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C Wagener

Publications and source records attributed to C Wagener.

At least 55 records · Page 3Linked to original sources

Sensitive and specific cytokeratin 18 reverse transcription-polymerase chain reaction that excludes amplification of processed pseudogenes from contaminating genomic DNA.

Processed pseudogenes of residual contaminating genomic DNA interfere with a sensitive detection of cytokeratin 18 (CK18) mRNA by reverse transcription and polymerase chain reaction (RT-PCR). This may cause false-positive results when CK18 mRNA is used as a marker for ectopic tumor cells in specimens from cancer patients. To establish a sensitive CK18 RT-PCR by excluding the amplification of processed pseudogenes, the following strategy was chosen: (a) CK18 pseudogene sequences were cloned from genomic DNA by PCR; (b) cDNA-specific primers were designed on the basis of mismatches between pseudogenes and cDNA; (c) PCR conditions were adjusted to reach maximum sensitivity and specificity. Epithelial cells (1-10) could be detected in 1 mL of blood. Among the numerous CK18 genes homologous to the transcribed gene, at least two different processed pseudogenes exist that are highly homologous to each other and to the exons of the transcribed CK18 gene.

Biomarkers, Tumor↗

Induction of the death-promoting gene bax-alpha sensitizes cultured breast-cancer cells to drug-induced apoptosis.

Resistance to apoptosis plays an important role in malignancies that are refractory to chemotherapy treatment. Recently we have shown that the expression of bax-alpha, a death-promoting member of the bcl-2 family, is down-regulated in breast cancer and have provided evidence that low bax expression might contribute to the pathogenesis of breast cancer. In this study we were able to demonstrate the role of this gene in chemotherapy-induced apoptosis. We transfected bax-alpha into the breast-cancer cell lines R30C and MCF-7 under the control of an inducible tetracycline-dependent expression system. Induction of bax-alpha expression did not affect viability by itself but strongly increased chemosensitivity to epirubicin. We were able to demonstrate that this sensitization is due to apoptosis. These data might explain the recently published observation that reduced expression of bax is associated with poor response rates to chemotherapy in breast cancer.

Apoptosis↗

Overexpression of the death-promoting gene bax-alpha which is downregulated in breast cancer restores sensitivity to different apoptotic stimuli and reduces tumor growth in SCID mice.

We have studied the expression of members of the bcl-2 family in human breast cancer. The expression pattern of these genes in breast cancer tissue samples was compared with the expression pattern in normal breast epithelium. No marked difference with regard to bcl-2 and bcl-xL expression was observed between normal breast epithelium and cancer tissue. In contrast, bax-alpha, a splice variant of bax, which promotes apoptosis, is expressed in high amounts in normal breast epithelium, whereas only weak or no expression could be detected in 39 out of 40 cancer tissue samples examined so far. Of interest, downregulation of bax-alpha was found in different histological subtypes. Furthermore, we transfected bax-alpha into breast cancer cell lines under the control of a tetracycline-dependent expression system. We were able to demonstrate for the first time that induction of bax expression in breast cancer cell lines restores sensitivity towards both serum starvation and APO-I/Fas-triggered apoptosis and significantly reduces tumor growth in SCID mice. Therefore, we propose that dysregulation of apoptosis might contribute to the pathogenesis of breast cancer at least in part due to an imbalance between members of the bcl-2 gene family.

Animals↗

Detection of K-ras mutations in stools of patients with colorectal cancer by mutant-enriched PCR.

Mutant-enriched PCR was applied to the detection of mutations at codons 12 and 13 of K-ras genes in the stools of patients with colorectal cancer. Mutations were analyzed in stool samples obtained prior to surgery. Resected tumor specimens were screened for K-ras mutations by PCR-mediated RFLP analysis. Using normal stool samples, assay conditions were adjusted to optimal sensitivity and specificity. The following specimens were included in the study: 16 stool samples corresponding to carcinomas in which K-ras mutations had been identified; 7 randomly selected stool samples corresponding to carcinomas which were negative for K-ras mutations; 1 stool sample from a patient with non-Hodgkin's lymphoma. In 13 of the 16 stool samples (81%) corresponding to tumors in which K-ras mutations had been identified previously, K-ras mutations were detected. In 2 of the 7 stool samples corresponding to tumors in which K-ras mutations had not been detected by previous PCR-mediated RFLP analysis, K-ras mutations were also present. Reanalyses of the tumors corresponding to these 2 positive stool samples by mutant-enriched PCR revealed a K-ras mutation in one of the tumors. The stool and tumor of the patient with non-Hodgkins lymphoma were negative for K-ras mutations. DNA sequence analysis revealed that, for each of the K-ras mutations identified in stool samples, identical base substitutions were present in the corresponding tumor tissue. The results indicate that tumor cells harboring K-ras mutations can be detected in the stools of patients with colorectal cancer by mutant-enriched PCR with high sensitivity and specificity. Because of the simplicity of the technique, it may be suitable for screening of stool samples for mutations of the K-ras gene.

