The selectivity of action of an antiherpetic agent, 9-(2-hydroxyethoxymethyl) guanine. Reproduced from Proc. Natl. Acad. Sci. USA 74, 5716-5720 (1977)
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Biomedical subjects
Publications and source records attributed to P de Miranda.
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Zidovudine (ZDV) was evaluated for adverse effects on reproduction and fetal development in animal test species. Standard preclinical tests for reproduction and fertility, developmental toxicity, and postnatal toxicity were conducted in CD (Sprague-Dawley) rats and a developmental toxicity study was conducted in New Zealand white rabbits. In an additional study, reproductive outcome was characterized in female rats given ZDV before, during, or after mating and drug levels in the plasma and milk of lactating rats were determined. Finally, drug exposure data including observed peak plasma concentrations (Cmax) and area under the concentration-time curve (AUC) were evaluated for pregnant rats and rabbits. In a reproduction/fertility study in CD rats, toxicity to the early rat embryo, manifested as an increase in early resorptions and a decrease in litter size, was noted following dosage of the parental animals with 75 or 225 mg ZDV/kg bid. A dose of 25 mg/kg bid was a no-effect level in rats. At the time of mating, male rats had been dosed for 85 days, and females had been dosed for 26 days. To further evaluate the effects of ZDV on reproduction, dosing of male rats was continued to 149 days when they were mated a second time to virgin, untreated females. All reproductive parameters were normal in the untreated females from this second mating, indicating that the embryotoxic effect of the drug was not likely mediated by a genotoxic or other effect in the male. A separate study in female CD rats given 225 mg/kg bid for various periods pre- or postconception suggests that the toxic effect of ZDV is primarily to the early rodent embryo. Early embryo death did not occur in rats or rabbits in standard developmental (teratology) studies; however, pregnant New Zealand white rabbits given 250 mg/kg bid during gestation Days 6-18 showed reduced weight gain, anemia, and an increase in late fetal deaths. No other evidence of developmental toxicity was noted in either species, and ZDV was not teratogenic in rats or rabbits given up to 250 mg/kg bid during the period of major organogenesis. At this dose, Cmax values in rats and rabbits were approximately 234 and 150 times higher, respectively, than the mean steady-state serum concentration in adults following chronic oral administration of 250 mg every 4 hr. In both the reproduction/fertility study and a peri- and postnatal study in rats, liveborn offspring showed no adverse effects on survival, growth, or developmental measurements.
Zidovudine (ZDV), an antiviral drug active in the treatment of acquired immunodeficiency syndrome (recommended human dose, 100 mg every 4 hr while awake), was evaluated for mutagenic and carcinogenic potential in a battery of short-term in vitro and in vivo assays and in lifetime studies in mice and rats. In L5178Y mouse lymphoma cells (tk+/- locus), a weak positive result was obtained only at the highest concentrations tested (4000 to 5000 micrograms/ml) in the absence of metabolic activation. In the presence of metabolic activation, the drug was weakly mutagenic at concentrations of 1000 micrograms/ml and higher. Following 24 hr treatment in the absence of metabolic activation, ZDV was moderately mutagenic at concentrations up to 600 micrograms/ml; dose-related structural chromosomal alterations were seen at concentrations of 3 micrograms/ml and higher in cultured human lymphocytes. Such effects were not noted at the two lowest concentrations tested, 0.3 and 1 microgram/ml, and BALB/c-3T3 cells were transformed at concentrations of 0.5 microgram/ml and higher. No effects were seen in the Ames Salmonella plate incorporation and preincubation modification assays (possibly due to bacteriocidal activity of ZDV at low concentrations) at concentrations ranging from 0.01 to 10 micrograms/plate or in a single-dose intravenous bone marrow cytogenetic assay in CD rats. In multidose micronucleus studies, increases