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D G Beer

Publications and source records attributed to D G Beer.

At least 19 recordsLinked to original sources

A novel amplicon at 8p22-23 results in overexpression of cathepsin B in esophageal adenocarcinoma.

Cathepsin B (CTSB) is overexpressed in tumors of the lung, prostate, colon, breast, and stomach. However, evidence of primary genomic alterations in the CTSB gene during tumor initiation or progression has been lacking. We have found a novel amplicon at 8p22-23 that results in CTSB overexpression in esophageal adenocarcinoma. Amplified genomic NotI-HinfI fragments were identified by two-dimensional DNA electrophoresis. Two amplified fragments (D4 and D5) were cloned and yielded unique sequences. Using bacterial artificial chromosome clones containing either D4 or D5, fluorescent in situ hybridization defined a single region of amplification involving chromosome bands 8p22-23. We investigated the candidate cancer-related gene CTSB, and potential coamplified genes from this region including farnesyl-diphosphate farnesyltransferase (FDFT1), arylamine N-acetyltransferase (NAT-1), lipoprotein lipase (LPL), and an uncharacterized expressed sequence tag (D8S503). Southern blot analysis of 66 esophageal adenocarcinomas demonstrated only CTSB and FDFT1 were consistently amplified in eight (12.1%) of the tumors. Neither NAT-1 nor LPL were amplified. Northern blot analysis showed overexpression of CTSB and FDFT1 mRNA in all six of the amplified esophageal adenocarcinomas analyzed. CTSB mRNA overexpression also was present in two of six nonamplified tumors analyzed. However, FDFT1 mRNA overexpression without amplification was not observed. Western blot analysis confirmed CTSB protein overexpression in tumor specimens with CTSB mRNA overexpression compared with either normal controls or tumors without mRNA overexpression. Abundant extracellular expression of CTSB protein was found in 29 of 40 (72. 5%) of esophageal adenocarcinoma specimens by using immunohistochemical analysis. The finding of an amplicon at 8p22-23 resulting in CTSB gene amplification and overexpression supports an important role for CTSB in esophageal adenocarcinoma and possibly in other tumors.

Adenocarcinoma

The murine Fhit gene is highly similar to its human orthologue and maps to a common fragile site region.

The human FHIT gene is a putative tumor suppressor gene that maps to human chromosome band 3p14.2 in a region that is frequently deleted in cancers. It exhibits both genomic deletions and aberrant transcripts in a variety of tumors and spans the common fragile site FRA3B. This fragile site extends over a broad region of several hundred kb within the FHIT gene and may account for its instability in tumors. As one test of this hypothesis, we isolated the murine Fhit gene and asked whether it also contains a common fragile site and if it is unstable in mouse tumors or tumor cell lines. The Fhit gene was isolated, and the sequence was found to be 87.5% identical to that of the human FHIT gene in the open reading frame. Using fluorescence in situ hybridization, Fhit was assigned to mouse chromosome band 14A2, in a region that was previously shown to contain an aphidicolin-inducible mouse fragile site. Fluorescence in situ hybridization with genomic clones containing Fhit and flanking sequences demonstrated that gaps and breaks in the fragile site occur over a broad region within and proximal to the Fhit locus. Thus, the physical relationship of Fhit to a common fragile site is similar to that observed with the orthologous human FHIT gene and FRA3B.

Acid Anhydride Hydrolases

Lack of cell surface Fas/APO-1 expression in pulmonary adenocarcinomas.