Adult↗

Blocking the transcription factor E2F/DP by dominant-negative mutants in a normal breast epithelial cell line efficiently inhibits apoptosis and induces tumor growth in SCID mice.

The transcription factor E2F is regulated during the cell cycle through interactions with the product of the retinoblastoma susceptibility gene and related proteins. It is thought that E2F-mediated gene regulation at the G1/S boundary and during S phase may be one of the rate-limiting steps in cell proliferation. It was reported that in vivo overexpression of E2F-1 in fibroblasts induces S phase entry and leads to apoptosis. This observation suggests that E2F plays a role in both cell cycle regulation and apoptosis. To further understand the role of E2F in cell cycle progression, cell death, and tumor development, we have blocked endogenous E2F activity in HBL-100 cells, derived from nonmalignant human breast epithelium, using dominant-negative mutants under the control of a tetracycline-dependent expression system. We have shown here that induction of dominant-negative mutants led to strong downregulation of transiently transfected E2F-dependent chloramphenicol acetyl transferase reporter constructs and of endogenous c-myc, which has been described as a target gene of the transcription factor E2F/DP. In addition, we have shown that blocking of E2F could efficiently protect from apoptosis induced by serum starvation within a period of 10 d, whereas control cells started to die after 24 h. Surprisingly, blocking of E2F did not alter the rate of proliferation or of DNA synthesis of these cells; this finding indicates that cell-cycle progression could be driven in an E2F-independent manner. In addition, we have been able to show that blocking of endogenous E2F in HBL-100 cells led to rapid induction of tumor growth in severe combined immunodeficiency mice. No tumor growth could be observed in mice that received mock-transfected clones or tetracycline to block expression of the E2F mutant constructs in vivo. Thus, it appears that E2F has a potential tumor-suppressive function under certain circumstances. Furthermore, we provide evidence that dysregulation of apoptosis may be an important step in tumorigenesis.

Animals↗

Expression of a glycoprotein of the carcinoembryonic antigen family in normal and neoplastic sebaceous glands. Limited role of carcinoembryonic antigen as a sweat gland marker.

BACKGROUND: Carcinoembryonic antigen (CEA) is a well-known marker for sweat gland differentiation in adnexal neoplasms. OBJECTIVE: The aim of this study was to examine the expression of glycoproteins of the CEA family, that is, CEA-180, nonspecific cross-reacting antigens (NCAs), and biliary glycoprotein (BGP), in sebaceous glands and in neoplasms with sebaceous differentiation. METHODS: Normal adult and fetal skin, hyperplasias, hamartomas, and neoplasms with sebaceous or follicular differentiation were stained immunohistochemically with a panel of polyclonal and monoclonal antibodies highly specific for CEA-180, NCAs, and BGP. Double immunostaining was performed to correlate the CEA expression with that of epithelial membrane antigen (EMA), a glycoprotein consistently found in differentiating sebocytes. RESULTS: Whereas sweat glands coexpressed CEA, NCAs, BGP, and EMA, sebaceous glands were exclusively labeled with the antibodies recognizing BGP or EMA. Staining of the sebaceous glands was restricted to mature sebocytes, sparing immature cells. At the ultrastructural level immunoreactivity for BGP and EMA was demonstrable in the golgi area, in small vesicles, and along the cell membranes. During fetal development BGP was not found until the sebaceous glands matured. The expression of BGP and EMA was highly conserved in reactive, hamartomatous, and neoplastic proliferations of adnexal structures with sebaceous differentiation. CONCLUSION: The expression of BGP, a CEA glycoprotein, in differentiating sebocytes accounts for the reactivity of many anti-CEA antibodies with sebaceous glands and thus disqualifies the CEA family as a monospecific marker for sweat gland differentiation.

Adolescent↗

Glycoproteins of the carcinoembryonic antigen (CEA) family are expressed in sweat and sebaceous glands of human fetal and adult skin.