in micronucleated erythrocytes were seen in mice at doses of 100 to 1000 mg/kg/day. Similar results were seen in rats and mice after 4 or 7 days of dosing at 500 mg/kg/day. In carcinogenicity bioassays, adjusted doses of 20, 30, or 40 mg/kg/day and 80, 220, and 300 mg/kg/day were given to CD-1 mice and CD rats, respectively, for up to 22 months in mice and 24 months in rats. ZDV caused a macrocytic, normochromic anemia in both species. No evidence of carcinogenicity was seen in male mice or rats. In female mice, five malignant and two benign vaginal epithelial neoplasms occurred in animals given 40 mg/kg/day. A single benign vaginal epithelial tumor was seen in a mouse given 30 mg/kg/day. In rats, two malignant vaginal epithelial neoplasms were seen in animals given 300 mg/kg/day. In a 7-day study in mice, ZDV was shown to be devoid of estrogenic activity. In an oral pharmacokinetics study, the AUC was 17 and 140 micrograms/ml.hr in female mice and rats given 40 or 300 mg/kg of ZDV, respectively. In contrast, the average steady-state concentration in humans at the recommended daily dose is 0.62 microgram/ml. Twenty-four hour urine concentrations were 1245 and 4417 micrograms/ml in female mice and rats given 40 or 300 mg/kg of ZDV, respectively. These values were approximately 26- and 136-fold higher than the human urine concentration at the recommended daily dose. In a one- to three-day study with intravenously administered sodium fluoroscein in rats and mice, retrograde flow of urine into the vagina was demonstrated. In a subsequent lifetime carcinogenicity bioassay in mice in which ZDV was given intravaginally at concentrations of 5 or 20 mg ZDV/ml in saline, 13 vaginal squamous cell carcinomas were seen at the highest concentration tested. It was concluded that the vaginal tumors seen in the oral carcinogenicity studies were the result of chronic local exposure of the vaginal epithelium to high urine concentrations of ZDV.
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Valaciclovir is an oral prodrug of the antiherpetic agent acyclovir. An enzyme that hydrolyzes valaciclovir to acyclovir, valaciclovir hydrolase (VACVase), was purified from rat liver and characterized. VACVase was a basic (pI 9.4) protein associated with mitochondria. It was monomeric and had a molecular mass of 29 kDa. Amino acid sequences of six VACVase peptides, including its NH2 terminus (13 amino acids) and accounting for approximately 20% of its complete sequence, were not found in the SwissProt protein data base. VACVase hydrolyzed other amino acid esters of acyclovir in addition to valaciclovir (kcat/Km = 58 mM-1 s-1), with a preference for the L-alanyl (kcat/Km = 226 mM-1 s-1) and L-methionyl (kcat/Km = 200 mM-1 s-1) esters. It did not hydrolyze other types of esters or numerous di- and tripeptides and aminoacyl-beta-naphthylamides. Hydrolysis of valaciclovir by VACVase was not inhibited by amastatin, antipain, aprotinin, bestatin, chymostatin, E-64, EDTA, ebelactone A, ebelactone B, elastatinal, leupeptin, pepstatin, or phosphoramidon. It was neither inhibited nor activated by Ca2+, Co2+, Mg2+, Mn2+, or Zn2+. Therefore, this enzyme is not a typical esterase or peptidase and, to our knowledge, it has not been described previously. Its physiological function is not known; however, it may play a significant role in the biotransformation of valaciclovir to acyclovir.
Ganciclovir (GCV), which is used in the treatment of human cytomegalovirus infections, is poorly absorbed orally. A double prodrug of GCV, the dipivalate ester of 6-deoxy-GCV (6-dGCV) (called 6-dGCV-DPiv), was given orally to rats (25 mg/kg) and resulted in a nearly 7-fold enhancement of GCV bioavailability compared with administration of GCV alone and a 2-fold increase compared with administration of 6-dGCV. The prodrug was rapidly hydrolyzed and extensively oxidized by first-pass metabolism in such a way that only GCV, 6-dGCV, and a small amount of the monopivalate ester of 6-dGCV were observed in rat plasma. In cynomolgus monkey was given the prodrug orally (22.5 mg/kg), two additional metabolites were observed--the 8-hydroxy analogs of GCV and dGCV. The double prodrug approach demonstrated the potential for enhanced oral delivery of GCV in humans.
