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Biomedical subjects

M Iigo

Publications and source records attributed to M Iigo.

At least 109 records · Page 6Linked to original sources

Potentiation of the chemotherapeutic effect of 5-fluorouracil by combination with guanosine 5'-monophosphate.

The chemotherapeutic effect of the 5-fluorouracil (5-FU)-guanosine 5'-monophosphate (GMP) combination in various mouse tumor systems was compared with that of 5-FU monotherapy. Antitumor activity of 5-FU against L-1210 leukemia was potentiated without increasing its toxicity to the host when GMP at 30-100 mg/kg/day was injected simultaneously with 5-FU. Any time interval between the administrations of 5-FU and GMP diminished the increase in survival. Moreover, the combination of 5-FU and GMP at 100 mg/kg/day produced marked antitumor effects in the P-388 leukemia, ascites sarcoma 180, and Ehrlich ascites carcinoma systems. GMP also potentiated the antitumor activity of 5-FU in solid tumor systems (adenocarcinoma 755 and Lewis lung carcinoma) when given by intravenous injection, but not intraperitoneal injection. The therapeutic effect of 5-FU on various murine tumors was markedly potentiated by GMP at 100 mg/kg/day or less without increasing the toxicity to the host.

Adenocarcinoma↗

Relationship between antitumor effect and metabolites of 5-fluorouracil in combination treatment with 5-fluorouracil and guanosine in ascites sarcoma 180 tumor system.

The antitumor activity of 5-fluorouracil (FUra) against ascites Sarcoma 180 was significantly enhanced by coadministration of guanosine, and slightly by adenosine, but not by cytidine or uridine. In advanced ascites Sarcoma 180, guanosine also enhanced the action of FUra, but adenosine, uridine, and cytidine did not. The potentiation of antitumor activity by guanosine was reversed by addition of cytidine. The antitumor activity of FUra was significantly potentiated when guanosine was administered either 0 to 15 min before or 5 min after FUra. Changes in metabolites of FUra after potentiation by guanosine were investigated. Total radioactivity in the plasma was significantly decreased 10 min after the combined administration of [6-14C]FUra (3 mg/kg i.p.) and guanosine (100 mg/kg i.p.) in comparison with that of [6-14C]FUra alone and was slightly decreased by coadministration of [6-14C]FUra and adenosine. Conversely, it was significantly increased by uridine or cytidine. The decrease in total radioactivity in the plasma caused by guanosine was completely reversed by addition of cytidine. FUra, 5-fluorouridine, alpha-fluoro-beta-ureidopropionic acid, and alpha-fluoro-beta-alanine were found in the plasma. Intact FUra accounted for about 55% of the total radioactivity. The proportion of metabolites of [6-14C]FUra was not changed by coadministration of [6-14C]FUra and guanosine, adenosine, or cytidine, but the proportion of FUrd was increased by uridine. In the ascitic fluid, the total radioactivity derived from [6-14C]FUra was decreased by its combined administration with guanosine, and it was reversed by addition of cytidine. This pattern was similar to that in the plasma. The main FUra compound was intact FUra itself (90%), and 5-fluorouridine accounted for 1% of the total radioactivity in the ascitic fluid. On the other hand, total radioactivity of [6-14C]FUra in the tumor cells was significantly and slightly increased by guanosine and adenosine, respectively. Total radioactivity after [6-14C]FUra in combination with uridine or cytidine was less than that after [6-14C]FUra alone. Incorporation of [6-14C]FUra into RNA was increased about 3.7 times by its combination with guanosine in comparison with FUra alone, and it was increased 2.0, 0.6, and 0.7 times by adenosine, uridine, and cytidine, respectively. Moreover, FUra-nucleotides were significantly increased by guanosine. The increased radioactivity in RNA and FUra-nucleotides of tumor cells caused by guanosine was completely reversed by cytidine. These changes in incorporation into tumor cells were comparable to those in antitumor activity against ascites Sarcoma 180. The potentiation of antitumor activity of FUra by guanosine was considered to be due to an increase in incorporation of FUra into FUra-nucleotides and RNA in the tumor cells.

Adenosine↗

Antitumor activity of 1-acyloxymethyl derivatives of 5-fluorouracil against L1210 leukemia.

Antitumor activity of 15 1-acyloxymethyl derivatives of 5-fluorouracil was examined by both intraperitoneal injection and oral administration in L1210 leukemia system. Therapeutic ratio for dodecanoyloxymethyl derivative by intraperitoneal injection was 23 which was greater than that for 5-fluorouracil (11). On the other hand, undecanoyloxymethyl derivative of 5-fluorouracil showed the highest therapeutic ratio (5.8) when administered orally which was greater than that for 5-fluorouracil (1.9) and 1-(2-tetrahydrofuryl)-5-fluorouracil (1.0).

