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Biomedical subjects

M Oshimura

Publications and source records attributed to M Oshimura.

At least 91 records · Page 5Linked to original sources

[Telomerase and cancer].

Telomeres progressively shorten with age in somatic cells in culture and in vivo because DNA replication results the loss of sequence at the 5' ends of double-stranded DNA. Whereas normal somatic cells do not express the enzyme, telomerase, which adds repeated telomere sequences to chromosome ends, telomerase activity is detected in immortalized and tumor cells in vitro and in tumor tissues. This represents an important difference between normal cells and cancer cells, indicating that the telomerase activity and/or expression profiles of telomerase components are useful markers for cancer biology and detection.

Humans↗

[Telomerase activity and genomic instability in colorectal cancers].

In this study, we investigated the correlation between the telomerase activity and the microsatellite instability in colorectal cancers and adenomas. Telomerase activity was detected in 75% of cancers and in 33% of adenomas. Microsatellite instability was detected in 24% of sporadic cancers, in 54% of multiple cancers, and in 22% of adenomas. Telomerase activity and microsatellite instability were independent events in colorectal carcinogenesis. The patients with telomerase activity and microsatellite instability showed poor prognosis. These results indicate that colorectal cancers with both telomerase activity and microsatellite instability may have more malignant potential, and adenomas with both them may be more intensive precursor of colorectal cancers.

Aged↗

[Clinical significance of telomerase activity in precancerous lesion of the liver (adenomatous hyperplasia)].

To understand the role of telomere dynamics in hepatocellular carcinogenesis, we examined the lengths of terminal restriction fragments (TRFs) in hepatocellular carcinoma (HCC) and surrounding tissues with chronic active hepatitis (CAH), liver cirrhosis (LC) and atypical adenomatous hyperplasia (AAH). The peak TRFs in all HCCs were significantly shorter than those of the surrounding tissues (CAH, LC). TRF in AAH was shortened and similar to that of HCC. Telomerase was examined in CAH, LC, AH, and HCC, and detected in high levels almost exclusively in HCCs. Interestingly, the intensity of telomerase activity in the AH was similar to that of HCC. Thus, the progressive shortening of telomere and the activation of telomerase may be a useful marker for the early detection of malignant progression in liver disease.

Adenoma↗

[Significant correlation of telomerase activity in lung adenocarcinomas with cell differentiation and chromosome aberration].

Of a total of 21 surgically resected lung adenocarcinomas (15 men and 6 women with an average age of 59.6 yr) well, moderately and poorly differentiated types were 6, 7 and 8 cases, respectively. Telomerase activity determined by the TRAP assay was classified into four types as follows; negative = Score 0, weakly positive = 1, moderately positive = 2, strongly positive = 3. Chromosome aberrations were also classified into four groups: Score 0, 1, 2, 3 according to the number of marker chromosomes, 0, 1-5 6-15 and over 16 respectively. CT-Indices (chromosome aberration x telomerase activity) of well, moderately, and poorly differentiated types were 1, 4.3, 5.1 respectively. Thus, CT-Indices were correlated with cell differentiation in the lung adenocarcinomas (p < 0.01).

Adenocarcinoma↗

Human chromosome 7 carries a putative tumor suppressor gene(s) involved in choriocarcinoma.

Choriocarcinoma developed from a complete hydatidiform mole has an unique genetic feature that involves monoallelic contribution from the paternal genome. To determine the chromosome carrying putative tumor suppressor gene(s), microcell-hybrids were isolated following fusion of choriocarcinoma cells with microcells from mouse A9 cells containing a single human chromosome (1, 2, 6, 7, 9 or 11). Microcell-hybrids with the introduction of chromosome 7 were suppressed or modulated for tumorigenicity and exhibited altered in vitro growth properties. Introduction of chromosomes 1, 2, 6, 9 or 11 had no effect. Tumorigenic revertants isolated from microcell-hybrids with the introduced chromosome 7 contains reduced numbers of chromosome 7. These findings suggest that chromosome 7 contains a putative tumor suppressor gene(s) for choriocarcinoma. Alterations in tumorigenic phenotypes seen in microcell-hybrids were not associated with the presence of either ERV3 or H-plk locus located on the introduced chromosome 7, indicating the putative tumor suppressor gene(s) is outside of ERV3 and H-plk gene loci. Furthermore, we obtained evidence to define a critical region on chromosome 7 (7p12-7q11.23) that was frequently lost in surgically removed choriocarcinoma tissues and cell lines. Using a panel of microsatellite markers, biallelic deletions were observed, which strongly suggests the presence of a tumor suppressor gene(s) within this critical region.