The Fas receptor and ligand initiate an apoptotic pathway. Alterations in this pathway within tumor cells can result in escape from apoptosis and immune surveillance. We evaluated Fas protein expression in 42 primary pulmonary adenocarcinomas, and Fas expression and function in the lung adenocarcinoma cell lines A549 and A427. Immunohistochemical analysis demonstrated Fas protein expression in 47.6% of the tumors; however, Fas-positive tumors demonstrated cytoplasmic staining without cell surface expression. Northern blot analysis indicated that levels of Fas mRNA were similar in Fas protein-positive tumors to levels in normal lung tissue, but were reduced in Fas protein-negative tumors. Soluble form Fas was not detected in the majority of these tumors either by RT-PCR or Western blot analysis. Cell surface Fas protein expression was minimal in A549 and A427 cell lines as determined by flow cytometry. Both cell lines demonstrated Fas mRNA expression by Northern blot analysis and abundant protein expression by Western blot analysis. Transfection of the Fas cDNA derived from A549 cells induced surface Fas protein in COS cells; however, stable transfection of a native Fas cDNA into A549 cells failed to induce surface Fas protein expression. Parental A549 cells and A549 cells transfected with a Fas expression vector were resistant to Fas-mediated apoptosis. Transgenic expression of a FLAG-tagged Fas cDNA in A549 cells, with visualization of the Fas-FLAG protein using confocal microscopy, demonstrated that the Fas-FLAG protein was retained within cytoplasmic portions of the cell and was not translocated to the cell surface. These findings suggest that the Fas protein is reduced or not present on the cell surface in the primary lung tumors and is sequestered within A549 tumorigenic lung cells, and these alterations directly affect the cells resistance to Fas-mediated apoptosis.

Adenocarcinoma

Distal chromosome 17q loss in Barrett's esophageal and gastric cardia adenocarcinomas: implications for tumorigenesis.

The molecular genetic mechanisms underlying esophageal cancer are poorly understood. However, a novel gene that may be involved in esophageal carcinogenesis was recently localized by others to distal 17q by linkage analysis of kindreds with palmoplantar keratoderma and squamous cell carcinoma of the esophagus. To help determine whether a distal 17q gene may also be involved in the pathogenesis of primary Barrett's esophageal and gastric cardia adenocarcinomas, we performed loss of heterozygosity (LOH) analysis of 21 Barrett's and 18 gastric cardia adenocarcinomas at loci spanning 17q: cen-BRCA1-SSTR2-D17S2058-D17S929-D17S722-+ ++D17S937-D17S802-tel. Over 50% of the Barrett's and cardia adenocarcinomas demonstrated loss of an allele at one or more informative distal 17q markers. One common overlapping region of loss involved loci mapped to distal 17q24-proximal 17q25, which tentatively defines a potential chromosomal region distal to BRCA1 involved in the pathogenesis or progression of both types of adenocarcinomas. LOH analysis of DNA from matched microdissected sections of Barrett's metaplasia suggested that loss of D17S2058 in this region may be an early event in the malignant transformation of Barrett's metaplasia. No statistically significant correlations between 17q LOH and tumor stage or patient survival were noted. In summary, LOH mapping of 17q in Barrett's and cardia adenocarcinomas suggests the existence of at least one putative distal 17q tumor suppressor gene involved in the pathogenesis of these tumors.

Adenocarcinoma

Clinical models of chemoprevention for the esophagus.

Esophageal SCC is a complex disease involving multiple etiologic factors. A number of preventive approaches could be taken to reduce the occurrence of the disease including changes in lifestyle and improved nutrition, for example, the inclusion of higher quantities of fruits and vegetables in the diet. Unfortunately, these primary prevention approaches are not easily implemented and often fall short in achieving marked reductions in disease occurrence. Chemoprevention offers another approach to reducing the risk of esophageal SCC that is likely to be useful, even though the clinical trials to date have not resulted in the identification of agents that produce marked inhibitory effects on the development of the disease. Given esophageal SCC's complex etiology, it would appear that the most effective chemoprevention strategy would be to employ agents that reduce mutational events associated with exposure to esophageal carcinogens in combination with agents that inhibit the progression of epithelial dysplasia to esophageal SCC. The feasibility of addressing carcinogen-induced mutational events is underscored by the fact that many of the suspected esophageal carcinogens are known, and inhibitors of these carcinogens have been identified in animal model systems. In addition, biomarkers to assess the efficacy of anti-initiation agents, such as levels of phase I and II enzyme activities and of carcinogen: DNA adducts, can be measured. The identification of agents that inhibit the progression of dysplastic lesions to esophageal SCC has proven difficult; however, the results of the trial with ATB and retinamide are encouraging. Clearly, it seems important to identify the active chemopreventives in the antitumor-B herbal mixture. Further studies to identify strong inhibitors of tumor progression in the rat model for esophageal SCC are also needed. Biomarkers of cell proliferation (e.g., PCNA, Ki67), cell differentiation (keratins), apoptosis, gene expression (EGFR, cyclin D1, p53), and nuclear/nucleolar morphometry can be used in studies to assess the efficacy of chemopreventives to either reverse esophageal dysplastic lesions or slow their rate of progression. The development of viable approaches toward the chemoprevention. of esophageal SCC is truly an important goal in view of the poor prognosis of this disease.