Administration, Oral↗

Effect of pyrimidines, purines and their nucleosides on antitumor activity of 5-fluorouracil against L-1210 leukemia.

The chemotherapeutic action of 5-fluorouracil (5-FU) monotherapy on L-1210 leukemia in mice was compared with combinations of pyrimidines (uracil, uridine, deoxyuridine, cytosine, cytidine, deoxycytidine, thymine and thymidine) or purines (adenine, adenosine, deoxyadenosine, guanine, guanosine, deoxyguanosine and inosine) with 5-FU. The antitumor activity of 5-FU was enhanced by coadministration of uracil, thymine or guanosine, but the toxicity of the first two compounds was also enhanced. Only when 5-FU was administered with guanosine, was not only the antitumor activity but also the therapeutic ratio potentiated without increasing its toxicity. A time interval between the administration of 5-FU and guanosine diminished the survival effect. Therefore, the 5-FU-guanosine combination produced its optimal chemotherapeutic effect by simultaneous injection. The potentiation of antitumor effect of 5-FU by guanosine was prevented completely by cytidine or uridine, and partially by deoxyuridine, adenosine or deoxyadenosine.

Animals↗

Antitumor activity of 1-alkoxycarbonylalkylcarbamoyl-5-fluorouracil derivatives by oral administration.

Antitumor activity of seven 5-fluorouracil derivatives having carbamoyl linkage with amino acid was examined against L-1210 leukemia, adenocarcinoma 755, ascites sarcoma 180, Ehrlich ascites carcinoma and Lewis lung carcinoma by oral administration. These compounds showed more than 30% increase in life-span (ILS) against L-1210 at optimal doses when given by oral administration. Therapeutic ratios (ILSmax/ILS30) of 1-methoxycarbonylmethylcarbamoyl and 1-(1-ethoxycarbonyl-3-methylthiopropylcarbamoyl) derivatives of 5-fluorouracil in L-1210 system were 4.8 and 4.7, respectively. 1-Methoxycarbonylmethylcarbamoyl and 1-(2-ethoxycarbonylethylcarbamoyl) derivatives of 5-fluorouracil inhibited completely the growth of adenocarcinoma 755 when given orally, but only 1-methoxycarbonylmethylcarbamoyl derivative inhibited 99 and 98% of the growth of ascites sarcoma 180 and Ehrlich ascites carcinoma, respectively. The latter compound increased the life-span to 48% at optimal dose in Lewis lung carcinoma system.

Adenocarcinoma↗

Excretion of 1-hexylcarbamoyl-5-fluorouracil in urine of mice.

Excretion and metabolites in urine and feces of mice after oral administration of l-hexylcarbamoyl-5-fluorouracil-6-14C (14C-HCFU) or 5-fluorouracil-6-14C (14C-FU) were examined. After oral administration, about 90% of 14C-HCFU was excreted in urine within 48 h but not in feces. Major radioactive compounds in urine were 1-(3-carboxypropylcarbamoyl)-5-fluorouracil (CPRFU), FU, 5, 6-dihydro-5-fluorouracil (DHFU) and alpha-fluoro-beta-alanine (FBAL). Excretion ratio of these metabolites within 48 h was 13.5, 32.5, 20.2 and 23.9%, respectively, CPRFU and FU were rapidly excreted in urine after 14C-HCFU administration followed by DHFU and FBAL. Excretion of the latter two degradation products of FU was slower. On the other hand, major metabolites in urine after 14C-FU administration were DHFU and FBAL, but intact FU was slightly excreted. Excretion ratio of FU, DHFU and FBAL within 48 h was 4.8, 58.1 and 28.2%, respectively.

Animals↗

Metabolic fate on 1-hexylcarbamoyl-5-fluorouracil and 5-fluorouracil in mice bearing ascites sarcoma 180.

Patterns of metabolism and disposition in plasma of tumor-bearing mice after oral administration of [6(-14)C]1-hexylcarbamoyl-5-fluorouracil ([6(-14)C]HCFU) resembled those in plasma of normal mice, but elimination of [6(-14)C]HCFU and 5-fluorouracil (FUra) was slower in tumor-bearing mice. The level of 1-(5-hydroxyhexylcarbamoyl)-5-fluorouracil (HHCFU) was lower in tumor-bearing mice. Also detected in plasma were [6(-14)C]HCFU, HHCFU, 1-(3-carboxypropylcarbamoyl)-5-fluorouracil, FUra, 5,6-dihydro-5-fluorouracil, and alpha-fluoro-beta-alanine. FUra originating from [6(-14)C]HCFU was retained over 6 hours, whereas intact FUra after [6(-14)C]FUra administration disappeared within 2 hours. The pattern of metabolism in ascitic fluid was similar to that in plasma after [6(-14)C]HCFU and [6(-14)C]FUra administration, but FUra was retained for a longer period in ascitic fluid. In sarcoma 180 cells, the maximum concentration of total radioactivity was observed 1 or 2 hours after [6(-14)C]FUra or [6(-14)C]HCFU administration, respectively, and the level of intact HCFU was very low. The principal metabolites were nucleotides that were maintained for a long period after administration of both compounds. The pattern of other metabolites after [6(-14)C]HCFU administration was also similar to that after [6(-14)C]FUra administration.

