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S D Markowitz

Publications and source records attributed to S D Markowitz.

At least 37 records · Page 2Linked to original sources

APC mutations in colorectal tumors with mismatch repair deficiency.

We have investigated the influence of genetic instability [replication error (RER) phenotype] on APC (adenomatous polyposis coli), a gene thought to initiate colorectal tumorigenesis. The prevalence of APC mutations was similar in RER and non-RER tumors, indicating that both tumor types share this step in neoplastic transformation. However, in a total of 101 sequenced mutations, we noted a substantial excess of APC frameshift mutations in the RER cases (70% in RER tumors versus 47% in non-RER tumors, P < 0.04). These frameshifts were characteristic of mutations arising in cells deficient in DNA mismatch repair, with a predilection for mononucleotide repeats in the RER tumors (P < 0.0002), particularly (A)n tracts (P < 0.00007). These findings suggest that the genetic instability that is reflected by the RER phenotype precedes, and is responsible for, APC mutation in RER large bowel tumors and have important implications for understanding the very earliest stages of neoplasia in patients with tumors deficient in mismatch repair.

Adenomatous Polyposis Coli↗

Evaluation of the FHIT gene in colorectal cancers.

A variety of studies suggests that tumor suppressor loci on chromosome 3p are important in various forms of human neoplasia. Recently, a chromosome 3p14.2 gene called FHIT was discovered and proposed as a candidate tumor suppressor gene in colorectal and other cancers. We evaluated the FHIT gene in a panel of colorectal cancer cell lines and xenografts, which allowed a comprehensive mutational analysis. A transcript containing the complete coding sequence was found to be expressed at robust levels in 29 of 31 cancers tested. The complete sequence of the coding region of the gene was determined and found to be normal in all 29 of these cases. These studies suggest either that FHIT is inactivated by an unusual mechanism or that it plays a role in relatively few colorectal tumors.

Acid Anhydride Hydrolases↗

Diverse hypermutability of multiple expressed sequence motifs present in a cancer with microsatellite instability.

Colon cancer and an increasing number of other cancers have been found to exhibit instability of DNA microsatellite sequences. Such tumors have been designated as replication errors (RER) tumors. However, as microsatellites are only rarely found within coding regions of the genome, instability of these sequences cannot directly contribute to carcinogenesis. Recently, we have shown RER colon cancers also demonstrate a marked 100-fold increase in mutation rates measured within an expressed gene, hprt, suggesting the mutator phenotype in these tumors extends beyond microsatellite sequences. To determine whether the RER phenotype indeed destabilizes non-repetitive DNA sequences we have sequenced hprt gene mutations recovered from the RER colon cancer cell line RKO. Greater than 10% of hprt mutants proved to be a single 3 bp deletion located in a nonrepetitive ATTAT sequence motif. Additionally, 1-4 bp deletions or insertions were found to be randomly located throughout the hprt gene. Lastly, one third of hprt mutations proved to be transitions or transversions. The microsatellite instability demonstrated in RKO is thus a global mutator phenotype which destabilizes DNA sequences both inside and outside of repetitive sequence elements and which augments base substitutions as well as frameshifts. These findings extend the characteristics of mutations associated with RER tumors and suggest additional mechanisms by which mutator phenotypes may alter oncogenes and tumor suppressor genes.

Base Sequence↗

Tumor suppressor activity of the TGF-beta pathway in human cancers.

The TGF-betas are a family of cytokines with antiproliferative activity on many cell types. Recent findings demonstrate that the TGF-beta receptor complex functions as a tumor suppressor gene in human malignancy. Somatic mutations of the type II subunit of the TGF-beta receptor (RII) have been demonstrated in several different tumor types. RII frameshift mutations within a short coding region polyadenine repeat are particularly characteristic of colon and gastric cancers that also demonstrate the phenotype of microsatellite instability (RER cancers). These and other mutations as in the type I receptor (RI) are associated with both loss of cell surface TGF beta receptors and with resistance of the cancer cells to TGF-beta-induced growth inhibition. Restoration of receptor expression by gene transfection reverses the transformed phenotype in cancer cells that lacked functional RII or RI. These receptors and, by implication, TGF-beta as well as its complete signalling pathway, are thus new and novel additions to the family of human tumor suppressor genes.

Cell Division↗

Mad-related genes in the human.