The carcinoembryonic antigen (CEA) family comprises a group of glycoproteins including the classical CEA, nonspecific cross-reacting antigens (NCA), and biliary glycoprotein (BGP). CEA glycoproteins have been identified in many glandular and mucosal tissues. In view of their putative role in cell adhesion, protein sorting, and signal transduction, CEA glycoproteins are thought to be involved in embryogenesis, architectual integrity, and secretory mechanisms of glandular epithelia. Since there are few data available on the expression of CEA-like proteins in human skin, the aim of this study was to immunohistochemically specify and localize the CEA glycoproteins in cutaneous adult and fetal glands using a panel of well-characterized antibodies. The secretory parts of eccrine sweat glands expressed CEA, NCA-90, and BGP, whereas apocrine glands remained unreactive for CEA glycoproteins. The ductal epithelia of both eccrine and apocrine glands contained CEA and NCA-90. Sebaceous glands were stained for BGP only. Electron microscopy of sweat glands showed CEA glycoprotein expression in cytoplasmic organelles and on microvilli lining the ductal surface. In sebaceous glands, BGP were demonstrated in small vesicles and along the cell membranes of differentiating sebocytes. Fetal development of cutaneous glands was associated with early expression of CEA glycoproteins. Additionally, mice transgenic for human CEA were shown to express CEA in sweat glands. The overall distribution of CEA glycoproteins in cutaneous glands was consistent with that in epithelia of other glandular tissues.

Adult↗

Neoplasms with sweat gland differentiation express various glycoproteins of the carcinoembryonic antigen (CEA) family.

Carcinoembryonic antigen (CEA) is a well-established marker for sweat gland differentiation in adnexal neoplasms. In contrast to previous assumptions, CEA does not represent a single oncofetal antigen but comprises a family of homologous glycoproteins, i.e. the classical CEA-180, biliary glycoprotein (BGP), and non-specific crossreacting antigens (NCA). The aim of the study was to evaluate the distribution of the respective glycoproteins of the CEA family in sweat gland neoplasms, as compared to normal sweat glands. A panel of mono-specific antibodies was applied to a total of 83 samples of hyperplastic and cystic alterations of sweat glands, sweat gland neoplasms, and cutaneous metastases of different origin. Within a single group of neoplasms the immunohistochemical profile was rather consistent. Staining for both CEA-180 and NCA-90 indicated ductal differentiation of both eccrine and apocrine glands. Co-expression of CEA-180, NCA-90, and BGP was consistent with differentiation towards the secretory part of eccrine glands or the transitional portion of proximal ducts. Neoplasms with signs of apocrine secretion showed a preferential immunoreactivity for NCA-90 and BGP. In conclusion, a specification of the members of the CEA family may be of some value in the differential diagnosis of adnexal neoplasms, but not in the discrimination of sweat gland carcinoma from metastatic carcinoma.

Adnexal Diseases↗

CD66a (BGP), an adhesion molecule of the carcinoembryonic antigen family, is expressed in epithelium, endothelium, and myeloid cells in a wide range of normal human tissues.

CD66a, also called biliary glycoprotein (BGP), is a member of the carcinoembryonic antigen (CEA) family and of the immunoglobulin superfamily. CD66a is the human homologue of Cell-CAM, a well-defined cell adhesion molecule of the rat. In the present study a monoclonal antibody specific for CD66a was used to locate CD66a in human tissues. CD66a is expressed in epithelia, in certain endothelia, and in cells of the myeloid lineage. Hepatocytes were stained along the bile canaliculi. A characteristic apical membranous staining was observed in enterocytes, superficial absorptive cells of the colon, in the epithelia of esophageal and Brunner's glands, bile ducts and gallbladder, pancreatic ducts, proximal tubules of the kidney, prostate, endometrium, and mammary ducts. Selective staining of endothelia was present in glomeruli and vasa recta of the kidney, small placental vessels, adrenal sinusoids, endometrium, the prostate. Among the cells of the myeloid lineage, granulocytes and myelocytes were positive. The expression of CD66a by human cells and tissues is well comparable with the expression reported for Cell-CAM, the rat counterpart of CD66a. The wide tissue distribution of CD66a indicates that CD66a is a prominent human adhesion molecule.

Antigens, CD↗

Association of pp60c-src with biliary glycoprotein (CD66a), an adhesion molecule of the carcinoembryonic antigen family downregulated in colorectal carcinomas.

