Adefovir
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Adefovir
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CAS No:
106941-25-7
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Formula:
C8H12N5O4P
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Chemical Name:
Adefovir
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Synonyms:
Phosphonic acid,P-[[2-(6-amino-9H-purin-9-yl)ethoxy]methyl]-;Phosphonic acid,[[2-(6-amino-9H-purin-9-yl)ethoxy]methyl]-;P-[[2-(6-Amino-9H-purin-9-yl)ethoxy]methyl]phosphonic acid;9-(2-Phosphonylmethoxyethyl)adenine;PMEA;9-[2-(Phosphonomethoxy)ethyl]adenine;GS 0393;Adefovir;((2-(6-Amino-9H-purin-9-yl)ethoxy)methyl)phosphonicacid;[[2-(6-Amino-9H-purin-9-yl)ethoxy]methyl]phosphonic acid;2-(6-Aminopurin-9-yl)ethoxymethylphosphonic acid
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CAS No:
Description
Adefovir (GS-0393) is an adenosine monophosphate analog antiviral agent that after intracellular conversion to Adefovir diphosphate inhibits HBV DNA polymerase. Adefovir has an IC50 of 0.7 μM against HBV in the HepG2.2.15 cell line. Adefovir has good antiviral activity against several viruses, including HBV and herpesviruses[1][2][3].
Adefovir is a member of the class of phosphonic acids that is methylphosphonic acid in which one of the methyl hydrogens has been replaced by a 2-(6-amino-9H-purin-9-yl)ethoxy group. An inhibitor of HIV-1 reverse transcriptase, the bis(t-butoxycarbonyloxymethyl) ester (dipivoxil ester) prodrug is used to treat chronic hepatitis B viral infection. It has a role as a HIV-1 reverse transcriptase inhibitor, a drug metabolite, an antiviral drug, a nephrotoxic agent and a DNA synthesis inhibitor. It is a member of 6-aminopurines, an ether and a member of phosphonic acids. It derives from an adenine. It is a conjugate acid of an adefovir(1-).|Adefovir is a Hepatitis B Virus Nucleoside Analog Reverse Transcriptase Inhibitor. The mechanism of action of adefovir is as a Nucleoside Reverse Transcriptase Inhibitor.|Adefovir dipivoxil is an acyclic nucleotide analogue of adenosine used either alone or in combination with other agents as therapy of chronic hepatitis B. Adefovir does not appear to be a significant cause of drug induced liver injury, but initiation of therapy and sudden withdrawal of therapy can induce a transient exacerbation of the underlying hepatitis B.|Adefovir is a nucleoside reverse transcriptase inhibitor analog of adenosine with activity against hepatitis B virus (HBV), herpes virus, and human immunodeficiency virus (HIV).
Adefovir Basic Attributes
273.19
273.19
1806241-263-5
6GQP90I798
DTXSID6046214
C61526
Off-white crystalline solid
2933990090
Characteristics
136
-2
white to beige
1.88
301 °C
632.5ºCat 760 mmHg
336.3±34.3 °C
1.769
0.1 M NaOH: ≥5mg/mL
-20°C Freezer
6.06X10-11 mm Hg at 25 deg C (est)
Henry's Law constant = 3.85X10-24 atm-cu m/mol at 25 °C (est)
pKa1 = 2.0; pKa2 = 6.8|pKa1 = 2.42 (hydroxyl); pKa2 = 3.65 (benzylimine); pKa3 = 7.17 (hydroxyl) (est)
Safety Information
III
6.1
2811
2
25
45
SZ6563500
T
P301 + P310
H301
SRP: Expired or waste pharmaceuticals shall carefully take into consideration applicable DEA, EPA, and FDA regulations. It is not appropriate to dispose by flushing the pharmaceutical down the toilet or discarding to trash. If possible return the pharmaceutical to the manufacturer for proper disposal being careful to properly label and securely package the material. Alternatively, the waste pharmaceutical shall be labeled, securely packaged and transported by a state licensed medical waste contractor to dispose by burial in a licensed hazardous or toxic waste landfill or incinerator.|SRP: At the time of review, regulatory criteria for small quantity disposal are subject to significant revision, however, household quantities of waste pharmaceuticals may be managed as follows: Mix with wet cat litter or coffee grounds, double bag in plastic, discard in trash.