Animals↗

Distribution of human endogenous retroviral RTVL-H2 LTR sequences among human chromosomes.

The human genome carries multiple copies of sequences related to endogenous retroviral DNA. We report here the distribution of a new multicopy long terminal repeat (LTR) sequence that has been a part of an endogenous retrovirus-like sequence RTVL-H2. Twenty-four human chromosomes were either separated by flow sorting or by using rodent cells carrying a single human chromosome, and the DNA was subjected to Southern analyses using the RTVL-H2 DNA as a probe. The RTVL-H2 LTRs were distributed among all the human chromosomes, but the density and the profile differed from chromosome to chromosome. The same chromosome obtained from different individuals showed essentially the same chromosome-specific patterns. The distribution of the RTVL-H2 LTRs among different chromosomes did not correlate with the distribution of LTRs from another endogenous retroviral DNA, HERV-A, strongly suggesting that there is no preferred chromosome or a region thereof, for the integration. The possibility of rearrangement or amplification after integration is discussed.

Blotting, Southern↗

Gene expressions of transferred human chromosome 8 in mouse cell lines.

Gene expressions were studied for the human chromosome 8 which were introduced by microcell fusion to three mouse tumor cell lines: A9, mouse melanoma B16F10 and SCVA2 derived from SV40-transformed scid fibroblasts. Nineteen genes in the human chromosome 8 were chosen, and the presence of their transcripts in these cells was examined by RT-PCR. The data showed that most of the human genes were expressed, with a few exceptions: the indoleamine 2, 3-dioxygenase gene was expressed in none of these cell lines, while two other genes, calbindin and neuronal nicotinic acetylcholine receptor subunit (Ach Rbeta3) genes, were not expressed in the A9 and SCVA2 cell lines, respectively, suggesting some cell- or species-specific transcriptional regulations exist. These results show that the mouse cell lines carrying a human chromosome are powerful tools for chromosome-specific cDNA cloning.

Animals↗

Telomerase activity in esophageal carcinoma.

BACKGROUND AND OBJECTIVES: Telomerase is a ribonucleoprotein that synthesizes telomeric DNA. Immortalized and carcinoma cells show no loss of telomere length during cell division. Telomerase activity has been demonstrated in carcinomas of various organs, but not in nonneoplastic tissues. In patients with esophageal carcinoma, no data have been reported concerning the relationship between telomerase activity and clinicopathological findings. MATERIALS AND METHODS: Esophageal carcinomas from 31 patients and normal esophageal mucosae from 92 patients were examined. Telomeric Repeat Amplification Protocol assay to detect telomerase activity and Southern blot analysis to examine telomere length were performed. RESULTS: Of the 31 carcinomas, 27 (87%) had detectable telomerase activity. Twenty-one (23%) of the 92 normal esophageal mucosae from autopsied patients also had detectable telomerase activity. There was no difference between stage and outcome and absence or presence of telomerase activity. No difference in terminal restriction fragment (TRF) length was observed between carcinomas with and without telomerase activity. CONCLUSION: Telomerase activity was demonstrated in a considerable number of normal esophageal mucosae. This suggests the possibility of a high frequency of false positivity if the presence of telomerase activity alone is used as a tumor-specific marker.

Adenocarcinoma↗

Progressive telomere shortening and telomerase reactivation during hepatocellular carcinogenesis.