Research leading to the new anti-herpesvirus compounds discussed here has come from three approaches. The first approach was directed towards improving the bioavailability of acyclovir by examining the potential of a variety of prodrugs, leading to the new compound valaciclovir hydrochloride. The second approach was to examine a large number of 5-substituted pyrimidines for activity against those viruses which were not as potently inhibited by acyclovir as are herpes simplex viruses, i.e., varicella zoster virus (VZV) and human cytomegalovirus (HCMV). This research led to the new chemical entity 882C for VZV. A third approach has been to examine drug combinations with acyclovir. This research led to the compound 348U, an inhibitor of herpes simplex virus ribonucleotide reductase which acts synergistically in combination with acyclovir. This manuscript will focus on the first two approaches leading to new compounds valaciclovir hydrochloride and 882C since Dr. Safrin details such background for 348U/acyclovir. Attempts to improve the bioavailability of acyclovir began a decade ago. Early prodrugs were compounds with alterations in the 6-substituent of the purine ring of acyclovir. The 6-amino congener required the cellular enzyme adenosine deaminase for conversion to acyclovir and the 6-deoxycongener was dependent on cellular xanthine oxidase for conversion. Neither of these prodrugs had a chronic toxicity profile in laboratory animals as good as acyclovir. Efforts were directed towards simpler esters and 18 amino acid esters were made. The pharmacokinetic profile of each prodrug was determined in rats by measuring the recovery of acyclovir in urine after oral dosing.(ABSTRACT TRUNCATED AT 250 WORDS)
The pharmacokinetics and safety of the L-valyl ester pro-drug of acyclovir, valaciclovir (256U87), were investigated in two phase I, placebo-controlled trials in normal volunteers. These included a single-dose study with doses from 100 to 1000 mg (single cohort) and a multiple-dose investigation with doses from 250 to 2000 mg (five separate cohorts). In each cohort, eight subjects received valaciclovir and four subjects received placebo. Pharmacokinetic findings for valaciclovir and acyclovir were consistent in the two studies. Valaciclovir was rapidly and extensively converted to acyclovir, resulting in significantly greater acyclovir bioavailability (approximately threefold to fivefold) compared with that historically observed with high-dose (800 mg) oral acyclovir. At the higher valaciclovir doses, acyclovir maximum concentration and daily area under the concentration-time curve approximated those obtained with intravenous acyclovir. The favorable safety profile and enhanced acyclovir bioavailability from valaciclovir administration has prompted additional clinical evaluations for zoster and herpes simplex virus treatment, as well as cytomegalovirus suppression in immunocompromised patients.
6-Methoxypurine arabinoside (9-beta-D-arabinofuranosyl-6-methoxy-9H-purine, 1) has potent and selective activity against varicella-zoster virus in vitro. An unfavourable metabolic profile observed with oral dosing in the rat led to the preparation of a variety of 2',3',5'-triesters (2a-n) and several 2',3'-, 2',5'-, and 3',5'-diesters of this arabinoside (3a-n, 4a-f, and 5a-j, respectively). The compounds were evaluated as prodrugs by measuring the urinary levels of 1 in rat urine after oral dosing. With the exception of triacetate 2a, the triesters failed to significantly enhance bioavailability. Administration of compound 2a resulted in a 3-fold increase in systemic availability of 1, possibly because of its increased water solubility (1.6 times more soluble than 1) and only slightly increased relative log P value (1.93 vs 0.50 for 1). The longer chain aliphatic triesters and aromatic triesters had lower water solubilities and increased lipophilic partitioning. These factors might account for the lower systemic bioavailability of these compounds. In contrast, the diesters, especially the aliphatic diesters, showed significantly improved systemic availability. This might be a consequence of the higher aqueous solubilities and enhanced partition coefficients seen with these compounds. 2',3'-Diacetate 3a showed the best combination of high systemic availability and water solubility of all the prodrugs of 1.