Administration, Oral↗

Pharmacokinetics of 1-alkylcarbamoyl-5-fluorouracils in plasma and ascites fluid after oral administration in mice.

Pharmacokinetics of 1-alkylcarbamoyl-5-fluorouracils was examined in mice bearing sarcoma 180. The alkylcarbamoyl derivatives were absorbed rapidly as intact form through the gastrointestinal tract and distributed into ascites fluid. Concentration-x-time (C-x-t) values of 5-fluorouracil formed in plasma and ascites fluid decreased in order by extension of the carbon chain of the alkyl moiety. C-x-t value of 5-fluorouracil formed in ascites fluid after hexylcarbamoyl derivative was higher than that in plasma. Antitumor activity of the compounds was correlated with both maximum concentration (Cmax) and C-x-t values of 5-fluorouracil formed and Cmax of total (intact form plus 5-fluorouracil formed) in ascites fluid (P < 0.01), and with C-x-t values in ascites fluid and Cmax and C-x-t values of 5-fluorouracil formed in plasma (P < 0.05). Alkylcarbamoyl structure was valuable for rapid absorption through the gastrointestinal tract and blood-ascites barrier and for maintenance of 5-fluorouracil level in plasma and ascites fluid.

Administration, Oral↗

Antitumor activity of metabolites of 1-hexylcarbamoyl-5-fluorouracil and related compounds against L1210 leukemia in vivo and L5178Y lymphoma cells in vitro.

Antitumor activity of metabolites of 1-hexylcarbamoyl-5-fluorouracil (HCFU) and related compounds was examined in vivo and in vitro. Carboxypentyl and carboxypropyl carbamoyl derivatives of 5-fluorouracil (FU) were moderately active against L1210 by oral administration but less active by intraperitoneal administration. However, 5-hydroxy- and 5-oxo-hexylcarbamoyl derivatives of FU were markedly or moderately active against the leukemia by both oral and intraperitoneal administrations. Therapeutic ratios for the metabolites were less than that for HCFU by both oral and intraperitoneal administrations. Metabolites of HCFU had growth inhibitory activity against L5178Y in vitro similar to alkylcarbamoyl derivatives of FU. Activity of metabolites was lower than that of FU and higher than that of HCFU in vitro. It means that HCFU is converted into FU through active intermediate metabolites in vivo.

Animals↗

Metabolic fate of 1-hexylcarbamoyl-5-fluorouracil after oral administration in mice.

1. The metabolic fate of a new antitumour agent, 1-hexylcarbamoyl-5-fluoro[6-14C]uracil (14C-HCFU) was compared with that of 5-fluoro[6-14C]uracil (14C-FU) after oral administration to mice. 2. 1-(5-Hydroxyhexylcarbamoyl)-5-fluorouracil (5-hydroxy-HCFU) and 1-(5-oxohexylcarbamoyl)-5-fluorouracil (5-keto-HCFU) were found as major intermediate metabolites of 14C-HCFU and were produced by omega-1 oxidation. 3. FU was detected in plasma 180 min after oral administration of 14C-HCFU, whereas unchanged FU disappeared within 60 min after 14C-FU. 4. 14C-HCFU and resulting FU were retained in tissues for a long period after oral administration, while administered 14C-FU was rapidly degraded.

Administration, Oral↗

Effect of 1-hexylcarbamoyl-5-fluorouracil on spontaneous mammary adenocarcinoma of mice.

The antitumor activity of 1-hexylcarbamoyl-5-fluorouracil (HCFU) in various schedules of long-term oral administration was examined in spontaneous mammary adenocarcinoma of SHN mice, an autochthonous tumor system. In the control group, the average time to local recurrence and average longevity after surgical intervention were 21 and 48 days, respectively. Oral administration of HCFU at 200 approximately 300 mg/kg/day, 3 times a week for 5 consecutive days every 2 or 3 weeks was markedly effective against the adenocarcinoma. The optimal schedule was 20 administrations of HCFU at 300 mg/kg/day, 3 times a week. The average time to local recurrence after the operation was increased to 200% and average postoperative survival was also prolonged to 150%. Growth of the tumors was slower and lung metastases at autopsy were found to be suppressed by HCFU. The effect of HCFU in delaying local recurrence and prolonging longevity was slightly affected by the schedule of administration.

