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Efficacy of famciclovir in the treatment of herpes zoster.

Although vidarabine was the first systemic antiviral drug for the treatment of acute herpes zoster, the agent now used most frequently is acyclovir, a far safer drug that became available a decade ago. However, even with widespread use of acyclovir, postherpetic neuralgia (PHN) remains a principal cause of postinfectious morbidity. Newer antiviral agents, such as famciclovir and valacyclovir, have recently been introduced for the treatment of uncomplicated herpes zoster. In a double-blind, randomized study, 500 mg of famciclovir three times daily for 7 days was compared with placebo; in a second study, 500 mg of famciclovir three times daily for 7 days was compared with 800 mg of acyclovir five times daily for 7 days. Famciclovir significantly reduced duration of viral shedding (P = 0.0001) and accelerated lesion resolution compared with placebo. Famciclovir was comparable to acyclovir for these acute parameters. Most importantly, famciclovir recipients lost PHN two times faster than those receiving placebo (P = 0.02 all patients; P = 0.004 patients > or = 50 years) resulting in a reduction in the median duration of PHN (56 days all patients; 100 days patients > or = 50 years). This reduction translated to a 3.5-month reduction in the median duration of PHN for patients 50 years or older, those at greatest risk for developing the most common complication of herpes zoster. Famciclovir 500 mg administered three times a day for 7 days is an effective and well-tolerated treatment for acute herpes zoster, and is the only oral antiviral agent proven to reduce the duration of PHN when administered during acute zoster infection.

2-Aminopurine

[Genital herpes with special emphasis on perinatal herpes simplex virus infection].

INTRODUCTION: The incidence of genital herpes is increasing worldwide and at present herpes simplex virus type 2 is the most common cause of genital ulceration all over the world. CLASSIFICATION: The International Herpes Management Forum (IHMF) was established in 1993, suggesting a new classification of genital herpes: primary genital herpes, non-primary genital herpes, recurrent genital herpes, first episode genital herpes, atypical genital herpes and asymptomatic HSV (herpes simplex virus) infection. DIAGNOSIS: Clinical diagnosis of genital herpes should be confirmed by laboratory techniques, whereas a positive HSV culture is the best test for confirming the clinical diagnosis. Serological testing, including Western blot assay, is not the method of choice for diagnosis genital herpes. THERAPY: Management of patients with genital herpes must include various antiviral drugs (acyclovir, valacyclovir, famiclovir), but also must take into consideration the patients' clinical and emotional issues. Patients with few recurrences are best managed with episodic antiviral therapy, but those with more frequent recurrences may find a long term suppressive therapy more beneficial. Herpes simplex virus is acquired during labor in about 90% of neonatal herpes virus cases with direct contact with infected maternal genital secretions, in 5% of cases in utero (ascending infection or transplacentary) and in another 5% of cases HSV is acquired post partum. Herpes simplex virus infection includes skin infection, eye and mouth manifestations, CNS diseases and disseminated disease with multiorgan involvement. CONCLUSION: In order to reduce the risk of HSV transmission to the infant IHMF has suggested management of pregnant women with primary genital herpes: delivery by Caesarean section between 34th week and term. Acyclovir treatment may reduce the viral load at delivery, but before this can generally be recommended, more data are still required.

Female

Genital Herpes: Treatment Guidelines.

Genital herpes, usually caused by herpes simplex virus type 2 (HSV-2), is the most common cause of genital ulceration. The primary episode of genital herpes is generally the most painful. Subsequent recurrences are generally milder and localized. Diagnosis is made clinically, but should be confirmed by culture or serology. Management includes antiviral drug therapy--acyclovir, valacyclovir, or famciclovir--as well as analgesics. In addition, patient counseling and education are vital. Antiviral treatment decreases the severity and duration of primary genital herpes and of recurrences, and it may be used as a continuous suppressive therapy to decrease the incidence of recurrence. Pregnant women who have a history of genital herpes or recent primary infection should deliver by cesarean section in the presence of genital lesions at labor or primary HSV infection at any time during the third trimester to prevent transmission to the neonate. Part 1, "Genital Herpes: Recognizing the Problem," addresses the problems involved in diagnosing the infection and quantifying the epidemic.