CD66a, also known as 'biliary glycoprotein (BGP)', is the human homologue of a cell adhesion molecule (CAM) of the rat (Cell-CAM). CD66a, which belongs to the carcinoembryonic antigen family and the immunoglobulin superfamily, is expressed in cells of myeloid and epithelial origin. The cytoplasmic domain of the major isoform of CD66a (CD66acyt) contains two tyrosine residues in amino acid motifs potentially interacting with protein tyrosine kinases of the Src family. Here we provide evidence that CD66a is associated with pp60c-src. From membrane fractions of granulocytes and the colonic cell line HT29, phosphokinase activity was co-immunoprecipitated with CD66a when monoclonal CD66 antibodies or an antiserum against the recombinant cytoplasmic domain of CD66a were used. From the dissociated immunecomplexes, a phosphokinase of M(r) 60,000 was reprecipitated using antibodies against pp60c-src. In vitro, the recombinant cytoplasmic domain was a substrate and binding partner of pp60c-src. Phosphopeptides corresponding to the tyrosine containing amino acid sequences of CD66acyt activated the kinase activity of pp60c-src to a greater extent than a phosphopeptide containing Tyr527 from the SH2-binding regulatory domain of pp60c-src. The down-regulation of CD66a in about 80% of colorectal carcinomas may contribute to a dysregulation of pp60c-src in colorectal cancer.

Amino Acid Sequence↗

Cell- and region-specific expression of biliary glycoprotein and its messenger RNA in normal human colonic mucosa.

The localization of biliary glycoprotein (BGP) and its mRNA in normal colonic mucosa was studied by immunohistochemistry and in situ hybridization. BGP mRNA was confined to columnar epithelial cells and expressed abundantly in the superficial mature cells and at low levels in differentiating cells in the upper crypts. Epithelial expression of BGP coincided with that of BGP mRNA. Ultrastructurally, BGP was localized to microfilaments of the fuzzy coat of the columnar cells at the luminal surface and the upper crypts. Additionally, BGP was found in cryptal caveolated cells. The results are consistent with primary transcriptional regulation of BGP production and suggest that BGP synthesis is controlled by the degree of cytodifferentiation. The fuzzy-coat localization of BGP implies a role in nonspecific defense mechanisms against pathogens.

Adult↗

Diagnosis of micrometastases by the amplification of tissue-specific genes.

Micrometastases of solid tumors are most commonly detected by immunocytochemistry using monoclonal antibodies directed against tissue-specific gene products like cytokeratin-18 (CK-18) and the carcinoembryonic antigen (CEA). While CK-18 is a marker for epithelia in general, CEA is mainly employed in the detection of gastrointestinal and breast carcinomas. To improve the sensitivity and specificity of micrometastasis detection, we planned to establish polymerase chain reaction (PCR) assays for both markers. Here we provide strong evidence for the existence of a CK-18 pseudogene, since specific amplification (i) was readily obtained from healthy bone marrow donors, (ii) did not require reverse transcription of CK-18 mRNA and (iii) was not abolished by RNase treatment. Using a CK-18-specific probe, Southern blot analyses revealed identical-size fragments for both genomic DNA and a CK-18 cDNA after digestion with appropriate restriction enzymes. On the other hand, the amplification of CEA mRNA (i) was never observed in bone marrow samples of healthy donors or patients without solid tumors, (ii) required intact mRNA and the reverse transcriptase reaction, and (iii) could not be obtained after RNase treatment. In reconstitution experiments, single CEA-expressing tumor cells were reliably detected among 2 x 10(7) normal bone marrow cells. We conclude that, due to the presence of pseudogene(s), PCR-based detection systems are not readily suitable for CK-18, while the CEA mRNA amplification should provide a sensitive and specific test for the presence of ectopic, and hence presumed malignant, CEA-expressing cells in body fluids.

Base Sequence↗

Expression of the bcl-2 gene family in normal and malignant breast tissue: low bax-alpha expression in tumor cells correlates with resistance towards apoptosis.

We have studied the expression of the apoptosis-regulating genes bcl-2, bcl-x, bax and APO-1/fas (CD95) in human breast cancer. The expression pattern of these genes in human breast-cancer tissues and breast-cancer-derived cell lines was compared to that seen in normal breast epithelium and breast epithelial cell lines. No difference with regard to bcl-2 and bcl-xL expression was observed between normal breast epithelium and tumor tissue or breast cancer and non-malignant epithelial cell lines. In contrast, bax-alpha, a splice variant of bax, which promotes apoptosis, is expressed in high amounts in normal cell lines and breast tissue, whereas only weak or no expression could be detected in cancer-cell lines and malignant tissue. In contrast to malignant cell lines, which express low levels of bax-alpha, non-malignant epithelial cell lines displaying high amounts of bax-alpha were highly sensitive to induction of programmed cell death by both serum starvation and APO-1/fas (CD95) triggering. We therefore propose that dysregulation of apoptosis contributes to the pathogenesis of breast cancer, at least in part, due to an imbalance between anti-apoptosis genes (such as bcl-2/bcl-x) and apoptosis-promoting genes (bax).

