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Biomedical subjects

T Sugimura

Publications and source records attributed to T Sugimura.

At least 271 records · Page 15Linked to original sources

Markedly increased amounts of messenger RNAs for vascular endothelial growth factor and placenta growth factor in renal cell carcinoma associated with angiogenesis.

The presence of mRNAs for vascular endothelial growth factor (VEGF) and a VEGF-related protein, placenta growth factor (PIGF) was examined in 29 cases of renal cell carcinoma tissues and adjacent normal kidney tissues and in 4 human renal cell carcinoma cell lines. Northern blot analysis showed that 26 of 27 hypervascular renal cell carcinoma tissues (96%) exhibited a markedly elevated level (3-13 fold) of VEGF mRNA compared to the adjacent normal kidney tissues. Even tumors of small size, whenever they were hypervascular, overexpressed VEGF mRNA. We also demonstrated that mRNA for PIGF was expressed in 21 of 23 hypervascular renal cell carcinoma tissues (91%) but was not detected in the adjacent normal kidney tissues. Two hypovascular carcinoma tissues neither overexpressed VEGF mRNA nor had PIGF mRNA. VEGF mRNA was detected in four human renal cell carcinoma cell lines, while PIGF mRNA was not. There was no difference in the level of basic fibroblast growth factor mRNA between tumor tissues and normal kidney tissue, although our previous study demonstrated elevated basic fibroblast growth factor protein in the serum of renal cell carcinoma patients (K. Fujimoto et al., Biochem. Biophys. Res. Commun., 180: 386-392, 1991). Taken together, these results suggest that VEGF, PIGF, and basic fibroblast growth factor are cooperatively working to increase the angiogenesis in renal cell carcinoma in vivo.

Angiogenesis Inducing Agents↗

Preferential alternative splicing in cancer generates a K-sam messenger RNA with higher transforming activity.

K-sam, also designated fibroblast growth factor receptor 2/BEK, was originally cloned from a stomach cancer cell line KATO-III. The gene is amplified and overexpressed preferentially in poorly differentiated types of stomach cancers. The major K-sam transcript in KATO-III cells encodes a receptor protein with a truncated carboxyl terminus and with a high-affinity binding site for keratinocyte growth factor. This truncated type is produced by an alternative splicing mechanism, and in normal tissues, the truncated type is far less prevalent than the untruncated form. The variant K-sam complementary DNA lacks tyrosine 769, which is a putative phospholipase C gamma 1 association site, and showed a higher transforming activity to NIH3T3 cells than the untruncated form, which is identical with the keratinocyte growth factor receptor.

3T3 Cells↗

Infrequent K-ras activation in superficial-type (flat) colorectal adenomas and adenocarcinomas.

Clinicopathological evidence is accumulating that a superficial-type (flat) colorectal tumor is a distinct neoplastic entity. To clarify the genetic characteristics of this tumor, we investigated the K-ras gene mutations and morphological features of 43 tumors of this type. A mutation of the K-ras codon 12 was detected in only 5 (16%) of 31 adenomas and 2 (17%) of 12 adenocarcinomas. The presence or absence of this mutation was not correlated with the tumor size or stage or with histopathological findings. None of these tumors had a mutation in codon 13 or exon 2, including codon 61. This low incidence of K-ras mutations (16%) suggests that superficial-type colorectal tumors are etiologically distinct from ordinary colorectal polypoid tumors and that there may be an alternative pathway of colorectal tumorigenesis.

Adenocarcinoma↗

PP1 gamma 2, a testis-specific protein-serine/threonine-phosphatase type 1 catalytic subunit, is associated with a protein having high sequence homology with the 78-kDa glucose-regulated protein, a member of the 70-kDa heat shock protein family.