Resistance to the growth inhibitory effects of TGF-beta is common in human cancers. However, the mechanism(s) by which tumour cells become resistant to TGF-beta are generally unknown. We have identified five novel human genes related to a Drosophila gene called Mad which is thought to transduce signals from TGF-beta family members. One of these genes was found to be somatically mutated in two of eighteen colorectal cancers, and three of the other genes were located at chromosomal positions previously suspected to harbor tumour suppressor genes. These data suggest that this gene family may prove to be important in the suppression of neoplasia, imparting the growth inhibitory effects of TGF-beta-like ligands.

Amino Acid Sequence↗

Mismatch repair defects in human carcinogenesis.

Mismatch repair defects are carcinogenic. This conclusion comes some 80 years after the original description of a type of familial colorectal cancer in which mismatch repair defects are involved, and from decades of dedicated basic science research into fundamental mechanisms cells use to repair their DNA. Mismatch repair (MMR) was described first in bacteria, later in yeast and finally in higher eukaryotes. In bacteria, one of its roles is the rapid repair of replicative errors thereby providing the genome with a 100-1000-fold level of protection against mutation. It also guards the genome by preventing recombination between non-homologous regions of DNA. The information gained from bacteria suddenly became relevant to human neoplasia in 1993 when the RER phenotype of microsatellite instability was discovered in human cancers and was rapidly shown to be due to defects in mismatch repair. Evidence supporting the role of MMR defects in carcinogenesis comes from a variety of independent sources including: (i) theoretical considerations of the requirement for a mutator phenotype as a step in multistage carcinogenesis; (ii) discovering that MMR defects cause a 'mutator phenotype' destabilizing endogenous expressed genes including those integral to carcinogenesis; (iii) finding MMR defects in the germline of HNPCC kindred members; (iv) finding that such defects behave as classic tumor suppressor genes in both familial and sporadic colorectal cancers; (v) discovering that MMR 'knockout' mice have an increased incidence of tumors; and (vi) discovering that genetic complementation of MMR defective cells stabilizes the MMR deficiency-associated microsatellite instability. Models of carcinogenesis now must integrate the concepts of a MMR defect induced mutator phenotype (Loeb) with the concepts of multistep colon carcinogenesis (Fearon and Vogelstein) and clonal heterogeneity/selection (Nowell).

Animals↗

The type II transforming growth factor-beta receptor as a tumor-suppressor gene.

Recent work has shown that: 1) loss of transforming growth factor-beta response is associated with malignant progression, 2) maintenance of autocrine negative transforming growth factor-beta activity is a key impediment to malignant progression, and 3) the major mechanism for loss of RII expression in replication error-positive colorectal cancer patients is mutation of the poly A tract of the transforming growth factor-beta receptor type II (RII) gene resulting in the generation of a premature STOP codon. Major issues for the role of RII in cancer are identified as the determination of the penetrance of mechanisms of RII loss in non-replication error tumors and other types of malignancies in addition to colon cancer. Analysis of mechanism of RII loss may prove to have clinical use in defining the clinical course of subset of different types of malignancies and, in addition, it may result in the identification of new therapeutic targets and approaches for some subsets of cancers.

Colorectal Neoplasms↗

Wild-type p53 demonstrates functional dominance in a human colon carcinoma cell line in which it induces reversible growth arrest.

We have introduced an inducible wild-type p53 allele into the human SW480 colon cancer cell line, which bears an endogenous mutant p53 allele. The expression of inducible wild-type p53 is under basal repression by the lac repressor and is induced by isopropyl-beta-thiogalactopyranoside. The addition of isopropyl-beta-thiogalactopyranoside induces expression of wild-type p53 transcript and protein at a level no greater than that of the endogenous mutant p53. This level of wild-type p53 induction is sufficient both to induce expression of WAF1/CIP1 and to induce G1 cell cycle arrest. This p53-induced growth arrest is reversible after 6 days of continuous p53 expression, indicating that apoptosis is not induced. These results demonstrate that in a human colon epithelial cell background, wild-type p53 is functionally dominant over this mutant p53 and thus provides a mechanism for the observed inactivation of both copies of the p53 gene in most colon cancers. Moreover, despite the well-documented role of apoptosis in maintaining homeostasis in the nontransformed colon epithelium, these results demonstrate that restoration of wild-type p53 expression is insufficient to trigger apoptosis of transformed colonic cells.

