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Biomedical subjects

C de Bolós

Publications and source records attributed to C de Bolós.

10 recordsLinked to original sources

MUC4 expression is increased in dysplastic cervical disorders.

The female uterine cervix has 2 characteristic populations of epithelial cells: the endocervix is composed by mucus-secreting cells that express several mucin genes, and the exocervix has a typical stratified squamous epithelium and does not express secreted mucins. Among human mucin genes, the MUC4 sequence has a transmembrane domain, and its molecular structure suggests that it has a protective role and also may be implicated in intracellular signalling. The aim of this study is to analyze whether changes in the expression of MUC4 can be detected associated with the squamous dysplastic transformation of exocervical epithelium. MUC4 expression has been analyzed by immunohistochemistry, Western blotting, and in situ hybridization. Using immunohistochemical techniques, MUC4 is found in normal endocervix (n = 11) and is absent or only focally detected in the normal stratified cervical epithelium (n = 18). In samples from squamous metaplasia (n = 9), MUC4 is variably expressed (10% to 50% positive cells), whereas MUC4 is strongly detected in dysplastic cervical epithelia. The greatest number of positive cells is found in samples with moderate and severe dysplasia in which MUC4 is detected in 100% of the analyzed samples (n = 16). These results have been confirmed by Western blotting and by detection of MUC4 transcripts using in situ hybridization. The present data suggest that MUC4 is activated during the process of squamous dysplastic transformation and may be used as a marker for this pathologic process.

Biomarkers↗

Apomucin expression and association with Lewis antigens during gastric development.

In normal stomach, MUC5AC and MUC6 apomucins are associated with Lewis types 1 and 2, respectively, and this association is lost during gastric carcinogenesis. The expression of gastric (MUC5AC, MUC6) and intestinal (MUC2, MUC4) apomucins and Lewis antigens during gastric development, using single and double labeling immunohistochemistry on fetal tissues (15-41 weeks), was analyzed and related to the tumor expression patterns. Apomucin expression in other fetal tissues was also analyzed. In gastric samples, MUC2 is detected in 14 of 19 showing no correlation with fetal age, and MUC4 is not detected. MUC5AC and MUC6 are always highly detected and are coexpressed and associated with both types of Lewis antigens. These patterns change progressively with the development of the adult gastric morphology. MUC2 is detected in the small intestine, colon, and pancreas; MUC4 is expressed in the colon; MUC5AC is detected in the small intestine; and MUC6 is found in the duodenum and pancreas. The patterns of apomucin expression and association with Lewis antigens during development are complex, but there is a trend toward the establishment of the adult pattern, with the exception of MUC4, which is not detected. These patterns found in fetal stomach indicate that alterations reported in gastric tumors do not fully recapitulate a developmental phenotype.

Digestive System↗

Role of fucosyltransferases in the association between apomucin and Lewis antigen expression in normal and malignant gastric epithelium.

BACKGROUND: In normal gastric epithelium, MUC5AC is detected in superficial epithelium associated with Lewis type 1 antigens and MUC6 is detected in antral glands with Lewis type 2. Therefore, the stomach constitutes an excellent model to examine the role of glycosyltransferases in determining the specificity of apomucin glycosylation. AIMS: To determine the molecular basis of this association and to examine changes in expression of gastric and intestinal apomucins and their association with Lewis antigens during the gastric carcinogenesis process. METHODS: Fucosyltransferase (FUT1, FUT2, FUT3) and mucin (MUC5AC, MUC6) transcripts were detected using reverse transcription-polymerase chain reaction. Apomucin (MUC2, MUC4, MUC5AC, MUC6) and Lewis antigen (types 1 and 2) expression were analysed using single and double immunohistochemistry and in situ hybridisation. RESULTS: In the normal stomach, FUT1 is exclusively detected associated with MUC6; FUT2 is only detected when MUC5AC is present. This co-regulation is lost in gastric tumours, as is differential expression of MUC5AC and MUC6 in normal gastric epithelial cells. In gastric tumours, especially those with the intestinal phenotype, MUC2 and MUC4 genes are upregulated, and gastric-type and intestinal-type mucins are coexpressed. These changes are early events in the gastric carcinogenesis process, as they are detected in intestinal metaplasia. CONCLUSIONS: The glycosylation pattern found in normal gastric epithelium is dictated by the specific set of fucosyltranferases expressed by the cells rather than by the apomucin sequence. The development of intestinal metaplasia and gastric cancer is associated with the appearance of cellular phenotypes that are absent from normal epithelium.