Protein phosphatase 1 gamma 2 (PP1 gamma 2) is a testis-specific isotype of the protein-serine/threonine-phosphatase type 1 catalytic subunit. Three native forms of PP1 gamma 2 were detected in a crude fraction of rat testis by electrophoresis in a nondenaturing polyacrylamide gel. We purified a major native form of PP1 gamma 2 to homogeneity by successive column chromatography on Mono Q-Sepharose, EAH-agarose, protamine-agarose, and G3000SW and by electrophoresis in a nondenaturing polyacrylamide gel. The G3000SW-purified PP1 gamma 2 native form had an apparent molecular mass of 170 kDa. The purified holoenzyme from nondenaturing polyacrylamide gel was composed of the catalytic subunit and two noncatalytic subunits, of 78 kDa and 55 kDa. Partial amino acid sequence analysis of the 78-kDa protein suggested that it is the 78-kDa glucose-regulated protein, a member of the 70-kDa heat shock protein family. The 78-kDa protein may possibly function as a chaperone or by confining substrate specificity of PP1 gamma 2.

Amino Acid Sequence↗

E-cadherin gene mutations in human gastric carcinoma cell lines.

Reduced expression of E-cadherin has been regarded as one of the main molecular events involved in dysfunction of the cell-cell adhesion system, triggering cancer invasion and metastasis. However, even with a sufficient amount of E-cadherin, cell-cell adhesion is sometimes lost in "diffusely invasive" human carcinomas. Ten human cancer cell lines, showing growth characterized morphologically by loose cell-cell adhesion, were analyzed for possible structural abnormalities of their expressed E-cadherin. Four of the cell lines showed strong mRNA and protein expression with no nucleotide sequence abnormalities, and mRNA was absent in four other cell lines. mRNA sequence was abnormal in the remaining two gastric carcinoma cell lines. In MKN45 (poorly differentiated adenocarcinoma), this involved a 12-bp in-frame deletion with strong expression of mRNA and protein. In KATO-III (signet ring cell carcinoma), there were four mRNA species with insertions of different sizes, among which the major transcripts (with a 7-bp insertion) caused a frameshift, and expression of both mRNA and protein was markedly reduced. In these two cell lines, DNA mutations were detected around exon-intron junctions, revealing that aberrant RNA splicing was the cause of the mRNA abnormalities. In addition, the wild-type allele of the E-cadherin locus was lost, suggesting that the E-cadherin gene had been inactivated by two hits (mutation and allele loss), similar to the mechanism for inactivation of tumor suppressor genes.

Amino Acid Sequence↗

Cloning and functional expression of poly(ADP-ribose) polymerase cDNA from Sarcophaga peregrina.

A cDNA spanning the entire coding region for poly(ADP-ribose) polymerase (PARP) of Sarcophaga peregrina was isolated and the nucleotide sequence was determined. The longest open reading frame encodes a polypeptide of 996 amino acid residues with a molecular mass of 113,033 Da. The similarities to the human PARP in amino acid sequence were relatively low in the DNA-binding and auto-modification domains, but very high in the C-terminal catalytic domain: identity of amino acids is 34% in the N-terminal DNA-binding domain (residues 1-369), 27% in the auto-modification domain (residues 370-507), and 56% in the C-terminal NAD-binding domain (residues 508-996). Two zinc-fingers (C-X2-C-X28-H-X2-C and C-X2-C-X31-H-X2-C)2 and a basic region in the N-terminal DNA-binding domain recognized in other PARP are conserved. Downstream of the basic region, another cysteine-rich motif (C-X2-C-X13-C-X9-C), a putative zinc-finger, was found to be well conserved in the PARP of Sarcophaga, Drosophila and human. A leucine-zipper motif (L-X6-L-X6-L-X6-L) which was found in the auto-modification domain of Drosophila PARP, is disrupted in the Sarcophaga enzyme: the second leucine is replaced by proline, and the third leucine by valine. Full-length cDNA for Sarcophaga PARP was cloned into an expression plasmid and expressed in Escherichia coli. A lysate of E. coli cells containing expressed protein reacted with antibody against Sarcophaga PARP, and PARP activity was detected. Thus, we conclude that isolated cDNA encodes a functional Sarcophaga PARP cDNA.

Amino Acid Sequence↗

Preferential expression of the third immunoglobulin-like domain of K-sam product provides keratinocyte growth factor-dependent growth in carcinoma cell lines.