6-Methoxypurine arabinoside (ara-M) is a highly selective inhibitor of varicella-zoster virus (VZV). It belongs to a class of purine arabinosides whose anti-VZV activity in vitro correlates with substrate utilization by the VZV-encoded thymidine kinase (TK) (D. R. Averett, G. W. Koszalka, J. A. Fyfe, G. B. Roberts, D. J. M. Purifoy, and T. A. Krenitsky, Antimicrob Agents Chemother. 35:851-857, 1991). In this study, the mechanism of action of ara-M was explored. VZV-infected human fibroblasts selectively accumulated ara-M and its phosphorylated metabolites, whereas in uninfected fibroblasts or in those infected with a TK-deficient strain of VZV, there was virtually no cellular uptake of ara-M. The major intracellular metabolite of ara-M in VZV-infected cells was identified as the triphosphate of adenine arabinoside (ara-ATP). Appreciable levels of ara-ADP, ara-AMP, and ara-MMP were also detected. However, di- or triphosphorylated forms of ara-M were not detected. Moreover, in VZV-infected cells, the concentrations of ara-ATP which accumulated in the presence of ara-M were up to eightfold higher than those generated with ara-A itself. In contrast, in uninfected cells, the levels of ara-ATP which accumulated in the presence of ara-M were barely detectable. Clearly, Ara-M activation was dependent on the activity of the virus-encoded TK, while ara-A anabolism resulted primarily from the activity of host cell enzymes. Therefore, ara-M selectively generates the DNA polymerase inhibitor ara-ATP in the VZV-infected cell.
6-Methoxypurine arabinoside (ara-M) exhibits potent activity against varicella-zoster virus (VZV) as a result of ara-M's anabolism to the triphosphate of adenine arabinoside (ara-ATP) in VZV-infected cells. The adenosine deaminase inhibitor erythro-9-(2-hydroxy-3-nonyl)adenine (EHNA) enhanced the formation of ara-ATP by inhibiting ara-M demethoxylation. In contrast, deoxycoformycin and coformycin, inhibitors of both adenosine deaminase and AMP deaminase, blocked the formation of ara-ATP and reversed the anti-VZV activity of ara-M. These results indicate that after the initial phosphorylation of ara-M by the VZV-coded thymidine kinase, the monophosphate is demethoxylated by AMP deaminase to form ara-IMP, which is converted to ara-ATP by the sequential actions of the cellular adenylosuccinate synthetase, adenylosuccinate lyase, and nucleotide kinases.
Groups of 20 female Wistar rats from Charles River Breeding Laboratories (Kingston, NY) were given three oral doses of 100 mg zidovudine/kg at 5-hr intervals on Gestation Day 10 (total dose = 300 mg/kg). Control rats received three oral doses of the vehicle, distilled water. This design approximated that of an earlier study that reported 38% postnatal mortality among the offspring of Wistar rats given zidovudine. In the study reported here, no adverse effects were noted on maternal body weight, food consumption, reproductive capacity, or hematology. Similarly, no effects on growth or survival of the offspring were noted. Hematology and clinical chemistry values were comparable between offspring of treated and control dams, and no treatment-related gross or histopathologic lesions were noted in the weanling rats. The mean concentration of zidovudine in embryonal homogenates, collected 30 min after administration of the third dose to the dam on Gestation Day 10, was 21.1 micrograms/g tissue. This value is approximately one-third of the mean drug plasma concentration (62.6 micrograms/ml) measured in the dams at the same time point. The dramatic difference in results in the two studies may be related to differences in Wistar rats from two different sources or to other unknown factors associated with the design and conduct of the studies. The results of the current study were consistent with other preclinical studies on the reproductive toxicity of zidovudine in rats and rabbits.