Journal Article

New antivirals with activity against varicella-zoster virus.

Herpes zoster is a serious medical problem, not only because of the discomfort associated with the acute rash, but also because of the potential for post-herpetic neuralgia. Acyclovir is currently the antiviral drug of choice for the treatment of herpes zoster. Efforts are underway to develop new drugs that have improved activity against varicella-zoster virus as well as more favorable pharmacokinetic properties. The goal of these efforts is to develop an orally administered antiviral drug that will accelerate the events of cutaneous healing as well as reduce the frequency and severity of post-herpetic neuralgia. Investigational drugs currently under evaluation include valaciclovir and famciclovir, the prodrugs of acyclovir and penciclovir, respectively. Two new uracil derivatives, sorivudine and BW882C87, with increased anti-varicella-zoster virus activity in vitro are also being studied.

2-Aminopurine

Review of research leading to new anti-herpesvirus agents in clinical development: valaciclovir hydrochloride (256U, the L-valyl ester of acyclovir) and 882C, a specific agent for varicella zoster virus.

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)

Acyclovir

Valaciclovir (BW256U87): the L-valyl ester of acyclovir.

Valaciclovir (BW256U87) is an L-valyl ester of acyclovir, which is extensively and almost completely converted to acyclovir. In healthy human volunteers, single valaciclovir doses of 100-1000 mg resulted in dose-proportional increases in acyclovir area under the curve (AUC). The 1,000 mg dose produced an acyclovir peak plasma concentration (Cmax) of 5-6 micrograms/ml, AUC6 of 19 hr. micrograms/ml, time to maximum plasma concentration (Tmax) of 1-2 hr, and half-life (T1/2) of 2.8 hr. Plasma valaciclovir peak levels were < 0.3 micrograms/ml, and the prodrug was undetectable after 3 hr. Multiple valaciclovir doses of 250-2,000 mg given four times daily for 10 days resulted in dose-proportional increases in acyclovir Cmax. There were less than proportional increases in the AUCs. No serious or unexpected adverse events or laboratory abnormalities were reported. In volunteers with advanced human immunodeficiency virus (HIV) disease (absolute CD4 lymphocyte count < 150 cells/microliters), acyclovir and valaciclovir pharmacokinetic results were nearly identical to those in healthy volunteers. At the 2 g dose administered four times daily, steady-state acyclovir Cmax = 8.4 micrograms/ml, Tmax = 2.0 hr, AUC6 = 30.5 hr. micrograms/ml, and T1/2 = 3.3 hr. Nausea, vomiting, diarrhoea, and abdominal pain were commonly reported; however, only one adverse event (diarrhoea) was causally linked to valaciclovir exposure. There were no renal or neurologic adverse events. Valaciclovir is well absorbed and is rapidly converted to acyclovir, resulting in three- to fourfold higher acyclovir levels than can be achieved with oral acyclovir, even in patients with advanced HIV disease. The safety profile is generally favourable, with no evidence of nephrotoxicity or neurotoxicity.

Acyclovir

Cytogenetic genotoxicity of antiherpes virostatics in Chinese hamster V79-E cells. I. Purine nucleoside analogues.

The antiherpes virostatics acyclovir (ACV), valaciclovir (VACV), penciclovir (PCV), famciclovir (FCV) and ganciclovir (GCV), which belong to the group of purine acyclic nucleoside analogues, were tested for clastogenic and sister chromatid exchange (SCE)-inducing activity in Chinese hamster V79-E cells upon chronic application with and without a recovery period. ACV induced borderline effects in both cytogenetic assays, a dose-dependent reduction of the mitotic index and an increasing cell cycle delay. With VACV and PCV only a decrease of the mitotic index and an increase of cell cycle delay were observed. FCV was negative with respect to the four parameters studied, presumably due to the incapacity of the target cells of metabolizing FCV to PCV. GCV was a very potent genotoxin in both assays. It induced a statistically significant SCE response even in the range of the cytomegalovirus IC50 of < 10 microM. By variation of the experimental protocol it was shown that SCEs are induced in the second cell cycle following exposure to GCV but not in the first one. It is assumed that the drugs under study are metabolized to their respective triphosphates and then inhibit DNA replication as detected by decreasing mitotic index and increasing cell cycle delay. In the case of GCV it is suggested that GCV-TP is incorporated into the target cell DNA and that chromosomal aberrations and SCEs are secondary lesions due to repair processes at the substituted template.