Previously, we identified an amplified gene in a stomach cancer cell line, KATO-III, and designated it K-sam. This gene was later found to be identical with a gene for a receptor tyrosine kinase, bek/FGFR2. One of the characteristics of the K-sam gene is structural diversity of its transcripts; K-sam complementary DNA (cDNA) cloned from human brain (K-sam-I) has a completely different sequence at the third extracellular immunoglobulin-like domain as compared to that of the K-sam cDNA derived from KATO-III cells (K-sam-II). Recent study has revealed that this difference signifies a differential ligand affinity; the receptor encoded by the K-sam-I cDNA has a high affinity for basic fibroblast growth factor (bFGF), while the K-sam-II cDNA corresponds to a receptor with the high affinity for keratinocyte growth factor (KGF). Reverse transcription-polymerase chain reaction and RNA blot analysis showed that the K-sam-II-type transcript was present in carcinoma cell lines but not in any of the sarcoma cell lines examined. The K-sam-I-type transcript was expressed in both carcinoma and sarcoma cell lines. Furthermore, KGF enhanced the DNA synthesis of the esophageal cancer cells, TE-1, in a dose-dependent manner, while the effect of bFGF was not substantial. In contrast, the glioblastoma cell line, A-172, that expressed the bFGF receptor showed a mitogenic response to bFGF but not to KGF. These data suggest that KGF is a growth factor used preferentially in cancer cells, and this preference is based on the presence of the K-sam-II-type receptor in carcinoma cells but not in sarcoma cells due to alternative splicing.

Base Sequence↗

Non-covalent interaction between poly(ADP-ribose) and cellular proteins: an application of a poly(ADP-ribose)-western blotting method to detect poly(ADP-ribose) binding on protein-blotted filter.

We describe a sensitive method for the detection of interactions between poly(ADP-ribose) and proteins. Proteins were blotted onto nitrocellulose filters and incubated with 32P-labeled poly(ADP-ribose). Purified core histones and poly(ADP-ribose) polymerase were found to bind poly(ADP-ribose) polymer. Blots of HeLa cell protein extracts revealed a 48 kDa protein and several others of smaller than 35 kDa likewise bound the polymers even at high salt concentrations. Those proteins, along with a 69 kDa protein, also showed resistance to competitor DNA. Polymer binding of aforesaid HeLa extract proteins was restricted to polymers above 20 residues in length. Thus poly(ADP-ribose)-protein affinities were polymer-length dependent.

Base Sequence↗

Infrequent mutation of Ha-ras and p53 in rat mammary carcinomas induced by 2-amino-1-methyl-6-phenylimidazo[4,5-b]pyridine.

2-Amino-1-methyl-6-phenylimidazo[4,5-b]pyridine (PhIP) is the most abundant of the heterocyclic amines, a group of potent carcinogens contained in cooked meat and fish. Female F344 rats fed a diet containing 100 or 400 ppm PhIP developed mammary carcinomas within 104 or 52 wk, respectively, at the rate of 47% for each group; these carcinomas were examined for mutations in three members of the ras gene family and in the p53 gene. Single-strand conformation polymorphism (SSCP) analysis and direct sequencing demonstrated a G-->A transition at the second position of Ha-ras codon 12, with the resultant substitution of glutamic acid for glycine, in two of 10 carcinomas induced by 100 ppm PhIP and in one of seven induced by the 400 ppm dose. No mutations in Ki-ras or N-ras were detected. cDNA polymerase chain reaction-SSCP analysis and direct sequencing demonstrated a G-->T transversion at the third position of p53 codon 130, with the resultant substitution of asparagine for lysine, in one of the 10 carcinomas induced by 100 ppm of PhIP for which freshly frozen samples were available. PhIP-induced rat mammary carcinogenesis can be regarded as a unique system in that rat mammary carcinomas are negative for ras and p53 mutations.

Animals↗

Poly(ADP-ribose): historical perspective.

The early historical background of the discovery of poly(ADP-ribose) and the following development of science on poly(ADP-ribose) are reviewed. Fundamental knowledge on the natures of poly(ADP-ribose), poly(ADP-ribose) polymerase and enzymes degrading poly(ADP-ribose) are summarized with brief description on the methodology for their purification and characterization. Future prospect of research on biological significance of poly(ADP-ribose) has also been discussed briefly.