Telomeres shorten progressively with age in normal somatic cells in culture and in vivo. The maintenance of telomere length is assumed to be an obligatory step in the progression and immortalization of most human tumor cells. To understand the role of telomere dynamics in the development of hepatocellular carcinoma (HCC), we examined the length of terminal restriction fragment (TRF), as an indicator for telomere length, in HCC and surrounding tissues with chronic active hepatitis (CAH) or liver cirrhosis (LC). The study was performed in 12 hepatitis C virus (HCV) antibody-positive, 12 hepatitis B virus (HBV) antigen-positive tissues, and 4 tissue samples from virus-negative patients with HCC. The peak TRFs in all 3 types of HCC were significantly shorter than those of the surrounding tissues (i.e., LC or CAH). TRFs examined in one patient with atypical adenomatous hyperplasia (AAH) also was shortened. Thus, progressive TRF shortening occurs from normal to CAH to LC to HCC(AAH). Telomerase, an enzyme that adds repeated telomere sequences onto the chromosome ends and stabilizes telomere length in immortal cells, also was examined in tissues and detected in high levels almost exclusively in HCCs. Interestingly, the intensity of telomerase activity in the AAH case was similar to that of HCC. In addition, the telomerase activity of biopsy samples with a fine 21-gauge needle also was examined in 10 HCCs, 2 adenomatous hyperplasias (AHs), 2 LCs, and 2 CAHs. We found strong telomerase activity in all the HCCs and surprisingly in the 2 cases that were pathologically diagnosed as AH. Thus, the findings strongly suggest that persistent cell proliferation or rapid cell turnover through damage of hepatic cells result in a process of multistep hepatocellular carcinogenesis. Thus, progressive shortening of telomeres and the activation of telomerase may be a useful marker for the early detection of malignant progression in liver disease.

Adolescent↗

Reversal of methylation tolerance by transfer of human chromosome 2.

Human cell lines resistant to N-methyl-N-nitrosourea (MNU) were previously assigned to two complementation groups. Members of group I are defective in mismatch correction [S. Ceccotti, G Aquilina, P. Macpherson, M. Yamada, P. Karran, M. Bignami, Processing of O6-methylguanine by mismatch correction in human cell extracts. Current Biol. 6 (1996) 1528-1531]. To identify the mechanism responsible for the less pronounced phenotype of the second complementation group, we characterized the persistence of MNU-induced O6-methylguanine (O6-meGua) and mutation induction at the hypoxanthine guanine phosphoribosyl-transferase (HPRT) locus. Group II clones are unable to repair the premutagenic base O6-meGua and are as mutable by MNU as group I clones and the parental HeLaMR cells. MNU-induced SCE were undetectable in group I clones and drastically reduced in group II in comparison with the parental cells. These observations are consistent with a defective processing of DNA methylation damage by members of both groups. Group II clones exhibit a moderate spontaneous mutator phenotype at the HPRT gene but significant instability at mononucleotide repeat microsatellites. Introduction of a single human chromosome 2 (but not of chromosome 3 or 7) into group II cells partially reverts both MNU resistance and the increased spontaneous mutation rate. The properties of group II variants are consistent with methylation tolerance and a partially defective mismatch repair. We propose that members of group II are defective in the chromosome 2-based mismatch correction gene GTBP/hMSH6.

Centromere↗

Multiple pathways to cellular senescence: role of telomerase repressors.

Telomeres progressively shorten with age in somatic cells in culture and in vivo because DNA replication results in the loss of sequences at the 5' ends of double-stranded DNA. Whereas somatic cells do not express the enzyme, telomerase, which adds repeated telomere sequences to chromosome ends, telomerase activity is detected in immortalised and tumour cells in vitro and in primary tumour tissues. This represents an important difference between normal cells and cancer cells, suggesting that telomere shortening causes cellular senescence. Hybrids between immortal cells and normal cells senesce, indicating that immortal cells have lost, mutated or inactivated genes that are required for the programme of senescence in normal cells. Genes involved in the senescence programme have been mapped to over ten different genetic loci using microcell fusion to introduce human chromosomes and restore the senescence programme. Multiple pathways of cellular senescence have also been demonstrated by chromosome transfer, indicating that the functions of the mapped senescence genes are probably different. One possibility is that one or more of these senescence genes may suppress telomerase activity in immortal cells, resulting in telomere shortening and cellular senescence. To test this hypothesis, telomerase activity and the length of terminal restriction fragments (TRFs) have been examined in microcell hybrids. Re-introduction of a normal chromosome 3 into the renal cell carcinoma cell line RCC23, which has the short arm of chromosome 3, restored cellular senescence. The loss of indefinite growth potential was associated with the loss of telomerase activity and shortening of telomeres in the RCC cells containing the introduced chromosome 3. However, microcell hybrids that escaped from senescence and microcell hybrids with an introduced chromosome 7 or 11 maintained telomere lengths and telomerase activity similar to the parental RCC23. Thus, restoration of cellular senescence by chromosome 3 is associated with repression of telomerase function in RCC cells. This evidence suggests that telomerase suppression is one of several pathways involved in immortalisation.