Adenocarcinoma

Abundant expression of the intestinal protein villin in Barrett's metaplasia and esophageal adenocarcinomas.

Villin is a cytoskeletal protein that is involved in the formation of brush-border microvilli in normal small intestine and colon epithelium. This protein is present in Barrett's metaplasia but is reported not to be expressed in Barrett's adenocarcinoma. In this study, we analyzed villin protein expression in Barrett's metaplasia and in both Barrett's adenocarcinomas and tumors of the gastric cardia. Immunohistochemical analysis was used to evaluate the expression and cellular localization of the villin protein in 21 cases of Barrett's metaplasia, 30 cases of Barrett's adenocarcinoma, 16 cases of gastric cardia adenocarcinoma, and eight cases of adenocarcinoma of the distal esophagus. Southern, northern, and western blot analyses were used to evaluate the potential mechanisms for regulation of villin protein expression. Villin protein expression was observed in 21 of 21 cases (100%) of intestinal-type Barrett's metaplasia and in 28 of 30 cases (93%) of Barrett's adenocarcinoma and was thus highly expressed in these tumors. Northern blot analysis demonstrated villin mRNA (3.5 and 2.7 kb) in both villin-positive Barrett's metaplasia and adenocarcinomas. Western blot analysis with the antibody used for immunohistochemical analysis confirmed the presence of a single villin protein band of 95 kDa. Abundant villin expression also was present in both adenocarcinoma of the gastric cardia (13 of 16 cases; 81%) and distal esophageal adenocarcinomas of unknown origin (six of eight cases; 75%). The intestinal brushborder enzyme sucrase isomaltase was found to be present in only 22 of 46 cases (48%) of the adenocarcinomas that expressed villin. We concluded that the protein villin is highly expressed in Barrett's adenocarcinomas and is well maintained in these and other esophageal tumors.

Adenocarcinoma

Unique expression patterns and alterations in the intestinal protein villin in primary and metastatic pulmonary adenocarcinomas.

The identification of markers that distinguish primary pulmonary adenocarcinomas from pulmonary adenocarcinomas secondary to the digestive tract would be clinically important. Villin, a specific marker in digestive-tract malignancies, was evaluated in 57 pulmonary adenocarcinomas, six samples of proximal bronchial tissue, and five metastatic pulmonary adenocarcinomas (three colon and two esophageal adenocarcinomas) by using immunohistochemical and molecular analyses. Villin was expressed in 31.6% (18 of 57) of the pulmonary adenocarcinomas and showed either a diffuse cytoplasmic pattern (10.5%) or a primary cytoplasmic pattern with minor brush-border staining (21.1%). However, none of those samples demonstrated the primary brush-border staining pattern that was characteristic of all five of the metastatic digestive-tract adenocarcinomas. There was a significant difference in the positive brush-border staining pattern between the primary and metastatic pulmonary adenocarcinomas (P < 0.002). Villin protein was expressed in bronchial epithelial cells, and villin mRNA was detected by reverse transcription-polymerase chain reaction. Northern analysis demonstrated 3.5- and 2.7-kb villin mRNAs in villin protein-positive tumors, but villin mRNA was not detected in non-tumorous lung tissue, indicating the transcriptional upregulation of villin in lung tumors. An additional smaller-sized mRNA (1.8 kb) was observed in six of 10 pulmonary adenocarcinomas and in the bronchoalveolar carcinoma cell line A549. Two small villin mRNAs were cloned from the cell line A549 and were found to represent an alternatively spliced (exon 8-exon 14) 1.85-kb mRNA and a 1.8-kb mRNA that was missing a portion of the 5' region (exon 1-exon 9) of the native villin mRNA. These studies demonstrated that the pattern of villin expression and the presence of altered villin mRNAs may be useful markers for pulmonary adenocarcinomas as well as provide support for the potential origin of villin-expressing tumors from bronchial epithelial cells.