History, 20th Century↗

Mutagenicities of Bangkok and Tokyo river waters.

Samples of water from the Chao Phraya river and some connected canals in Bangkok, Thailand, and from the Sumida and Ara rivers in Tokyo, Japan, were tested for mutagenicity using blue rayon to adsorb the mutagens. The samples from the Chao Phraya river and connected canals at sites located 50-150 km from the river mouth taken in May 1993 showed a mutagenicity of 87-1213 revertants per 0.05 g blue rayon extract towards S. typhimurium YG1024 in the presence of S9 mix. Samples from most sites taken in December 1993, which follows the rainy season, showed a lower mutagenicity than those taken in May, possibly due to dilution by the larger volume of water in the river and canals in December. Water samples from the Sumida river were collected in July 1993 and February 1994, and those from the Ara river in January 1994. Mutagenicity of samples from all sites of the Sumida and Ara rivers, which were located 2-30 and 2-20 km, respectively, from the river mouth was also clearly detected in the presence of S9 mix and did not differ much, being 155-748 revertants of YG1024 per 0.05 g blue rayon extract. These results demonstrated that the water in all three rivers contained some frameshift mutagens.

Frameshift Mutation↗

The kinetic profiles of enalapril and enalaprilat and their possible developmental changes in pediatric patients with congestive heart failure.

Enalapril and enalaprilat concentrations were measured after enalapril maleate (0.05 to 0.3 mg/kg) was administered orally to 12 pediatric patients (age range, 10 days to 6 1/2 years) with congestive heart failure caused by congenital heart disease and compared with those obtained from seven normal adults (age range, 21 to 39 years). When normalized to the oral 1 mg/m2 dose of enalapril maleate, the mean +/- SD area under the serum concentration-time curve (AUC) of enalaprilat, a pharmacologically active angiotensin-converting enzyme inhibitor, did not differ significantly between the pediatric group aged > 20 days and adult group (83.1 +/- 47.0 versus 64.6 +/- 17.8 ng.hr/ml per 1 mg/m2). When normalized to the oral 0.1 mg/kg dose, the mean AUC was significantly (p < 0.05) smaller in this pediatric group than in the adult group (138.4 +/- 69.2 versus 245.7 +/- 61.8 ng.hr/ml per 0.1 mg/kg). The AUC observed in three younger (age < 20 days) subjects tended to be much greater compared with infants aged > 20 days. The mean AUC ratio of enalaprilat to enalapril was significantly (p < 0.05) lower in the older pediatric subgroup (2.0 +/- 1.0) than in the adult group (3.4 +/- 1.6), whereas the mean ratios were comparable between the two subdivided pediatric groups. The results suggest that the oral enalapril dose would be better determined on a body surface area rather than on a body weight basis in pediatric patients with congestive heart failure aged > 20 days. The oral dosage should be much reduced in infants with congestive heart failure aged < 20 days compared with those aged > 20 days.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

Isolation and identification of a new mutagen, 2-amino-4-hydroxy-methyl-3,8-dimethylimidazo[4,5-f]quinoxaline (4-CH2OH-8-MeIQx), from beef extract.

By monitoring the mutagenicity to a new Salmonella tester strain, YG1024, which has a much higher level of O-acetyltransferase activity than S.typhimurium TA98, we found two new mutagenic compounds in bacteriological-grade beef extract. One of them (compound I), which had a similar UV spectrum to that of 2-amino-3,4,8-trimethylimidazo[4,5-f]quinoxaline (4,8-DiMeIQx), was isolated and shown to account for approximately 2% of the total mutagenicity of the materials adsorbed to blue cotton, and its concentration was estimated to be 6.0 ng/g beef extract. This amount of compound in beef extract was insufficient to allow measurements of various spectra, but its level was increased approximately 9-fold by heating beef extract with creatine and threonine at 200 degrees C for 5 h. From UV and mass spectra of the compound obtained from beef extract heated with creatine plus threonine, it was deduced to be a hydroxymethyl derivative of aminodimethylimidazo-quinoxaline. Compound I was isolated from the urine of rats given 4,8-DiMeIQx and identified as 2-amino-4-hydroxymethyl-3,8-dimethylimidazo[4,5-f]quinoxaline (4-CH2OH-8-MeIQx) by 1H-NMR analysis. 4-CH2OH-8-MeIQx induced 326,000 revertants of YG1024 and 99,000 revertants of TA98 per micrograms in the presence of S9 mix.