Antigens, Tumor-Associated, Carbohydrate↗

Polymorphism of human mucin genes in chest disease: possible significance of MUC2.

Most of the genes that encode epithelial mucins are highly polymorphic due to variations in the length of domains of tandemly repeated (TR) coding sequence, the part of the apomucin that is heavily glycosylated. We report here for the first time a difference in the distribution of MUC TR length alleles in chest disease. We examined the distribution of the length alleles of those MUC genes whose expression we have confirmed in the bronchial tree in an age- and sex-matched series of 50 pairs of atopic patients with and without asthma. There was no significant difference in the distribution of alleles of MUC1, MUC4, MUC5AC, and MUC5B. MUC2, however, showed a highly significant difference in distribution. The atopic, nonasthmatic individuals showed an allele distribution that was very different from all our other patient and control groups, this group showing a longer mean allele length. The observations suggest that longer MUC2 alleles may help protect atopic individuals from developing asthma, though the effect may be due to a linked gene. The biological significance of this variation with respect to susceptibility to asthma will merit further investigation, and it will also be important to substantiate this finding on an independent data set.

Alleles↗

Immunohistochemical study of the expression of MUC6 mucin and co-expression of other secreted mucins (MUC5AC and MUC2) in human gastric carcinomas.

To investigate the expression of MUC6 mucin in gastric carcinomas, we generated a novel monoclonal antibody (MAb CLH5) using an MUC6 synthetic peptide. MAb CLH5 reacted exclusively with the MUC6 peptide and with native and deglycosylated mucin extracts from gastric tissues. MAb CLH5 immunoreactivity was observed in normal gastric mucosa restricted to pyloric glands of the antrum and mucopeptic cells of the neck zone of the body region. In a series of 104 gastric carcinomas, 31 (29.8%) were immunoreactive for MUC6. The expression of MUC6 was not associated with histomorphological type or with clinicopathological features of the carcinomas. Analysis of the co-expression of MUC6 with other secreted mucins (MUC5AC and MUC2) in 20 gastric carcinomas revealed that different mucin core proteins are co-expressed in 55% of the cases. MUC6 was co-expressed and co-localized with MUC5AC in 45% and with MUC2 in 5% of the cases. Expression of MUC2 alone was observed in 25% of the cases. All carcinomas expressing MUC2 mucin in more than 50% of the cells were of the mucinous type according to the WHO classification. The co-expression of mucins was independent of the histomorphological type and stage of the tumors. In conclusion, we observed, using a novel well-characterized MAb, that MUC6 is a good marker of mucopeptic cell differentiation and is expressed in 30% of gastric carcinomas, independent of the clinicopathological features of the cases. Furthermore, we found that co-expression and co-localization of mucins in gastric carcinomas is independent of histomorphology and staging. Finally, we observed that intestinal mucin MUC2 is expressed as the most prominent mucin of the mucins tested in mucinous-type gastric carcinomas.

Animals↗

Intestinal metaplasia of human stomach displays distinct patterns of mucin (MUC1, MUC2, MUC5AC, and MUC6) expression.

Intestinal metaplasia is a well-established premalignant condition of the stomach that is characterized by mucin carbohydrate modifications defined by histochemical methods. The purpose of the present study was to see whether the expression of mucin core proteins was modified in the different types of intestinal metaplasia and to evaluate the putative usefulness of mucins as "molecular markers" in this setting. We used a panel of monoclonal antibodies with well-defined specificities to MUC1, MUC2, MUC5AC, and MUC6 to characterize the expression pattern of mucins. In contrast to normal gastric mucosa, the complete form or type I intestinal metaplasia (n = 20) displayed little or no expression of MUC1, MUC5AC, or MUC6 in the metaplastic cells and strong expression of the intestinal mucin MUC2 in the goblet cells of all cases. The incomplete forms of intestinal metaplasia, type II (n = 25) and type III (n = 16), expressed MUC1 and MUC5AC in every case, both in goblet and in columnar cells. MUC6 was also expressed in 16 cases of type II intestinal metaplasia and in 11 cases of type III intestinal metaplasia. The intestinal mucin MUC2 was expressed in every case of incomplete intestinal metaplasia, mostly in goblet cells. The mucin expression profile in the different types of intestinal metaplasia allows the identification of two patterns: one defined by decreased levels of expression of "gastric" mucins (MUC1, MUC5AC, and MUC6) and expression of MUC2 intestinal mucin, which corresponds to type I intestinal metaplasia, and the other defined by coexpression of "gastric mucins" (MUC1, MUC5AC, and MUC6) together with the MUC2 mucin, encompassing types II and III intestinal metaplasia. Our results challenge the classical sequential pathway of intestinal metaplasia (from type I to type III via a type II intermediate step).