Adenocarcinoma

Fas/APO-1 (CD95) is not translocated to the cell membrane in esophageal adenocarcinoma.

This study describes Fas (CD95) expression in Barrett's esophagus, adenocarcinomas of the esophagus, and three esophageal adenocarcinoma cell lines. Immunohistochemical analysis of Barrett's esophagus demonstrated cell surface expression of Fas protein. In contrast, 30.5% of esophageal adenocarcinomas examined by immunohistochemical analysis demonstrated faint cytoplasmic staining, and 69.5% were negative for Fas. Similar levels of Fas mRNA were identified in tumors compared to mRNA levels in esophageal squamous mucosa or Barrett's esophagus. An approximately Mr 48,000 Fas protein was identified by Western blot analysis in tumors that were negative for Fas expression by immunohistochemical analysis. The esophageal adenocarcinoma cell line Seg-1 was negative for Fas expression by immunohistochemical analysis, but Western blot analysis demonstrated abundant, appropriately sized Fas protein. In agreement with the immunohistochemical analysis, flow cytometry of Seg-1 showed minimal amounts of Fas on the cell surface, which correlated with resistance to Fas-mediated apoptosis. No mutations in the Seg-1 Fas coding sequence or exon 1 were identified by sequence analysis. This was confirmed by transient transfection of COS cells with expression vectors generated from the Seg-1 Fas cDNA, which resulted in cell surface expression of the Fas protein. Stable transfection of Seg-1 with a Fas expression vector did not result in efficient Fas expression on the cell surface. Seg-1 cells, transiently transfected with a Fas-FLAG expression vector and examined for protein expression using confocal microscopy and an anti-FLAG antibody, showed that the Fas-FLAG protein was not present on the cell surface but was present in the cytoplasm. Taken together, these results indicate that expression of Fas on the cell surface by esophageal adenocarcinoma is reduced. In an esophageal adenocarcinoma cell line, wild-type Fas protein is retained in the cytoplasm, and this correlates with resistance to Fas-mediated apoptosis. The retention of wild-type Fas protein within the cytoplasm may represent a mechanism by which malignant cells evade Fas-mediated apoptosis.

Adenocarcinoma

Frequent deletions of FHIT and FRA3B in Barrett's metaplasia and esophageal adenocarcinomas.

The FHIT gene, which spans the common fragile site FRA3B, has been shown to produce aberrant transcripts in a variety of tumor types. Homozygous deletions within the FHIT locus have been detected only in tumor-derived cell lines and LOH has been described in numerous primary tumors. Based on these findings and its location on 3p, FHIT has been proposed as a tumor suppressor gene. To further study the relationship of FRA3B to the findings regarding the FHIT gene and to determine the extent of FHIT mRNA alterations in early stages of tumor development, the status of the FHIT gene was evaluated in the premalignant condition of Barrett's esophagus and associated esophageal adenocarcinomas. FHIT expression was investigated by RT-PCR in normal esophageal, Barrett's metaplasia and adenocarcinoma tissues from 15 patients. Alterations of FHIT transcripts were observed in 12/14 (86%) of Barrett's metaplasia and in 14/15 (93%) of the adenocarcinomas from the same patients. Characterization of the altered transcripts revealed FHIT mRNA lacking one or more exons, with deletion of exons 5-7 being most frequent. Analysis of genomic DNA from 20 patients showed homozygous deletions involving exon 5 of FHIT in 4/20 (20%) esophageal adenocarcinomas, and 7/20 (35%) tumors demonstrated hemizygous loss. Genomic deletions also involved the BE758-6 locus, indicating that a large region is deleted. Fluorescence in situ hybridization (FISH) analysis demonstrated that this region of deletion is localized within FRA3B. Our results extend the range of tumor types in which altered FHIT transcripts have been demonstrated and show that these alterations can be seen in the premalignant stage of esophageal tumor development. These results indicate that the fragility and recombination-prone nature of FRA3B is related to tumor-specific chromosomal instability affecting the FHIT gene in esophageal adenocarcinoma development.