Animals↗

Synergistic enhancement of small and large intestinal carcinogenesis by combined treatment of rats with five heterocyclic amines in a medium-term multi-organ bioassay.

The carcinogenic potential of five heterocyclic amines in combination was analyzed using a medium-term multi-organ bioassay. Male F344 rats were initially treated with five known carcinogens (diethylnitrosamine, N-methyl-N-nitrosourea, N-butyl-N-(4-hydroxybutyl)-nitrosamine, 1,2-dimethylhydrazine and 2,2'-dihydroxy-di-n-propylnitrosamine) over a 4 week period to induce preneoplastic changes in a variety of organs (wide spectrum initiation) and then given the five heterocyclic amines, all having the intestines as a target of their carcinogenicity, individually or in combination in the diet for a further 24 weeks. In the small and large intestines, simultaneous administration of five heterocyclic amines at doses 1/5 or 1/25 of those used in reported carcinogenicity studies resulted in higher incidences and multiplicities of adenocarcinomas than expected from the five individual effects, although the differences were not statistically significant. A synergistic effect based on the additive model was most evident (P < 0.141) with multiplicity data for carcinoma in the small intestine at the 1/25 dose. A similar trend was observed for Zymbal gland (P < 0.077), but not other carcinoma induction. Thus the results suggested that synergism depends on the carcinogenic organotropism of individual agents as well as the doses applied in combination.

1,2-Dimethylhydrazine↗

DNA adduct levels of 2-amino-1-methyl-6-phenylimidazo-[4,5-b]pyridine (PhIP) in tissues of cynomolgus monkeys after single or multiple dosing.

DNA adducts of 2-amino-1-methyl-6-phenylimidazo[4,5-b]-pyridine (PhIP), a heterocyclic amine derived from cooked meat, were measured by the 32P-postlabeling method in tissues of cynomolgus monkeys given PhIP. Monkeys received either a single dose of PhIP (20 mg/kg orally) or nine daily doses of PhIP (20 mg/kg orally, days 1-5 and 8-11) and tissue samples were obtained 24 h after the last dose. Over 28 different tissues were examined for PhIP-DNA adducts. Adducts were detected in all tissues examined except the fat and bone marrow. After a single dose, adduct levels (mean value/10(7) nucleotides, n = 2 monkeys) were highest in the liver (2.1), followed by the lung (1.7), gall bladder (1.7) and pancreas (0.9). Low adduct levels were detected in the brain and aorta (0.06 and 0.02 respectively). Following multiple doses of PhIP, adduct levels (mean value/10(7) nucleotides +/- SE, n = 3 monkeys) were highest in the heart (5.7 +/- 2.0) followed by the liver (3.8 +/- 0.8), submandibular gland (2.7 +/- 1.8) and pancreas (2.2 +/- 0.5). Comparison of the adduct levels after a single dose with those found after multiple doses indicates that accumulation of PhIP-DNA adducts occurred in certain tissues. Adduct levels in liver, pancreas, kidney, small intestine and colon increased about 1.5- to 2.4-fold. PhIP-DNA adduct levels in submandibular gland and brain increased 4- to 5-fold. Adduct levels in heart increased 10-fold and levels in the aorta increased 31-fold. Adducts in white blood cell DNA increased with daily dosing for 9 days. No apparent changes in adduct levels were seen in the lung, stomach, bladder, muscle and spleen. The wide distribution of PhIP-DNA adducts and their presence in white blood cells suggests that there is transport of reactive metabolites from the liver to extrahepatic tissues. The relatively high adduct levels in the gall bladder in comparison with the liver suggests biliary excretion and possible reabsorption of reactive metabolites. The presence of DNA adducts in tissues implicates PhIP as a potential carcinogen in non-human primates. The possibility that PhIP-DNA adducts in tissues such as the heart and aorta may have toxicological consequences is discussed.

Administration, Oral↗