2-Aminopurine

Scintillation proximity radioimmunoassay for the measurement of acyclovir.

A homogeneous, single-tube scintillation proximity radioimmunoassay (SPRIA) to quantitate acyclovir (Zovirax), ACV, (9-[(2[hydroxyethoxy)]methylguanine)] in human plasma is described. The reagents for the SPRIA are an anti-ACV monoclonal antibody (WACO4 MAb), tritiated ACV, and scintillation proximity reagent (goat anti-mouse immunoglobulin G (IgG) coupled to fluoromicrospheres). The ACV standard curve range in the SPRIA is from 0.7 ng ml-1 (3.0 nmol l-1) to 90.0 ng ml-1 (0.4 mumol l-1) with a 50% inhibitory concentration of 5.0 ng ml-1 (22.2 nmol l-1). However, the lower limit of quantification is 7 ng ml-1 at 1:10 dilution of plasma. Analytical recovery of ACV in spiked human plasma controls ranges between 90-110%. Intra- and inter-assay relative standard deviations were < 8%. This high throughput homogeneous assay is a rapid, convenient and simple alternative to the current radioimmunoassay that uses ammonium sulfate precipitation as the separation method. This technique is particularly attractive because it requires neither separation of bound from free drug nor use of scintillation fluid. The procedure was applied to quantitate ACV in samples from pre-clinical and clinical studies after the administration of valaciclovir, a prodrug of ACV (256U87, Valtrex, L-valyl ester of ACV). Automation of this assay will further improve efficiency in processing a larger number of samples.

Acyclovir

Herpesvirus resistance to antiviral drugs: a review of the mechanisms, clinical importance and therapeutic options.

During the past decade, potent agents against herpes simplex virus (HSV) types 1 and 2, varicella zoster virus (VZV), and cytomegalovirus (CMV) have become available. The increasing clinical use of acyclovir, ganciclovir, and foscarnet has been associated with the emergence of drug-resistant herpesvirus strains. Resistance to acyclovir or ganciclovir most frequently results from deficient intracellular phosphorylation of these agents which is required for drug activation. Resistance to foscarnet is due to viral DNA polymerase mutants that permit viral replication despite the presence of the drug. In immunocompetent patients, herpesvirus resistance is rare and generally does not correlate with clinical outcome. In contrast, in immunocompromised hosts, resistance of HSV, VZV, and CMV is increasingly detected, and may be associated with disease refractory to antiviral therapy. Foscarnet treatment has been used with some clinical benefit in patients with acyclovir-resistant HSV or VZV, or ganciclovir-resistant CMV. For therapy of resistant mucocutaneous HSV disease, topical trifluorothymidine, and topical or intravenous cidofovir (HPMPC) have yielded encouraging results that warrant further investigation. Improved methods for detection of herpesvirus resistance, and validation of alternative therapy for patients with documented resistance are required to reduce the clinical impact of drug-resistant herpesviruses.

2-Aminopurine

Cellular uptake mechanism of amino acid ester prodrugs in Caco-2/hPEPT1 cells overexpressing a human peptide transporter.