Apoptosis↗

Induction of Bax-alpha precedes apoptosis in a human B lymphoma cell line: potential role of the bcl-2 gene family in surface IgM-mediated apoptosis.

The members of the bcl-2 gene family are major regulators of programmed cell death, but their role in sIg-triggered apoptosis remains unclear. Using sensitive and resistant variants of the human B cell line BL-41, we studied the expression of the bcl-2 gene family during surface IgM-mediated apoptosis. We found constitutive Bcl-2 and Bcl-x expression, which remained unaltered after sIg cross-linking, in both resistant and sensitive cells. This and other experiments suggest that constitutive expression of Bcl-2 or Bcl-x alone is not sufficient to protect from activation-induced cell death in B cells. We therefore investigated Bax-alpha, the death-promoting splice variant of Bax, and found strong induction of both mRNA and protein upon sIg stimulation in sensitive cells. However, resistant subclones showed only weak expression, which was not inducible by sIg cross-linking. We provide evidence that up-regulation of Bax-alpha and the resulting imbalance of Bcl-2/Bax might be a major regulator of sIg-mediated apoptosis. Additionally, we found strong constitutive expression of Bcl-xs, the death promoting variant of Bcl-x, in sensitive cells, whereas resistant cells showed only weak Bcl-xs expression. Thus, we observed a much stronger expression of the death-promoting proteins Bax-alpha (inducible) and Bcl-xs (constitutive) in sensitive cells than in resistant cells. We therefore propose a potential role of the novel bcl-2 gene family members bcl-x and bax in surface IgM-triggered apoptosis.

Apoptosis↗

Tumour diagnosis by PCR-based detection of tumour cells.

Tumour cells shed from solid primary tumours can be detected by the polymerase chain reaction (PCR) based on the selective amplification of mutated tumour genes or of genes expressed in a tissue specific manner. When tumour specific alterations are amplified, few tumour cells can be detected in excess of normal cells derived from the same tissue. Thus, malignant cells can be detected specifically in pancreatic juice, stool, urine, and sputum. Here we describe the adaptation of the mutant enriched PCR in conjunction with the introduction of artificial primer mediated restriction sites to the selective amplification of mutant K-ras genes in stool samples from patients with colorectal carcinomas. In reconstitution experiments, down to 10 colorectal carcinoma cells could be detected in 100 mg of stool. For the diagnosis of micrometastatic disease, a sensitive and specific technique was established based on the reverse transcription of mRNA specific for the carcinoembryonic antigen followed by the amplification of the cDNA (RT-PCR). Attempts to establish a specific RT-PCR for cytokeratin-18 failed because of the existence of at least one processed pseudogene.

Biomarkers, Tumor↗

Immunocytological detection of micrometastatic cells: comparative evaluation of findings in the peritoneal cavity and the bone marrow of gastric, colorectal and pancreatic cancer patients.

The prognosis of digestive cancers is poor mainly due to intraperitoneal relapse by cells which may have already been seeded at the time of surgery. Using immunocytology we investigated the peritoneal cavity and, as a comparison, the bone marrow of 147 patients with gastric, colorectal and pancreatic cancer for micrometastatic cells. Cytological samples from peritoneal cavity lavages and bone marrow aspirates were analyzed using monoclonal antibodies (MAbs) against tumor-associated antigens (TAA) (CEA, CA-19-9, 17-1-A, C-54-0, Ra96) and compared to a MAb staining cytokeratins (KL-1). Patients with benign diseases served as controls. Intraperitoneal micrometastatic cells were detected in 27% of colorectal, 43% of gastric and 58% of pancreatic cancer patients. In the bone marrow, the corresponding data were 29% for colorectal, 25% for gastric and 58% for pancreatic cancer patients. Combined evaluation of both compartments increased the detection rate significantly (colorectal cancer: 40%, gastric cancer: 52%, pancreatic cancer: 72%). No unwarranted reactions were found in the control group. Combining 3 antibodies (CA-19-9, Ra96, C-54-0) enabled good detection for peritoneal cavity samples. In the bone marrow, the use of 2 antibodies (KL-1 and CA-19-9) detected 94% of all positive samples, whereas KL-1 and CA-19-9 stained approx. 70% of all positive samples in each case. The occurrence of stained cells in the peritoneal cavity correlated with classical prognostic factors (TNM classification).

Antibodies↗