Antibodies, Monoclonal↗

Cytokines as adjuvants: effect on the immunogenicity of NeuAc alpha 2-6GalNAc alpha-O-Ser/Thr (sialyl-Tn).

Sialyl-Tn, defined by monoclonal antibody (MAb) B72.3, shows restricted normal-tissue distribution but is expressed in a wide variety of carcinomas. To analyze the immunogenicity of sialyl-Tn, mice were immunized with ovine submaxillary mucin (OSM) in combination with monophosphoryl lipid A (MPLA), liposomes, or adjuvants that activate macrophages (rIL-1, rIFN-gamma, rM-CSF, IL-1-derived peptides) or T cells (rIL-2). The level and specificity of the immune response were analyzed by ELISA. rIL-1 and rIFN-gamma induced a very high and specific antibody response, whereas the effect of rM-CSF was dose-dependent: at a low dose it induced a high-level specific antibody response and at the high dose level it induced a polyclonal non-specific response. These results indicate that cytokines are powerful adjuvants which modulate both the magnitude and specificity of the immune response. More studies are necessary to determine the optimal doses in animal models and in active specific immunotherapy of patients with cancer.

Adjuvants, Immunologic↗

Detection of the MUC2 apomucin tandem repeat with a mouse monoclonal antibody.

BACKGROUND: The MUC2 intestinal mucin gene contains tandem repeats of 23 amino acid length that are rich in threonine. METHODS: Mouse monoclonal antibody LDQ10 was raised against chemically deglycosylated mucin isolated from LS174T colon cancer nude mouse xenografts. RESULTS: LDQ10 reacts with deglycosylated colon cancer mucin and with a synthetic peptide encompassing the MUC2 tandem repeat sequence. In immunohistochemical assays, strong reactivity with goblet cells in colon, small bowel, and stomach is observed; weaker reactivity with mucin-producing cells in other epithelial tissues is shown. The epitope recognized by LDQ10 is localized in the rough endoplasmic reticulum of normal colonic goblet cells. LDQ10 also shows strong reactivity with colorectal and stomach cancers and weaker reactivity with pancreas, breast, and bladder cancers. CONCLUSIONS: Antibody LDQ10 detects a peptide epitope of MUC2 that becomes cryptic on glycosylation. Altered synthesis of the MUC2 apomucin takes place in a variety of epithelial cancers.

Animals↗

Intestinal brush-border-associated enzymes: co-ordinated expression in colorectal cancer.

The brush border of normal small-intestine epithelial cells is rich in enzymes that are involved in the digestive process. Such molecules can be used as markers to analyze cell lineages and differentiation properties of colorectal cancers. Monoclonal antibodies detecting dipeptidyl peptidase-IV, aminopeptidase N, endopeptidase F, sucrase-isomaltase, alkaline phosphatase, maltase-glucoamylase and lactase have been used to analyze the phenotype of colorectal cancers, adjacent mucosa and histologically normal distant mucosa. The avidin-biotin peroxidase complex method was used. Expression of dipeptidyl peptidase-IV, aminopeptidase N, sucrase-isomaltase and alkaline phosphatase was common in non-neoplastic mucosa adjacent to, and distant from, the tumor; in contrast, endopeptidase F, maltase-glucoamylase and lactase were rarely expressed in normal distant mucosa and more frequently expressed in mucosa adjacent to the tumor. Dipeptidyl peptidase-IV, aminopeptidase N, endopeptidase F, sucrase-isomaltase and alkaline phosphatase were frequently expressed in colorectal cancers, whereas maltase-glucoamylase and lactase were rarely expressed. Two general patterns of antibody reactivity were observed: diffuse cytoplasmic and apical; apical reactivity was generally associated with more differentiated tumors. A logistic predictive regression model indicated that enzyme expression in colorectal cancers followed a coordinate pattern, but was unrelated to the location of the tumor, Dukes stage or differentiation grade. In conclusion, expression of brush-border-associated enzymes occurs frequently in colorectal cancers and is regulated in a co-ordinated manner. These markers can be used for the phenotypic sub-classification of colorectal cancers.

Alkaline Phosphatase↗