PURPOSE: This study characterized the cellular uptake mechanism and hydrolysis of the amino acid ester prodrugs of nucleoside antiviral drugs in the transiently transfected Caco-2 cells overexpressing a human intestinal peptide transporter, hPEPT1 (Caco-2/hPEPT1 cells). METHODS: Amino acid ester prodrugs of acyclovir and AZT were synthesized and their apical membrane permeability and hydrolysis were evaluated in Caco-2/hPEPT1 cells. The cellular uptake mechanism of prodrugs was investigated through the competitive inhibition study in Caco-2/hPEPT1 cells. RESULTS: L-Valyl ester of acyclovir (L-Val-ACV) was approximately ten fold more permeable across the apical membrane than acyclovir and four times more permeable than D-valyl ester of acyclovir (D-Val-ACV). Correspondingly, L-valyl ester of AZT (L- Val-AZT) exhibited three fold higher cellular uptake than AZT. Therefore, amino acid ester prodrugs significantly increased the cellular uptake of the parent drugs and exhibited the D,L-stereoselectivity. Furthermore, prodrugs were rapidly hydrolyzed to the parent drugs by the intracellular hydrolysis, following the apical membrane transport. In the inhibition studies, cephalexin and small dipeptides strongly inhibited the cellular uptake of L-Val-ACV while L-valine had no effect, indicating that the peptide transporter is primarily responsible for the apical membrane transport of L-Val-ACV. In addition, the cellular uptake of L-Val-ACV was five times higher in Caco-2/hPEPT1 cells than the uptake in the untransfected Caco-2 cells, implying the cellular uptake of L-Val-ACV was related to the enhancement of the peptide transport activity in Caco-2/hPEPT1 cells. CONCLUSIONS: Caco-2/hPEPT1 system is an efficient in vitro model for the uptake study of peptidyl derivatives. Amino acid ester prodrugs significantly improved the cellular uptake of the parent drugs via peptide transport mechanism and were rapidly converted to the active parent drugs by the intracellular hydrolysis.

Acyclovir

Pharmacokinetics of the acyclovir pro-drug valaciclovir after escalating single- and multiple-dose administration to normal volunteers.

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.

Acyclovir

Lack of interaction between valaciclovir, the L-valyl ester of aciclovir, and digoxin.

AIMS: Changes in both digoxin and aciclovir renal clearance following coadministration with some other renally eliminated drugs have been reported. The potential interaction of valaciclovir, with its antiherpetic metabolite aciclovir, and digoxin was investigated. METHODS: Twelve healthy volunteers (seven males, five females) participated in an open, randomized, four-period crossover study. Valaciclovir, 1000 mg, was given alone on one occasion, and on another, after the second of two 0.75 mg digoxin doses administered 12 h apart. Blood samples and all urine were collected up to 12 h following the valaciclovir dose for aciclovir radioimmunoassay. On a third occasion, digoxin was given alone and on a fourth, with 1000 mg valaciclovir three times/day for 8 days starting 12 h before the first digoxin dose. Blood samples were taken up to 168 h and all urine collected up to 24 h following the second dose for digoxin radioimmunoassay. RESULTS: There were no clinically significant differences in digoxin or aciclovir pharmacokinetic parameters when digoxin or valaciclovir was given alone or in combination. CONCLUSIONS: No dosage adjustment is required when valaciclovir and digoxin are coadministered.

Acyclovir

[Bilateral neuroretinitis with zoster infection].

BACKGROUND: Infections with varicella zoster virus may involve the optic nerve and the retina. Different pathomechanisms have been discussed. We present a case with an autoimmune inflammatory reaction according to the clinical course. PATIENT: A 69-year-old female was referred to our clinic because of suspected bilateral anterior ischemic optic neuropathy. She complained of severe visual loss the day before admission. Her ophthalmological and general history was unremarkable apart from treatment with 5 to 7.5 mg prednisolone alternately because of rheumatoid arthritis. Best corrected visual acuity was 1/15 OD and 0.1 OS. A relative afferent pupillary defect on the right eye was present. Optic disc oedema with multiple hemorrhages of the retina extending into the peripheral funds, slightly attenuated retinal arteries and macular oedema were seen fundoscopically in both eyes. THERAPY AND CLINICAL OUTCOME: After immediate treatment with steroids (initial dose 250 mg prednisolone per day) visual acuity improved. Because of a clinically suspected and serologically proven active varicella-zoster infection an additional virostatic therapy with valaciclovir was started and steroids were lowered gradually. Within 2 months, visual acuity increased to 0.8 OD and 1.0 OS. Oedema of optic discs and macula resolved and retinal hemorrhages disappeared. CONCLUSION: A severe hemorrhagic neuro-retinitis involving the optic discs was seen in the course of a varicella-zoster infection, possibly reactivated by chronic steroid therapy of a rheumatoid arthritis. Because of the normalization of visual function an ischemic pathogenesis is unlikely. An autoimmune inflammatory reaction seems to be the predominant mechanism, supported by the good effect of steroid and valaciclovir therapy.

Acyclovir

Purification and characterization of a rat liver enzyme that hydrolyzes valaciclovir, the L-valyl ester prodrug of acyclovir.

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.

Acyclovir