The anti-human immunodeficiency virus drug zidovudine is metabolized extensively in human beings to the 5'-glucuronide (GAZT) and is cleared rapidly, resulting in a short half-life and the need for frequent dosing. This study explores whether probenecid, which is also metabolized by glucuronidation, reduces zidovudine clearance when zidovudine is administered orally to patients with acquired immunodeficiency syndrome (AIDS) or AIDS-related complex (ARC). The mean zidovudine plasma levels were significantly higher after concurrent administration of probenecid than in its absence, resulting in a twofold increase in the mean AUC, a corresponding decline in the apparent total clearance, and a prolongation in the mean half-life. Similar alterations were observed in GAZT disposition. There was a marked reduction in the urinary excretion ratio of GAZT to zidovudine and a decline in the renal clearance of GAZT after probenecid coadministration. Probenecid inhibits zidovudine glucuronidation and renal excretion of GAZT.
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A sensitive high-performance liquid chromatography (HPLC) assay has been developed to simultaneously determine levels of the anti human immunodeficiency virus agent, zidovudine (AZT), and its major metabolite (the 5'-O-glucuronide) in serum. Samples were first mixed with an internal standard (a stereoisomer of AZT), then prepared for analysis using solid-phase extraction columns and chromatographed using a reversed-phase analytical column. Isocratic elution with a mobile phase of 15% acetonitrile, buffered to pH 2.70 with ammonium phosphate, gave good resolution of the three analytes and endogenous serum components. The HPLC analysis time required per sample was 34 min and analyte recoveries were reproducibly high (greater than 93%). Replicate analyses of prepared standards gave satisfactory precision and accuracy, with coefficients of variation less than 15% and deviations from expected concentrations less than 10%.
The basic pharmacokinetic and bioavailability information on zidovudine was obtained during the initial phase I study. Following intravenous doses of 1.0 mg/kg every eight hours to 7.5 mg/kg every four hours, zidovudine plasma levels decay in a biexponential manner, indicating two-compartment pharmacokinetics. The mean half-life was 1.1 hours over this dose range and the total body clearance was approximately 1,900 ml/minute/70 kg, up to doses of 5 mg/kg. At 7.5 mg/kg, total body clearance decreased by 35 percent. The 5'-O-glucuronide was identified as a major metabolite of zidovudine in plasma and urine. This inactive metabolite is rapidly formed and cleared from plasma, with a half-life of one hour. No other metabolites have been found in humans. Renal clearance of zidovudine was estimated at 350 ml/minute/70 kg. Zidovudine penetrated the blood brain barrier as indicated by a cerebrospinal fluid:plasma ratio averaging 0.5, determined two to four hours after dosing. Following oral administration of zidovudine at doses from 2.0 mg/kg every eight hours to 10 mg/kg every four hours, peak plasma levels increased proportionately with dose; the average bioavailability was 65 percent. Since 90 percent of the drug was recovered in the urine as zidovudine or the 5'-O-glucuronide, the incomplete bioavailability is assumed to be the result of first-pass metabolism rather than incomplete absorption. Pharmacokinetic questions related to optimal use of the drug are currently being addressed.
Zidovudine was present in the semen and serum of six patients with acquired immunodeficiency syndrome or the related complex who were receiving 200 mg of the drug orally every four to six hours. Mean semen zidovudine levels (as measured by a new radioimmunoassay) in samples collected 0.75 to 1.25 hours after oral dosing were 3.63 to 7.19 mumol/L. Levels in semen samples collected 3.0 to 4.5 hours after oral dosing were 1.68 to 6.43 mumol/L. These values are above the in vitro minimum inhibitory concentration for the human immunodeficiency virus type 1 (HIV-1). Mean serum concentrations at the early and late times after oral dosing were 0.22 to 3.07 mumol/L and 0.10 to 1.42 mumol/L, respectively. Ratios of semen/serum zidovudine levels ranged from 1.3 to 20.4. It is possible that a pH-dependent trapping mechanism, which has been described in the prostate for other antibiotics, was responsible for the relatively high semen levels observed.