Acid Anhydride Hydrolases

Detection of p53 nuclear protein accumulation in brushings and biopsies of Barrett's esophagus.

Alterations in the tumor suppressor gene p53 may represent a useful prognostic marker of premalignant or malignant disease in Barrett's dysplasia or esophageal adenocarcinoma. Immunohistochemistry was used to establish the ability to detect nuclear accumulation of altered p53 protein in esophageal brushings as well as biopsies, and to examine for p53 alterations in a group of 18 patients with Barrett's esophagus enrolled in a surveillance and endoscopy program, p53 protein accumulation was easily detected in esophageal brushings, and the results correlated well with matched biopsies (9/11). In patients enrolled in surveillance endoscopy, 1 brushing of 22 was positive for p53 protein accumulation. In this patient, who received preoperative radiation and chemotherapy, the positive p53 result correlated with positive cytology for residual adenocarcinoma. All Barrett's esophagus brushings negative for p53 protein were benign by cytologic, morphologic criteria. The immunohistochemical detection of p53 alterations in esophageal brushing and biopsy specimens may provide useful information in patients undergoing surveillance for esophageal dysplasia and adenocarcinoma.

Adenocarcinoma

Loss of glucocorticoid-dependent growth inhibition in transformed mouse lung cells.

Transformed A5 mouse lung cells were examined for mechanisms that may explain their loss of glucocorticoid-induced growth inhibition. These cells were compared to nontransformed C10 mouse lung cells, which retain this response. Southern blot analysis revealed no major differences in the amount or pattern of restriction fragments for the glucocorticoid receptor (GR) gene between the responsive and nonresponsive cells. Northern blot analysis demonstrated that both cell lines expressed GR mRNA at similar levels and that these mRNAs had similar relative stabilities. The mRNA from both cell lines was used for reverse transcription-polymerase chain reaction amplification and direct sequencing with primers for different regions of the GR cDNA. A conservative mutation previously shown not to affect receptor function was detected within the DNA-binding domain region of the GR from both cell lines. Because of the ability of the transcription factors for activator protein-1 to antagonize GR function, c-jun and c-fos mRNA levels were examined. A5 cells were found to have higher levels of c-jun mRNA than C10 cells both during active cell growth and after serum starvation. Stable transfection of the nonresponsive A5 cells with a rat GR expression vector (A5GR7) resulted in strong glucocorticoid-induced growth inhibition, demonstrating that these cells retain the ability to be growth inhibited by these steroids. The A5GR7 transfectants also had higher mouse mammary tumor virus (MMTV)-chloramphenicol acetyltransferase (CAT) activity than the parental A5 cells and lower levels of c-jun during active cell growth. Transient transfection of the C10 cells with c-jun expression vector strongly reduced glucocorticoid-inducible MMTV-CAT activity. These results suggest that the transformed A5 cells apparently contain functional GR but that the high level of c-jun mRNA expression (probably resulting from the activated Ki-ras allele in these cells) may antagonize their ability to respond to the growth-inhibitory signaling of glucocorticoids.

Animals

Influence of the glucocorticoid receptor on c-fos inducibility in activated ras-containing mouse lung cells.