Cell Cycle↗

Wild-type p53 protein potentiates cytotoxicity of therapeutic agents in human colon cancer cells.

Wild-type p53 is induced by DNA damage. In different cell types, this induction is suggested either to facilitate DNA repair by inducing a cell cycle pause or to potentiate cell death via apoptosis. Wild-type p53 in different cell types has similarly been associated with either enhancement of or increased resistance to the cytotoxicity of many cancer therapeutic agents. We have constructed a colorectal cancer cell line bearing, in addition to endogenous mutant p53 alleles, an exogenous wild-type p53 allele that is under the regulatable control of the lac repressor. Induction of wild-type p53 by isopropyl-beta-thiogalactopyranoside in these cells induces a reversible growth arrest but does not induce cell death. However, we find that the induction of wild-type p53 powerfully potentiates the cytotoxicity of both irradiation and 5-fluorouracil, two agents that are used clinically in the treatment of colorectal cancer. We also find that induction of wild-type p53 potentiates the cytotoxicity of topotecan, a member of the camptothecin family of drugs that also has clinical activity against colon cancer. These findings suggest that the common loss of wild-type p53 in many colorectal cancers may play a role in the clinical resistance of these tumors to anticancer agents. Although some cancer cells may not be directly killed by p53 gene therapy, our findings suggest that genetic alteration of some cancers to induce wild-type p53 may increase their sensitivity to cytotoxic gene therapy.

Antineoplastic Agents↗

Microsatellite instability and mutations of the transforming growth factor beta type II receptor gene in colorectal cancer.

The TGF beta type II receptor (RII) was found to be mutated within a polyadenine tract in 100 of 111 (90%) colorectal cancers with microsatellite instability. Other polyadenine tracts of similar length were mutated in these samples but not as frequently as RII. In most cases, the polyadenine tract mutations affected both alleles of RII, and in four tumors heterozygous for the polyadenine mutations, three had additional mutations that were expected to inactivate the other RII allele. These genetic data support the idea that RII behaves like a tumor suppressor during CR cancer development and is a critical target of inactivation in mismatch repair-deficient tumors.

Animals↗

Increased mutation rate at the hprt locus accompanies microsatellite instability in colon cancer.

Hereditary Non-Polyposis Colon Cancer (HNPCC) tumors and some sporadic colon cancers acquire somatic changes in the length of microsatellite sequences. We hypothesized that this 'replication error' (RER) phenotype in these cancers reflects a more general defect which should result in hypermutability of expressed genes. To test this hypothesis mutations of hprt were studied in RER and non-RER tumor cell lines. Increased mutation rates of greater than 100-fold were found in RER compared to non-RER lines. Heterogeneity within the RER group suggests the likely existence of different classes of RER tumors. One non-RER cell line demonstrated a greater than 10-fold increase in mutation rate, suggesting that a novel mutator phenotype may exist in some non-RER tumors.

Cell Division↗

Microsatellite instability in inherited and sporadic neoplasms.

Microsatellite instability (the replication error phenotype) is a new molecular assay that identifies a substantial fraction of human cancers. The microsatellite instability in these cancers arises from alterations in the tumors of the number of mono-, di-, and trinucleotide repeats that compose the microsatellites. Microsatellite instability is typical of colon and endometrial tumors arising in members of Lynch syndrome cancer families. Microsatellite instability is also found in a substantial percentage of sporadic cases of colon, endometrial, and gastric cancer, as well as in additional sporadic cancers, such as lung cancer, not usually seen in Lynch kindreds. Thus far, four different mutant genes, all homologous to bacterial DNA repair genes, have been identified as inherited in Lynch kindreds, and therefore are associated with the replication error phenotype. Clinical implications of the replication error phenotype include the demonstration that resistance to some alkylating agents appears to be directly altered in tumors with this phenotype.

Colorectal Neoplasms, Hereditary Nonpolyposis↗

A benign cultured colon adenoma bears three genetically altered colon cancer oncogenes, but progresses to tumorigenicity and transforming growth factor-beta independence without inactivating the p53 tumor suppressor gene.

