivocally assigned to a specific gene. Rodent CEA-related genes reveal a high sequence divergence and, in part, a completely different domain organization than the human CEA gene family, making it difficult to determine individual gene counterparts. However, rodent CEA-related genes can be assigned to human subgroups based on similarity of expression patterns, which is characteristic for the subgroups. Various functions have been determined for members of the CEA subgroup in vitro, including cell adhesion, bacterial binding, an accessory role for collagen binding or ecto-ATPases activity. Based on all that is known so far on its biology, the clinical outlook for the CEA family has been reassessed.

Amino Acid Sequence↗

Cloning of a carcinoembryonic antigen gene family member expressed in leukocytes of chronic myeloid leukemia patients and bone marrow.

The carcinoembryonic antigen (CEA) gene family belongs to the immunoglobulin superfamily and can be subdivided into the CEA and pregnancy-specific glycoprotein subgroups. The basic structure of the encoded proteins consists of, in addition to a leader, one IgV-like and 2, 3, or 6 IgC-like domains. These domains are followed by varying COOH-terminal regions responsible for secretion, transmembrane anchoring, or insertion into the membrane by a glycosyl phosphatidylinositol tail. Here we report on the characterization of CGM6, a new member of the CEA gene subgroup, by complementary DNA cloning. The deduced coding region comprises 349 amino acids and consists of a leader, one IgV-like, two IgC-like domains, and a hydrophobic region, which is replaced by a glycosyl phosphatidylinositol moiety in the mature protein. CGM6 transcripts were only found thus far in leukocytes of chronic myeloid leukemia patients, in normal bone marrow, and in marginal amounts in normal granulocytes. The CGM6 gene product might, therefore, represent a myeloid marker. Analyses of CGM6 protein-expressing HeLa transfectants with monoclonal antibodies strongly indicate that the CGM6 gene codes for the CEA family member NCA-95.

Antigens, Neoplasm↗

Expression of an NCA cDNA in NIH/3T3 cells yields a 110K glycoprotein, which is anchored into the membrane via glycosyl-phosphatidylinositol.

The NCA cDNA, which represents a gene belonging to the CEA family, was inserted into an SV40 early promoter-driven expression vector and used for transfection of mouse NIH/3T3 cells. A cell line, NIH/3T3/KNCA IG7, was selected which expressed a molecule with an apparent molecular weight of 110,000. The mode of membrane attachment of this NCA, which we already proposed to be anchored via glycosyl-phosphatidylinositol, was investigated by treatment of NIH/3T3/KNCA IG7 cells with phosphatidylinositol-specific phospholipase C from Bacillus thuringiensis. Two independent methods, flow cytometry and immunoprecipitation of [3H]-labelled surface glycoproteins, clearly demonstrated that the NCA molecule expressed by NIH/3T3/KNCA IG7 cells is indeed anchored into the membrane via glycosyl-phosphatidylinositol. Furthermore, these results support our previous biochemical data on NCA-50, by unequivocally showing that the NCA cDNA used for transfection encodes an NCA molecule related to NCA-50 and NCA-90.

Animals↗

Non-specific cross-reacting antigen: characterization of specific and cross-reacting epitopes.

A cDNA for NCA-50 was cloned into the inducible expression vector pTRB1, using the polylinker site at the C-terminus of the lac Z' gene. An NCA-specific MAb (N1), NCA and CEA cross-reactive MAbs (T84.1, 192) and polyclonal antisera (anti-NCA and anti-CEA, as well as anti-PS beta G) detected the fusion protein, with a mol. wt of 155,000, which constituted about 5% of the total bacterial protein. Deletion and mutation analysis showed that all MAbs which stained positive in western blots mapped to a small region within the last third of the N-terminal domain. Superimposition of the deduced amino acid sequence of NCA-50 on the known structure of immunoglobulins reveals that the antigenic region is located on a surface loop, which corresponds to a fourth hypervariable region on the immunoglobulin heavy chain variable regions. By oligonucleotide directed site-specific mutagenesis amino acids were deduced, which constitute part of an epitope, to which the NCA-50-specific MAb, N1, binds.

Amino Acid Sequence↗

Protein analysis of NCA-50 shows identity to NCA cDNA deduced sequences and indicates posttranslational modifications.