Glucocorticoids inhibit the growth and promote the differentiation of normal lung cells. Transformed A5 mouse lung cells containing an activated Ki-ras gene are not responsive to glucocorticoid-induced growth inhibition and demonstrate increased cell proliferation. Activated ras genes may lead to constitutive activation of genes, such as the activating protein 1 (AP-1) transcription factor components fos and jun, which are downstream in the ras signal-transduction pathway. A5 cells and A5GR, a stable A5 transfectant containing excess copies of the glucocorticoid receptor (GR) gene, were examined for potential alterations in AP-1 that accompany the restoration of glucocorticoid-dependent growth inhibition. The established ability of the GR to antagonize AP-1 activity led us to examine the regulation and inducibility of c-fos and c-jun in these cells. Nontransformed C10 lung cells were found to have higher and more inducible AP-1 activity than the transformed A5 cells. The level of AP-1 activity could be reduced in C10 cells by transient transfection of constitutive fos and jun expression vectors. In A5 cells, stimulation with factors that activate the serum-response element on the fos promoter and induce c-fos mRNA had little effect on AP-1 activity, whereas treatment with 12-O-tetradecanoylphorbol-13-acetate, which acts at the fos-AP-1 binding sequence site on the fos promoter, efficiently induced c-fos mRNA. The c-fos mRNA in A5GR cells, however, was not inducible with all treatments, suggesting that one potential mechanism by which the GR restores glucocorticoid-induced growth inhibition in these cells may involve the desensitization of additional 12-O-tetradecanoylphorbol-13-acetate-inducible elements of the fos promoter.

Animals

Detection of Barrett's adenocarcinoma of the gastric cardia with sucrase isomaltase and p53.

BACKGROUND: Routine surveillance for dysplastic epithelium in patients with Barrett's esophagus has markedly improved prognosis. Many patients with short segments of Barrett's mucosa near the esophagogastric junction remain undiagnosed and at risk for the development of Barrett's adenocarcinomas (BA). Sucrase isomaltase (SI), an intestinal enzyme, is highly expressed in intestinal-type Barrett's mucosa and frequently expressed in dysplastic Barrett's mucosa and BA. Sucrose isomaltase is not expressed in normal esophageal or gastric mucosa. Alterations in the p53 tumor suppressor gene are frequent events in dysplastic Barrett's mucosa and BA and result in nuclear protein accumulation. The purpose of this study was to determine the presence or absence of these markers of Barrett's mucosa in adenocarcinoma of the esophagogastric junction or cardia. METHODS: Expression of SI and p53 were examined in 40 BAs and 25 cardia adenocarcinomas using immunohistochemical techniques. RESULTS: Sucrose isomaltase analysis revealed positive staining in 55% (22/40) of the BAs and 44% (11/25) of the cardia adenocarcinomas. Of 14 cardia adenocarcinomas that were SI negative, 100% (14/14) had no associated Barrett's mucosa. However, in 21 cardia adenocarcinomas with no associated Barrett's mucosa, 7/21 (33%) were SI positive. This suggests that SI-positive tumors may represent BA without the standard definition of Barrett's esophagus being met. P53 was present in 65% of BAs and 64% of cardia adenocarcinomas, demonstrating the importance and similarity of this gene alteration in both tumor types. Staining was positive for SI or p53 in 77% (50/65) of all tumors. Tumors of lower stage expressed SI more often than higher stage tumors. CONCLUSIONS: These data suggest that a subset of cardia adenocarcinomas represent BAs. Surveillance endoscopy incorporating additional esophagogastric junction biopsies and assessment of SI or p53 may improve detection of intestinalized Barrett's mucosa and early dysplastic changes.

Adenocarcinoma

Effect of increased glucocorticoid responsiveness in transformed mouse lung cells.