We describe the spontaneous progression of a colon adenoma cell line to tumorigenicity and growth factor independence. This system allows direct comparison of biologic stages of malignant progression with alterations of colon cancer suppressor genes and oncogenes. VACO-235, a human colon adenoma cell line, is at early passages nontumorigenic in the nude mouse, unable to grow in soft agar, growth stimulated by serum and EGF, and growth inhibited by TGF-beta. VACO-235 daughter passages 93 and higher have in culture spontaneously progressed to being weakly tumorigenic, but retain all other growth characteristics of VACO-235 early passages. A mouse xenograft from late passage VACO-235 was reestablished in culture as the granddaughter cell line, VACO-411. VACO-411 is highly tumorigenic, clones in soft agar, and is unresponsive to serum, EGF, and TGF-beta. Early passage VACO-235 bears a mutant K-ras allele, bears only mutant APC alleles, expresses no DCC transcripts, and expresses only wild type p53 transcripts. VACO-411 retains the identical genotype, still expressing only wild type p53. Colonic cells after ras mutation, APC mutation, and DCC inactivation remain nontumorigenic and growth factor dependent. Malignant progression involves at least two additional steps, and in VACO-411 can proceed by a novel pathway not requiring p53 inactivation.

Adenoma↗

Increased nm23-H1 and nm23-H2 messenger RNA expression and absence of mutations in colon carcinomas of low and high metastatic potential.

BACKGROUND: The murine nm23 gene suppresses the metastatic behavior of malignant rodent tumor lines, and reduced nm23 expression correlates with increased likelihood of lymph node metastases in human breast cancers. More recent data have demonstrated the existence of two human nm23 gene homologues, nm23-H1 and nm23-H2, and have shown that deletion of nm23-H1 alleles occurs in some colon carcinomas associated with poor prognosis. These findings suggest that nm23-H1 encodes for suppression of colon carcinoma metastasis. In contrast, we have previously reported that total nm23 messenger RNA (mRNA) expression is increased to similar levels in colon tumors of both high and low metastatic potential. PURPOSE: This study was designed to reconcile our previous findings with the recent report of nm23-H1 allelic deletion in human colon cancers associated with poor prognosis. Our purpose was to examine human colon cancers for inactivation of two candidate metastasis suppressor genes, nm23-H1 and nm23-H2, either by mutation or by loss of gene transcription. METHODS: We used ribonuclease protection assays to analyze human colon tumors for the level of nm23-H1 (43 samples) and nm23-H2 (41 samples) transcript (mRNA) expression and the presence of mutations that could inactivate potential suppressor function. RESULTS: We detected only wild-type nm23-H1 and nm23-H2 mRNA. Expression of nm23-H1 mRNA increased in 33 of 41 colon tumors, and expression of nm23-H2 mRNA was elevated in 28 of 41 colon tumors relative to that in matched normal mucosa. Increases in these mRNA levels were similar in tumors of both low and high metastatic potential. CONCLUSIONS: These results suggest that, despite correlation of nm23-H1 allelic deletions with colon cancers associated with poor prognosis, nm23-H1 and nm23-H2 alleles do not directly mediate metastasis suppression in colon carcinoma. Our results leave unexplained the observation that nm23-H1 allelic deletion correlates with metastatic potential of colon carcinomas. IMPLICATIONS: These findings also contrast with the demonstration of nm23 metastasis suppressor activity in murine melanoma and with the correlation of loss of nm23 expression in breast cancer with poor prognosis. It may be that metastasis suppression by the nm23 gene is a tissue-specific phenomenon.

Alleles↗

Induction of nm23 gene expression in human colonic neoplasms and equal expression in colon tumors of high and low metastatic potential.

Levels of expression of the murine nm23 gene inversely correlate with metastatic potential in several rodent tumor model systems. Expression of the human nm23 homologue also is lower in human breast cancers of high metastatic potential than in breast cancers of low metastatic potential. In the present study, we examined changes in nm23 expression during colon carcinogenesis as found in 18 matched pairs of normal and neoplastic human colon tissues. We found that a 0.8-kilo-base nm23 transcript was expressed in all samples of morphologically normal colon mucosa. In 16 of 18 colon neoplasms, nm23 expression was further increased in the neoplastic, compared with the morphologically normal, colon mucosa from the same individual. Expression of nm23 was elevated over normal mucosa in 3 of 3 polyps, in 2 of 3 nonmetastatic cancers, and in 11 of the 12 cancers that were metastatic at the initial presentation. The levels of nm23 expressed were similar in the 12 metastatic colon neoplasms and in the 6 colon neoplasms of lower clinical stage. In addition, nm23 expression was maintained in culture in each of 12 cell lines initiated from human colon neoplasms and did not differ between lines established from neoplasms of high or low metastatic capability. We concluded that nm23 was expressed in normal colon mucosa. Expression of nm23 increased during early stages of colon carcinogenesis and remained increased in metastatic colon cancer. Therefore, in the colon, tissue-specific events dissociate nm23 expression from loss of tumor metastatic competence.