The amino acid sequence, representing 59% of the protein moiety of NCA-50 (nonspecific crossreacting antigen), has been determined. These data confirm that NCA-50 is the product of the mRNA whose corresponding cDNAs were recently isolated from a human lung (HLC-1), as well as from a colon carcinoma cell line (SW 403) cDNA library. The four cysteine residues detected in the NCA-50 molecule form disulfide bonds. The glycosylation of 7 potential N-glycosylation sites which were analysed, showed pronounced differences. There is strong evidence that NCA-50 is bound to a phosphatidyl-inositol glycan, via an amide linkage to ethanolamine at amino acid position 287, which has replaced the last 24 amino acids.

Amino Acid Sequence↗

Analysis of the specificity of CEA reactive monoclonal antibodies. Immunological support for the domain-model of CEA.

A panel of 17 monoclonal antibodies (MAbs), which are reactive with purified carcinoembryonic antigen (CEA), was tested. The MAbs were categorized into 6 groups according to their reactivity with CEA 180, CEA 160, non-specific cross-reacting antigen (NCA) 97 and NCA 50. After chemical modification of CEA (reduction, carboxymethylation, deglycosylation, enzymatic cleavage) and binding studies, the MAbs were further divided into 8 subgroups, representing 8 different antigenic sites on CEA. All MAbs bind to deglycosylated CEA. Most of the MAbs are directed against conformational determinants, since only three of them recognize reduced and alkylated CEA. The same three MAbs are able to detect 29 kDa glycosylated fragments obtained by enzymatic cleavage of CEA. These three protease V8- and trypsin-resistant fragments, probably obtained by interdomain cleavage, show a close relationship in peptide patterns, supporting the repeating structural domain-model of CEA as deduced from the cDNA sequence of CEA.

Antibodies, Monoclonal↗

Two CEA and three NCA species, although distinguishable by monoclonal antibodies, have nearly identical peptide patterns.

In perchloric acid extracts of normal lung and colonic tumors, 3 NCA molecules were identified by monoclonal antibodies that cross-reacted with CEA, which itself gave 2 bands in SDS-PAGE. The proteins had molecular weights of 50, 75 and 97 kd, while the 2 CEA molecules banded at 180 and 160 kd in SDS-PAGE. No MAb recognized only one molecule, with the exception of MAb 3/13 which precipitated solely the upper CEA band. Analysis of the biochemical relationship of the cross-reactive antigens showed that none of them contained any internal methionine. Furthermore, after digestion by thermolysin, the peptide maps of the immunoprecipitated molecules showed very close similarities, if not identity. When the cross-reactive and the CEA were compared, the only differences found were in the upper CEA band, which apparently lacked one hydrophobic peptide, while the 97 kd cross-reacting protein showed one extra peptide. We conclude from our results that CEA and the cross-reacting molecules are composed of nearly identical, small (i.e. less than 50 kd) polypeptide chains.

Antibodies, Monoclonal↗

Isolation and characterization of two proteins copurifying with carcinoembryonic antigen.

Using common purification procedures CEA was eluted as a symmetrical peak after gel-chromatography with a molecular weight (mw) of 180,000. The purity was assessed by the Ouchterlony test and immunoelectrophoresis, and by SDS-PAGE, where only one precipitation line and one band were obtained. However, two weak bands with a mw of 45,000 and 58,000 appeared, when iodinated CEA preparations were analyzed on SDS-PAGE. It was impossible to separate these proteins from CEA by a great variety of purification procedures. Out of several different immune sera, only two, anti-alpha-antitrypsin and anti-alpha-1-antichymotrypsin, reacted with the proteins. Furthermore, antisera against these protease inhibitors also immunoprecipitated the typical 180,000 mw band of CEA. This was also true for CEA prepared by other laboratories. We have purified and partially characterized both proteins. Although reacting with antisera against alpha-1-antitrypsin and alpha-1-antichymotrypsin they were not identical to the protease inhibitors, because they possess a different N-terminal amino acid sequence than published for them. However, the comparison of their sequences to 1900 total protein sequences made by computer search revealed a strong homology of the N-terminal sequence of the 45,000 mw protein with an internal sequence of alpha-1-antitrypsin. For the 58,000 mw protein no significant homology was found.

Amino Acid Sequence↗