The Approved Drug Products with Therapeutic Equivalence Evaluations identifies currently marketed prescription drug products, including adefovir dipivoxil, approved on the basis of safety and effectiveness by FDA under sections 505 of the Federal Food, Drug, and Cosmetic Act. /Adefovir dipivoxil/
|Danger|H301 (97.44%): Toxic if swallowed [Danger Acute toxicity, oral]|P264, P270, P301+P310, P321, P330, P405, and P501|Aggregated GHS information provided by 39 companies from 2 notifications to the ECHA C&L Inventory.
Toxicity
Serum aminotransferase elevations are common during or after therapy of hepatitis B, but appear to be due to exacerbations of the underlying HBV infection rather than hepatotoxicity. Sudden withdrawal of adefovir therapy can lead to an acute flare of hepatitis as viral levels suddenly rise. These withdrawal flares are usually transient and self-limited, but in rare instances are symptomatic and severe and can lead to death or need for liver transplantation. Instances of moderate serum aminotransferase elevations early during treatment have been described in clinical trials, but these elevations are usually transient and asymptomatic and are found in up to 25% of persons who start nucleoside analogue therapy of hepatitis B. Finally, development of antiviral resistance can be followed by a flare of the underlying hepatitis B as HBV DNA levels rise. Antiviral resistance to adefovir is rare during the first 1 to 2 years of therapy, but increasing rates are found with long-term therapy.
Potential increased risk of nephrotoxicity in patients receiving other nephrotoxic drugs (e.g., aminoglycosides, cyclosporine, tacrolimus, vancomycin, certain nonsteroidal anti-inflammatory agents [NSAIAs]); monitor closely.|Pharmacokinetic interaction (33% increase in peak plasma concentration and 23% increase in AUC of adefovirdipivoxil; no effect on pharmacokinetics of ibuprofen). Clinical importance unknown. May occur because of increased oral bioavailability of adefovir.|Tenofovir disoproxil fumarate and adefovir dipivoxil should not be used concomitantly for treatment of chronic HBV infection.|... Study GS-02-531 was an open-label, multicentre drug interaction trial to examine potential drug interactions between adefovir and tacrolimus in stable post-transplant recipients. Sixteen non-HBV-infected post-transplant recipients with median age 45.5 years (69% male, 44% Caucasian, 50% Hispanic and 6% Black) and stable hepatic and renal function on a stable daily dose of tacrolimus (2-10 mg total daily dose) were studied before (tacrolimus alone) and after co-administration of adefovir 10 mg daily for 14 days (Days 1-14). Pharmacokinetic (PK) analyses utilized non-compartmental methods. The median elimination half-life of tacrolimus was 14.47 and 12.59 h for Day 0 and Day 14 respectively. The geometric mean ratios for tacrolimus on Day 14 vs Day 0 were 105.2% [90% confidence interval (90% CI): 89.8-123%] for C(max) and 106.4% (90% CI: 92.9-122%) for AUC(tau). Both 90% CIs for the ratios were contained within the predefined lack of interaction bounds of 80 and 125% (i.e. within the bounds for the equivalence assessment), indicating that these PK parameters of tacrolimus are not significantly altered by co-administration of adefovir. Similarly, the observed adefovir PK parameters after 14 days of co-administration with tacrolimus were comparable to historical data in non-transplant patients receiving adefovir alone. Serum creatinine values were stable during the study period. There is no significant PK interaction between tacrolimus and adefovir co-administered to liver transplant recipients for 14 days.|Adefovir should not be used concurrently with VIREAD (tenofovir disoproxil fumarate) or tenofovir disoproxil fumarate-containing products including TRUVADA (emtricitabine/tenofovir disoproxil fumarate combination tablet), ATRIPLA (efavirenz/emtricitabine/tenofovir disoproxil fumarate combination tablet) and COMPLERA (emtricitabine/rilpivirine/tenofovir disoproxil fumarate).
Use with caution /in geriatric patients/ because of age-related decreases in hepatic, renal, and/or cardiac function and concomitant disease and drug therapy.|In patients at risk of or having underlying renal dysfunction, chronic administration of adefovir may result in nephrotoxicity. These patients should be monitored closely for renal function and may require dose adjustment.
Drug Information
Adefovir dipivoxil is an acyclic nucleotide analogue of adenosine used either alone or in combination with other agents as therapy of chronic hepatitis B. Adefovir does not appear to be a significant cause of drug induced liver injury, but initiation of therapy and sudden withdrawal of therapy can induce a transient exacerbation of the underlying hepatitis B.
