The antitumoral activity and metabolism of 1-(4-acetylphenyl)-3,3-dimethyltriazene [pAc-(CH3)2] and 1-(4-acetylphenyl)-3,3-diethyltriazene [pAc-(C2H5)2] were studied in mice. pAc-(CH3)2 showed significant antitumoral activity against M5076 ovarian reticular cell sarcoma, L1210 leukemia, EL 4 lymphoma in mice, but not against Lewis lung carcinoma. pAc-(C2H5)2 was inactive in all these murine tumors and was much more toxic than pAc-(CH3)2. pAc-(CH3)2 and pAc-(C2H5)2 were rapidly metabolized in vitro and in vivo to their respective monoalkyltriazenes and to 4-aminoacetophenone (pAc-NH2). In vitro, 79% of the dimethyltriazene was metabolized to its monomethyl analogue, but only 27% of the diethyltriazene was metabolized to the monoethyltriazene. The monoalkytriazenes were almost completely biotransformed to pAc-NH2 by a 9000 g liver fraction. The metabolic pattern in the in vitro study was comparable to that found in vivo.
Two closely related lines of the same Walker 256 carcinoma in Crl-CD/COBS rats, described as behaving differently as regards tumor growth and host reaction, show different chemotherapeutic sensitivity to cyclophosphamide (CPA). Line B, which induces early cachexia with marked anorexia, is only moderately sensitive to CPA, while line A, which causes mild anorexia and only terminal cachexia, shows marked responsiveness to CPA, cure being attained in 75% of animals treated with a single dose of 120 mg/kg and in 90-100% of those given 20 mg/kg every other day. Comparative studies in both tumor lines on the distribution of CPA in vivo and on its metabolism by the liver perfusion technique showed no appreciable differences between the two lines in the pharmacokinetics of the compound, but indicate a much greater metabolizing capacity of CPA in the Walker 256/A animals. In vitro metabolic and covalent binding studies confirm that the liver of the Walker 256/A group metabolizes and covalently binds twice as much CPA as the liver of the Walker 256/B group. Conversely to Walker B, microsomal preparations of the Walker tumor line A are able to metabolize CPA to intermediates which irreversibly bind to tissue macromolecules, suggesting an in situ activation of the compound in the sensitive Walker tumor.
High pressure liquid chromatography was used in combination with mass spectrometry to confirm that the main products of in vitro metabolism of 1-(4-acetylphenyl)-3,3-dimethyltriazene are 1-(4-acetylphenyl-3-methyltriazene and 4-aminoacetophenone. In addition a novel metabolite, 1-[4-(1-hydroxyethyl)-phenyl]-3,3-dimethyltriazene, possessing antitumour activity similar to the parent drug, was identified.
Resistance of mouse M5076 (M5) ovarian reticular cell sarcoma to cyclophosphamide (CTX) was obtained in vivo by repeated drug treatment followed by transplantation of the regrowing tumor. After 16 passages, we obtained an M5 subline resistant to CTX (M5-CTX-16R). Median survival times were approximately 29 and 39 days for M5 and M5-CTX-16R, respectively. Survival of M5-bearing mice given a single i.p. dose of 200 or 300 mg/kg was 160 and 168% of controls, respectively, whereas in M5-CTX-16R it ws 103 and 123%, respectively. The resistance was not reversible after 14 additional passages with no further CTX treatment. M5 and M5-CTX-16R appear similar in histological features, pattern of metastasis formation, and DNA content, as assessed by flow cytometry (hypotetraploid). Metastases of M5-CTX-16R were also resistant to CTX. Flow cytometry studies 12 and 24 hr after CTX treatment revealed a block in S and G2-M phases in both tumors. After 48 hr and at subsequent times, no cytokinetic pertubation was evident in M5-CTX-16R, whereas in M5 marked accumulation of cells in G2-M was observed at 48, 72, 96, and 120 hr. Cross-resistance was found between CTX, L-phenylalanine mustard, chlorambucil, and hexamethylmelamine. M5-CTX-16R was sensitive, but less so than M5, to cis-platinum, 1,3-bis(2-chloroethyl)-1-nitrosourea, and imidazole-4-carboxamide,5-(3,3-dimethyl-1-triazene). Adriamycin was equally active on M5 and M5-CTX-16R, while 4'-demethylepipodophyllotoxin-9-(4,6-O-ethylidine-beta-D-glucopyranoside) was inactive. This model appears to be suitable for studies on the mechanism of resistance to CTX and alkylating agents and for screening new, non-cross-resistant drugs.
The two dosage schedules of VP16 that gave the least and the greatest efficacy in Lewis lung carcinoma of the mouse were selected for evaluation of the cytokinetic effects observable in vivo at different intervals after treatment (schedule A: 40 mg/kg IV, on day 8 after transplant; schedule B: 13 mg/kg IV, repeated on days 8, 11 and 14 after transplant).
The pharmacokinetics of VP16 have been investigated in Lewis lung bearing mice after i.v. doses of 13 and 40 mg/kg. At both doses the plasma elimination half-life was around 30 min. The lowest VP16-213 levels were in brain and primary tumor. Drug concentrations were much higher in metastases than in primary tumor. The highest concentrations were in small intestine, liver and kidney. Drug levels in the liver were disproportionally higher after 40 mg/kg, the AUC value being approximately 12 times greater than after 13 mg/kg. Urinary excretion of VP16-213 as unchanged drug accounted for 20–30% of the administered dose in the 60 h after treatment. The concentration cytotoxicity curve was very steep and apparently similar for cells derived from primary tumor or metastases grown in vitro.
The metabolism of 1-(4-acetylphenyl)-3,3-dimethyltriazene has been studied in vivo and in vitro in mice. This dimethyltriazene was extensively metabolised in vivo and HPLC analysis of the plasma revealed the presence of two metabolites, the monomethyltriazene, 1-(4-acetylphenyl)-3-methyltriazene, and the arylamine, 4-aminoacetophenone. The dimethyltriazene was also biotransformed in vitro by a 9000 g fraction of mouse liver homogenate to products which were selectively toxic to TLX5 lymphoma cells. HPLC analysis of the products of in vitro metabolism under these conditions showed the presence of the monomethyltriazene but in an amount insufficient to account for the observed cytotoxicity. The monomethyltriazene was itself rapidly biotransformed by a 9000 g fraction of mouse liver homogenate, and by isolated mouse hepatocytes.
Concentrations of pentamethylmelamine (PMM) and some metabolites were determined in plasma of rats treated with 10 and 50 mg PMM/kg IV. The areas under the plasma levels curve after these doses were 241 and 1,827 μg/mlxmin; plasma clearances were 0.042 and 0.027 l·kg-1·min-1, respectively.