Animals↗

5-Fluorouracil (5-FU) induced apoptosis in gastric cancer cell lines: role of the p53 gene.

We examined chemosensitivity to 5-fluorouracil (5-FU) in four human gastric cancer cell lines, by analyzing the expression of p53 and its related genes. Treatment with 1mM 5-FU induced variable degrees of apoptosis in the cultured cells. The apoptotic indices 72 h after treatment were approximately 14% in MKN-74 (wild-type p53 gene), 12% in MKN-45 (wild-type), 3% in MKN-28 (mutated) and 0.5% in KATO-III cells (deleted), respectively. On the other hand, 50 microM 5-FU had little effect on the induction of apoptosis in MKN-74 cells, the value being approximately 2% after 72 h. Induction of P53 expression was noted 3 h after initiating the treatment, followed by the induction of P21/Waf1 after 6 h in both MKN-74 and MKN-45 cells. The same expression mode was noted in MKN-74 treated with 50 microM 5-FU. Conversely, the level of P53 expression was constant in MKN-28 cells and absent in KATO-III cells, in which P21/Waf1 had never been induced. The Bax/Bcl-2 expression ratio was gradually elevated for up to 72 h in MKN-74 and MKN-45 cells treated with 1mM 5-FU; in contrast, it was unchanged in MKN-28 and KATO-III cells, and MKN-74 treated with 50 microM 5-FU. These results might indicate that (1) 1mM 5-FU induces apoptosis in cultured gastric cancer cells carrying the wild-type p53 gene, but not those carrying the mutated type or a gene deletion, and (2) the elevated Bax/Bcl-2 expression ratio plays a more crucial role than the higher expression of P21/Waf1 in the induction of p53- gene dependent apoptosis.

Journal Article↗

Functional expression and germline transmission of a human chromosome fragment in chimaeric mice.

Human chromosomes or chromosome fragments derived from normal fibroblasts were introduced into mouse embryonic stem (ES) cells via microcell-mediated chromosome transfer (MMCT) and viable chimaeric mice were produced from them. Transferred chromosomes were stably retained, and human genes, including immunoglobulin (Ig) kappa, heavy, lambda genes, were expressed in proper tissue-specific manner in adult chimaeric tissues. In the case of a human chromosome (hChr.) 2-derived fragment, it was found to be transmitted to the offspring through the germline. Our study demonstrates that MMCT allows for introduction of very large amounts of foreign genetic material into mice. This novel procedure will facilitate the functional analyses of human genomes in vivo.

Animals↗

Genetic mapping using microcell-mediated chromosome transfer suggests a locus for Nijmegen breakage syndrome at chromosome 8q21-24.

Nijmegen breakage syndrome (NBS) is an autosomal recessive disorder characterized by microcephaly, short stature, immunodeficiency, and a high incidence of cancer. Cultured cells from NBS show chromosome instability, an increased sensitivity to radiation-induced cell killing, and an abnormal cell-cycle regulation after irradiation. Hitherto, patients with NBS have been divided into the two complementation groups V1 and V2, on the basis of restoration of radioresistant DNA synthesis, suggesting that each group arises from a different gene. However, the presence of genetic heterogeneity in NBS has been considered to be controversial. To localize the NBS gene, we have performed functional complementation assays using somatic cell fusion between NBS-V1 and NBS-V2 cells, on the basis of hyper-radiosensitivity, and then have performed a genomewide search for the NBS locus, using microcell-mediated chromosome transfer followed by complementation assays based on radiosensitivity. We found that radiation resistance was not restored in the fused NBS-V1 and NBS-V2 cells and that only human chromosome 8 complements the sensitivity to ionizing radiation, in NBS cell lines. In complementation assays performed after the transfer of a reduced chromosome, merely the long arm of chromosome 8 was sufficient for restoring the defect. Our results strongly suggest that NBS is a homogeneous disorder and that the gene for NBS is located at 8q21-24.

Abnormalities, Multiple↗

Evidence for uniparental, paternal expression of the human GABAA receptor subunit genes, using microcell-mediated chromosome transfer.