Adenocarcinoma↗

Growth stimulation by coexpression of transforming growth factor-alpha and epidermal growth factor-receptor in normal and adenomatous human colon epithelium.

Autocrine stimulation of the epidermal growth factor receptor (EGF-R), by coexpression of transforming growth factor-alpha (TGF-alpha), causes malignant transformation of some fibroblast cell lines. TGF-alpha and EGF-R are both known to be expressed in colon carcinoma tissue and have been shown coexpressed in colon carcinoma cell lines. TGF-alpha autocrine activation of EGF-R has been suggested as a potential mechanism contributing to abnormal growth control in colon cancer. We now report coexpression of TGF-alpha and EGF-R transcripts in morphologically normal colonic epithelium from five individuals, in colonic adenomas from three individuals, and in a nontumorigenic colon adenoma cell line, VACO-330. Functional studies demonstrate VACO-330 growth is stimulated by exogenous TGF-alpha and is completely abolished by a blocking anti-EGF-R antibody. Autocrine stimulation of EGF-R by TGF-alpha is therefore required for growth of the adenoma cell line. Autocrine stimulation of EGF-R by TGF-alpha does not cause malignant transformation of the colonic epithelial cell. In normal and adenomatous human colon TGF-alpha, via either an autocrine or paracrine mechanism, is likely an important physiologic stimulant of epithelial proliferation.

Adenoma↗

Loss of myeloid differentiation antigens precedes blastic transformation in chronic myelogenous leukemia.

In order to determine whether antigenic patterns alter with disease progression and are thereby suggestive of impending blast crisis in chronic myelogenous leukemia, 50 bone marrow biopsy specimens from 32 patients were examined retrospectively using indirect immunoperoxidase labeling with three monoclonal antibodies that detect myeloid antigens. Monoclonal antibodies PMN13F6, PMN7C3, and PMN8C7 detect human neutrophil antigens that first appear at the myeloblast, promyelocyte, and metamyelocyte stages of differentiation, respectively, and persist throughout later differentiation. Percentages of antigen-positive bone marrow cells during the chronic phase were compared with percentages of antigen-positive cells at blast transformation, and time from bone marrow biopsy until blast crisis was correlated with the percentage of bone marrow cells expressing these antigens. Bone marrow biopsy samples from patients in the chronic phase who continue to remain clinically stable 4 to 106 months after biopsy expressed PMN13F6 antigen on 82% +/- 9% (mean +/- SD) of cells, PMN7C3 antigen on 62% +/- 14% of cells, and PMN8C7 on 68% +/- 14% of cells. Bone marrow biopsy specimens obtained from patients 1 or more years prior to blast transformation expressed PMN13F6 antigen on 81% +/- 12%, PMN7C3 antigen on 71% +/- 16%, and PMN8C7 on 64% +/- 16% of cells. Bone marrow biopsy samples obtained between 2 months and 1 year prior to blast crisis expressed PMN13F6 antigen on 68% +/- 15%, PMN7C3 on 51% +/- 17%, and PMN8C7 antigen on 46% +/- 18% of cells. Bone marrow biopsy specimens taken at the time of blast transformation expressed PMN13F6 antigen on 20% +/- 25%, PMN7C3 antigen on 19% +/- 25%, and PMN8C7 antigen on 13% +/- 25% of cells. The difference between the mean of antigen-positive cells from bone marrow biopsy samples obtained at the time of blast crisis was significant compared with the mean of positive cells from biopsy specimens obtained at all other phases of the disease (P less than .001 for all three antibodies). There was a positive correlation between loss of myeloid antigens and disease progression as determined by simple regression of log time and correlation analysis (PMN13F6, r = .6533, P less than .005; PMN7C8, r = .6304, P less than .005; PMN8C7, r = .5215, P less than .05). There was a negative correlation between percentage of immature cells and time to blastic crisis (r = -.6206, P less than .005).(ABSTRACT TRUNCATED AT 250 WORDS)

Antibodies, Monoclonal↗