Antiviral Agents
Phosphonic Acids; Adenine/analogs & derivatives; Antiviral Agents; Reverse Transcriptase Inhibitors|Adefovir is indicated for the treatment of chronic hepatitis B in patients 12 years of age and older with evidence of active viral replication and either evidence of persistent elevations in serum aminotransferases (ALT or AST) or histologically active disease. This indication is based on histological, virological, biochemical, and serological responses in adult patients with HBeAg+ and HBeAg- chronic hepatitis B with compensated liver function, and with clinical evidence of lamivudine-resistant hepatitis B virus with either compensated or decompensated liver function. /Included in US product label/|For patients 12 to less than 18 years of age, the indication is based on virological and biochemical responses in patients with HBeAg+ chronic hepatitis B virus infection with compensated liver function. /Included in US product label/|This study investigated the efficacy, safety, and pharmacokinetics of adefovir dipivoxil (ADV) in children and adolescents with chronic hepatitis B (CHB). A total of 173 treatment-naive and treatment-experienced children with hepatitis B e antigen (HBeAg)+ CHB were randomized to ADV or placebo. Randomization was stratified by age (2 to <7 years; >7 to <12 years; >12 to <18 years) and prior treatment. Significantly more ADV-treated subjects aged 12 to <18 years achieved the primary efficacy endpoint (serum hepatitis B virus [HBV] DNA <1,000 copies/mL and normal alanine aminotransferase) compared to placebo-treated subjects (23% versus 0%; P = 0.007). In the younger groups, differences between ADV and placebo at the end of blinded treatment were not statistically significant. More ADV-treated subjects had HBeAg seroconversion: 18 of 113 (15.9%) versus three of 57 (5.3%) (but P = 0.051), and more met the combined endpoint of HBeAg seroconversion, HBV DNA <1,000 copies/mL and normal alanine aminotransferase (12/113 versus 0/57; P = 0.009). No subject developed an ADV-associated mutation that has been linked to HBV DNA rebound (that is, mutations rtN236T or rtA181V). ADV plasma concentrations were comparable across groups and within the target range. ADV treatment was well tolerated; no new safety issues were identified. Treatment-related adverse events were reported for 12% of ADV-treated and 10% of placebo-treated subjects. After 48 weeks of ADV treatment, antiviral efficacy in subjects ages 12 to <18 years with HBeAg+ CHB was similar to that observed in a study in adult treatment-naive subjects with HBeAg+ CHB. ADV was not different from placebo in subjects aged 2 to 11 years despite adequate plasma ADV exposure in all three age groups. CONCLUSION: ADV showed significant antiviral efficacy in subjects aged 12 to 17 years with HBeAg+ CHB, but was not different from placebo in subjects aged 2 to 11 years.
/BOXED WARNING/ Severe acute exacerbations of hepatitis have been reported in patients who have discontinued anti-Hepatitis B therapy including adefovir. Hepatic function should be monitored closely with both clinical and laboratory follow-up for at least several months in patients who discontinue anti-Hepatitis B therapy. If appropriate, resumption of anti-Hepatitis B therapy may be warranted.|/BOXED WARNING/ In patients at risk of or having underlying renal dysfunction, chronic administration of adefovir may result in nephrotoxicity. These patients should be monitored closely for renal function and may require dose adjustment.|/BOXED WARNING/ HIV resistance may emerge in chronic hepatitis B patients with unrecognized or untreated Human Immunodeficiency Virus (HIV) infection treated with anti-hepatitis B therapies, such as therapy with adefovir, that may have activity against HIV.|Lactic acidosis and severe hepatomegaly with steatosis, including fatal cases, have been reported with the use of nucleoside analogs alone or in combination with other antiretrovirals.|For more Drug Warnings (Complete) data for Adefovir (20 total), please visit the HSDB record page.