Many transformed mouse lung cells, including LM2 cells, contain activating mutations in the Ki-ras gene and show reduced responsiveness to growth inhibition by glucocorticoids. LM2GR cells, which are LM2 cells stably transfected with a rat glucocorticoid receptor (GR) gene, were used to determine whether increasing glucocorticoid responsiveness can influence aspects of the transformed phenotype. LM2GR cells grew slower and had a lower final saturation density than the parental LM2 cells. Expression of growth-related genes was examined by northern blot analysis. The cells were serum-deprived and treated with fetal bovine serum (FBS), steroid-stripped FBS (ssFBS), dexamethasone, or 12-O-tetradecanoylphorbol-13-acetate. The level and pattern of Ki-ras mRNA expression was similar in both LM2 and LM2GR cells, but histone H4 mRNA was expressed in a more regulated fashion in LM2GR cells. The induction of c-jun and c-fos mRNA expression lasted longer in the LM2GR cells treated with ssFBS; however, the maximal induction was greater in the LM2 cells treated with FBS. LM2GR cells demonstrated similar activator protein-1 (AP-1) activity but higher GR activity than LM2 cells as determined by using AP-1-chloramphenicol acetyltransferase (CAT) and mouse mammary tumor virus-CAT transient transfection assays, consistent with the higher level of GR mRNA in LM2GR cells. Both cell lines exhibited the ability to grow in soft agar and to form tumors in nude mice. These results indicate that introduction of a functional GR transgene into LM2 cells can increase glucocorticoid responsiveness and alter the expression of genes involved in growth regulation but cannot overcome anchorage-independent cell growth or tumorigenicity, apparently because of the presence of an activated Ki-ras gene.

Animals

Expression and activation of erbB-2 and epidermal growth factor receptor in lung adenocarcinomas.

ErbB-2 and EGFR (epidermal growth factor receptor) are expressed in lung adenocarcinomas and associated with a poor prognosis. Immunocytochemical analysis revealed erbB-2 and EGFR coexperession as a characteristic feature of most lung adenocarcinomas, and at levels of receptor expression present in bronchial epithelial cells. In primary lung tumours and cell lines, erbB-2 detected using Western blot analysis demonstrated low-level phosphotyrosine staining of the 185 kDa band, as compared with breast cancer cell lines. A549 and A427 lung adenocarcinoma cells treated with neu differentiation factor (NDF) showed increased erbB-2 phosphotyrosine staining, but to a much lesser extent than breast cancer cells. The lung cells were examined for expression of the potential autocrine growth factors NDF and transforming growth factor alpha (TGF-alpha) by Northern blot analysis. Both NDF and TFG-alpha mRNA were abundantly expressed in the A549 cells. NDF mRNA was highest during active cell proliferation and decreased in confluent cells or after treatment with the growth-inhibitory steroid dexamethasone. Primary tumours and cell lines expressed EGFR, showing higher basal level phosphotyrosine staining than erbB-2. Treatment with NDF and EGF (epidermal growth factor) stimulated cell growth, and in A549 cells the presence of both factors provided an additive increase in cell growth. The growth stimulus that ligand-activated erbB-2 and EGFR provides to lung adenocarcinoma cells may establish a background of continued cell proliferation over which other critical transforming events may occur.

Adenocarcinoma

E-cadherin expression in primary and metastatic thoracic neoplasms and in Barrett's oesophagus.

Reduced expression of E-cadherin, a Ca(2+)-dependent cell adhesion molecule present in normal epithelium, has been associated with invasive and metastatic cancer. Immunohistochemistry was used in examining the relationship between E-cadherin expression and stage in 59 oesophageal and 52 lung cancers. Advanced-stage oesophageal cancers were associated with both reduced and disorganised E-cadherin expression (P < 0.01). Advanced-stage lung adenocarcinomas generally exhibited disorganised or reduced E-cadherin expression, but no statistical association between expression pattern and stage was found (P > 0.05). No differences in stage were seen between tumours with reduced or disorganised E-cadherin expression. Altered E-cadherin expression was detected in dysplastic, non-invasive Barrett's oesophagus. Importantly, high-level E-cadherin expression was detected in 17 of 17 lymph nodes containing metastatic cancer. E-cadherin mRNA expression was decreased in tumours with reduced protein expression, but not in tumours with disorganised expression. Expression of alpha-catenin mRNA, an E-cadherin-associated protein, was detected in tissues with altered E-cadherin protein expression. Reduced and disorganised expression of E-cadherin appear to be related to transcriptional and post-translational events respectively, and both appear to represent altered cell adhesion associated with invasion and metastasis in thoracic neoplasms.