We have constructed mouse A9 hybrids containing a single normal human chromosome 15, via microcell-mediated chromosome transfer. Cytogenetic and DNA-polymorphic analyses identified mouse A9 hybrids that contained either a paternal or maternal human chromosome 15. Paternal specific expression of the known imprinted genes SNRPN (small nuclear ribonucleoprotein-associated polypeptide N gene) and IPW (imprinted gene in the Prader-Willi syndrome region) was maintained in the A9 hybrids. Using this system, we first demonstrated that human GABAAreceptor subunit genes, GABRB3 , GABRA5 and GABRG3 , were expressed exclusively from the paternal allele and that E6-AP (E6-associated protein or UBE3A ) was biallelically expressed. Moreover, the 5' portion of the GABRB3 gene was found to be hypermethylated on the paternal allele. Our data imply that GABAAreceptor subunit genes are imprinted and are possible candidates for Prader-Willi syndrome, and that this human monochromosomal hybrid system enables the efficient analysis of imprinted loci.

Adult↗

Paternal expression of WT1 in human fibroblasts and lymphocytes.

The Wilms' tumor suppressor gene ( WT1 ) was previously identified as being imprinted, with frequent maternal expression in human placentae and fetal brains. We examined the allele-specific expression of WT1 in cultured human fibroblasts from 15 individuals. Seven of 15 fibroblast lines were heterozygous for polymorphic alleles, and the expression patterns were variable, i.e., equal, unequal or monoallelic paternal expression in three, two and two cases, respectively. Exclusive paternal expression of WT1 was also shown in non-cultured peripheral lymphocytes from the latter two individuals. The allele-specific expression profiles of other imprinted genes, IGF2 and H19, on human chromosome 11 were constant and consistent with those in other tissues. Our unexpected observations of paternal or biallelic expression of WT1 in fibroblasts and lymphocytes, together with the previous findings of maternal or biallelic expression in placentae and brains, suggest that the allele-specific regulatory system of WT1 is unique and may be controlled by a putative tissue- and individual-specific modifier.

Adult↗

Significant correlation of telomerase activity in thyroid papillary carcinomas with cell differentiation, proliferation and extrathyroidal extension.

Telomerase activity was examined by telomeric repeat amplification protocol assay in thyroid disease states, including adenomas and carcinomas, and correlated with clinicopathological features. Of a total of 26 papillary carcinomas, 16 cases (61.5%) were positive, with the poorly differentiated subtype being predominant (P < 0.05). A significantly more shortened terminal restriction fragment length (P < 0.05), higher incidence of extrathyroidal extension (P < 0.001), and more elevated Ki-67 labeling indices (P < 0.002) were also found in telomerase-positive than in telomerase-negative papillary carcinomas. Of four follicular carcinomas, 3 cases (75.0%) were positive. Positive telomerase activity in follicular adenomas (9/23 cases, 39.1%) and lymphocytic thyroiditis (12/22 cases, 54.5%) appeared to be mainly caused by infiltrating lymphocytes. However, three cases of atypical adenoma with relatively increased Ki-67 labeling indices were positive, suggesting a possibility of malignant potential. The good correlations with extrathyroidal invasiveness, Ki-67 labeling indices and poor differentiation of papillary carcinomas, established by multivariate analysis, suggest that this parameter might have potential application in the estimation of tumor progression and prognosis, and in clinical management.

Adenoma↗

Mouse U2af1-rs1 is a neomorphic imprinted gene.

The mouse U2af1-rs1 gene is an endogenous imprinted gene on the proximal region of chromosome 11. This gene is transcribed exclusively from the unmethylated paternal allele, while the methylated maternal allele is silent. An analysis of genome structure of this gene revealed that the whole gene is located in an intron of the Murr1 gene. Although none of the three human U2af1-related genes have been mapped to chromosome 2, the human homolog of Murr1 is assigned to chromosome 2. The mouse Murr1 gene is transcribed biallelically, and therefore it is not imprinted in neonatal mice. Allele-specific methylation is limited to a region around U2af1-rs1 in an intron of Murr1. These results suggest that in chromosomal homology and genomic imprinting, the U2af1-rs1 gene is distinct from the genome region surrounding it. We have proposed the neomorphic origin of the U2af1-rs1 gene by retrotransposition and the particular mechanism of genomic imprinting of ectopic genes.

Adaptor Proteins, Signal Transducing↗