Adenocarcinoma↗

Antitumor activity of 1-alkylcarbamoyl derivatives of 5-fluorouracil in a variety of mouse tumors.

The antitumor properties of 1-alkylcarbamoyl derivatives of 5-fluorouracil were examined in various mouse tumor systems to select promising compounds for clinical use. Almost all alkylcarbamoyl derivatives were active against various tumors when given by oral administration. Among them, 1-methyl, 1-ethyl, 1-isopropyl, 1-hexyl and 1-octyl carbamoyl derivatives of 5-fluorouracil were moderately or markedly active in six mouse tumor systems tested. However, 1-methyl, 1-ethyl, and 1-isopropyl carbamoyl derivatives were toxic to mice, though not lethal. As a result, 1-hexyl and 1-octyl carbamoyl derivatives were selected as the best candidates for antitumor agents in further study.

Adenocarcinoma↗

Antitumor activity of 1,2-diaminocyclohexane--platinum complexes against sarcoma-180 ascites form.

Platinum complexes derived from three isomers of 1,2-diaminocyclohexane have been synthesized and their antitumor activities were evaluated against ascites Sarcoma-180. All the platinum complexes had high antitumor activity. Platinum complexes derived from cis-1,2-diaminocyclohexane were more effective than those derived from trans-l-and trans-d-1,2-diaminocyclohexane. Among the platinum complexes tested, oxalato(cis-1,2-diminocyclohexane)platinum had a remarkably high therapeutic index. Modification of the nonleaving group as well as that of the leaving group is important in order to find better antitumor platinum complexes.

Animals↗

Interaction of antitumor agents including doxorubicin or daunorubicin in sarcoma-180 system.

Combination effect of antitumor agents, including doxorubicin and daunorubicin, was evaluated on the concept of pharmacological synergism in ascites sarcoma-180 system. In alternate adminsitration, combinations of doxorubicin plus cyclophosphamide, thio-TEPA, carboquone, actinomycin-D, vinblastine, vincristine, methotrexate, cytarabine, 6-mercaptopurine, or L-asparaginase showed synergism, but in simultaneous one, only three agents, cyclophosphamide, carboquone, and cytarabine, were synergistic. On the other hand, combination of daunorubicin plus one of 8 agents (thio-TEPA, mitomycin-C, bleomycin, actinomycin-D, vinblastine, ancytabine, 6-mercaptopurine, and L-asparaginase) and 6 agents (cyclophosphamide, thio-TEPA, mitomycin-C, bleomycin, actinomycin-D, and vinblastine) provided synergism in alternate and simultaneous administration. Combination effect of agents was affected by the schedule of drug administration for doxorubicin, but weak for daunorubicin. Toxicity of doxorubicin or daunorubicin in combination with other drugs was also affected by the schedule of administration. Combination of a larger number of agents in simultaneous administration provided antagonism compared with an alternate administration.

Animals↗

Antitumor activity of N-heterocyclic carboxaldehyde thiosemicarbazone derivatives.

Antitumor activity of N-heterocyclic carboxaldehyde thiosemicarbazone derivatives was examined in ascites sarcoma-180 system. Among isoquinoline-1-carboxaldehyde thiosemicarbazone derivatives, the parent compound, IQ-1, was the most active and less toxic. On the other hand, among the pyridine-2-carboxaldehyde thiosemicarbazone derivatives tested, 5-acetoxymethyl and 5-isonicotinoyl derivatives were active, and their therapeutic indices were 190 and 54, respectively. In other tumor systems, acetoxymethyl derivative was markedly active against Ehrlich ascites carcinoma, leukemia L-1210, and leukemia C-1498, while moderately effective against Nakahara-Fukuoka sarcoma, but it was not active against adenocarcinoma-755. Isonicotinoyl derivative was markedly active against Ehrlich ascites carcinoma, leukemia L-1210, and leukemia C-1498, while moderately active against adenocarcinoma-755, and slightly active against Nakahara-Fukuoka sarcoma.

Animals↗

Interaction of antitumor agents including carboquone in sarcoma-180 system.

Combination effect of antitumor agents including carboquone was evaluated on the concept of pharmacological synergism and not therapeutic synergism in ascites sarcoma-180 system. Combinations of carboquone plus cyclophosphamide, doxorubicin, and Methotrexate in simultaneous administration and carboquone plus doxorubicin in alternate one provided synergism. Combination effect of agents was affected by the schedule of drug administration. Toxicity of carboquone in combination with many antitumor agents, generally, decreased in simultaneous administration. Approved agents in combination with carboquone in simultaneous administration were Mitomycin-C, daunorubicin, Actinomycin-d, vinblastine, vincristine, Ancytabine, and 6-mercaptopurine. Those in alternate administration were Actinomycin-D and vinblastine.

Animals↗