Adenocarcinoma

Intestinal differentiation and p53 gene alterations in Barrett's esophagus and esophageal adenocarcinoma.

The development of esophageal adenocarcinoma is frequently associated with intestinal-type Barrett's metaplasia. Barrett's metaplasia and esophageal adenocarcinomas were examined for expression of the intestinal brush-border-associated hydrolase aminopeptidase N (APN). APN mRNA was detected by utilizing the reverse transcription polymerase chain reaction (RT-PCR) in 50% of Barrett's metaplasia specimens and in 26% of esophageal adenocarcinomas. APN protein was detected by utilizing immunohistochemistry in 84% of Barrett's metaplasia specimens and in 71% of adenocarcinomas, although a decrease or loss of APN protein was sometimes observed in dysplastic Barrett's metaplasia and adenocarcinomas. Alterations in the p53 tumor-suppressor gene have previously been found in both dysplastic Barrett's mucosa and esophageal adenocarcinomas. The same specimens analyzed for APN were examined for the nuclear accumulation of the p53 protein. Utilizing immunohistochemistry, p53 staining was detected in 42% of Barrett's metaplasia specimens, most of which were dysplastic, and in 58% of adenocarcinomas. In the samples positive for p53 protein, gene mutations in exons 5, 7 and 8 were detected by utilizing single-strand conformation polymorphism analysis (SSCP) in 1 Barrett's metaplasia specimen and 6 adenocarcinomas. In Barrett's metaplasia, there was an inverse correlation between APN protein expression and p53 protein accumulation (p < 0.05) suggesting a link between genetic alterations and loss of this marker. The analysis of markers of intestinal differentiation with markers of disease progression may prove to be a useful approach for studying carcinogenesis in Barrett's metaplasia.

Adenocarcinoma

Inhibition of tumor necrosis factor production by lymphocytes from anti-TNF antibody-treated, cardiac-allografted rats.

Tumor necrosis factor-alpha (TNF) is a multifunctional cytokine involved in the immunopathologic consequences of allograft rejection. We have previously demonstrated that anti-TNF antibody treatment prolongs cardiac allograft survival in rats. To elucidate the mechanism of anti-TNF antibody in modulating the immune response, we investigated TNF production by spleen and lymph node cells from anti-TNF antibody-treated Lewis rats who received MHC-mismatched Brown Norway rat cardiac allografts. In 10 untreated rats, cardiac allografts were rejected at 6.8 +/- 0.6 days after transplantation (mean +/- SD). Anti-TNF antibody treatment enhanced graft survival to 12.7 +/- 1.4 days (P < 0.001 vs controls). In other anti-TNF antibody-treated recipients spleen and lymph node cells were isolated on Day 5 after transplant. TNF production was measured and showed significantly less TNF than those from untreated (no anti-TNF antibody), transplanted recipient rats (28.7 u/10(6) spleen cells vs 76.4 u/10(6) spleen cells at 2 hr and 4.6 u/10(6) lymph node cells vs 9.2 u/10(6) lymph node cells at 24 hr). Furthermore, following lipopolysaccharide stimulation, spleen cells from anti-TNF-treated rats again produced significantly less TNF than those from untreated transplanted rats (68.9 u/10(6) cells vs 189.4 u/10(6) cells at 2 hr). Finally, with allogeneic cell stimulation, anti-TNF treated rats again produced significantly less TNF than untreated transplanted rats (spleen cells, 2.2 u/10(6) cells vs 40.4 u/10(6) cells at 24 hr; lymph node cells, 1.2 u/10(6) cells vs 22.2 u/10(6) cells at 72 hr). These findings suggest that anti-TNF antibody treatment may not only neutralize TNF activity, but also suppress TNF production itself, providing a new insight into the regulation of TNF by anti-TNF antibody.

Animals