There was no evidence of emergence of HBV resistant to adefovir dipivoxil during 48-week clinical studies evaluating adefovir dipivoxil monotherapy in HBV-infected patients; however, resistance or diminished virologic response was reported in some patients with HBV infection following at least 56 weeks of adefovir dipivoxil monotherapy.|Genotypic analysis of isolates obtained from patients who showed renewed evidence of HBV replication while receiving adefovir dipivoxil indicates that mutations at rtN236T and rtA181T/V are associated with resistance to adefovir. After 96 weeks of adefovir dipivoxil monotherapy, the N236T mutation was detected in 2 patients (1.6% of patients) and this mutation was associated with reduced in vitro susceptibility to the drug. In studies of patients who received adefovir dipivoxil for up to 5 years, mutations associated with adefovir resistance developed in 20-42% of patients.|Cross-resistance can occur among the nucleoside antivirals used for treatment of HBV. Some strains of HBV may be cross-resistant to both adefovir and lamivudine. Preliminary data suggest that the N236T mutation alone does not confer cross-resistance to lamivudine since isolates with the mutation remained susceptible to lamivudine in vitro and in vivo, but cross-resistance to adefovir and lamivudine can occur in isolates with the rtA181V mutation. In vitro studies indicate that some HBV with mutations associated with adefovir resistance may have decreased susceptibility to entecavir.|This study was conducted to clarify the resistance profile of a novel mutation pattern emerging during lamivudine (3TC) therapy and showing cross-resistance to adefovir dipivoxil (ADV) in a patient with chronic hepatitis B. Successful suppression of hepatitis B virus (HBV) replication by sequential therapy of 9 MU thrice weekly interferon (IFN) and 3TC was followed by genotypical resistance detected at month 28 of therapy (month 19 of lamivudine treatment). ADV was added to 3TC therapy on month 44 of antiviral treatment. Neither alanine aminotransferase normalization nor a stable decrease in HBV viral load was observed, although ADV was used for more than 40 months. The HBV pol region was amplified from serum samples obtained before and after ADV treatment. The complete genome was cloned into a TA vector. PCR products and 7-10 clones from each cloned vector were sequenced. A novel mutation, A181S, in the reverse transcriptase gene leading to a conversion of W172C in the overlapping surface antigen gene was detected along with a M2041 mutation. The complete genome comprising the A181S+M2041 pattern was cloned into an expression vector and its in vitro susceptibility to 3TC, ADV, tenofovir (PMPA), clevudine (L-FMAU) and emtricitabine (FTC) were determined in transiently transfected Huh7 cells. This mutation pattern displayed more than 1000-fold resistance to the nucleoside analogues 3TC and FTC and approximately sixfold resistance to L-FMAU, while it confers 28.23- and 5.57-fold resistance for the nucleotide analogues ADV and PMPA, respectively. CONCLUSION: A new mutation pattern, A181S+M2041, arising under lamivudine treatment confers cross-resistance to ADV both in vivo and in vitro.
Agents used in the prophylaxis or therapy of VIRUS DISEASES. Some of the ways they may act include preventing viral replication by inhibiting viral DNA polymerase; binding to specific cell-surface receptors and inhibiting viral penetration or uncoating; inhibiting viral protein synthesis; or blocking late stages of virus assembly. (See all compounds classified as Antiviral Agents.)|Inhibitors of reverse transcriptase (RNA-DIRECTED DNA POLYMERASE), an enzyme that synthesizes DNA on an RNA template. (See all compounds classified as Reverse Transcriptase Inhibitors.)
Following oral administration of adefovir dipivoxil, approximate bioavailability of adefovir is 59%. A single 10-mg oral dose of adefovir dipivoxil in adults results in peak adefovir plasma concentration within 0.58-4 hours.|4% or less of adefovir is bound to plasma or serum proteins.|In vitro binding of adefovir to human plasma or human serum proteins is less than or equal to 4% over the adefovir concentration range of 0.1 to 25 ug/mL. The volume of distribution at steady-state following intravenous administration of 1.0 or 3.0 mg/kg/day is 392 +/- 75 and 352 +/- 9 mL/kg, respectively.|Food does not affect the area under the concentration-time curve (AUC) of adefovir.|For more Absorption, Distribution and Excretion (Complete) data for Adefovir (10 total), please visit the HSDB record page.
9-(2-Phosphonylmethoxyethyl)adenine (PMEA) was the only metabolite formed after oral administration of bis-POM PMEA. Three metabolites were detected after oral administration of either bis-(phenyl) PMEA or bis-(o-ethoxyphenyl) PMEA to rats: PMEA, the corresponding monoester, and 2-adenylacetic acid. The major metabolite of bis-(phenyl) PMEA was 2-adenylacetic acid following oral administration. 2-Adenylacetic acid appears to have been formed from the intact prodrugs by a P450 mediated oxidation of the ethyl side chain.|Following oral administration, adefovir dipivoxil is converted to the active adefovir.|PMEA is a known human metabolite of pradefovir.
Plasma adefovir concentrations declined in a biexponential manner with a terminal elimination half-life of 7.48 +/- 1.65 hours.|... Diphosphorylated ... PMEA has a relatively long intracellular half-life (16-18 hr) ...
Adefovir dipivoxil is a prodrug of adefovir, an acyclic nucleotide analog antiviral agent. Following initial diester hydrolysis in vivo to form adefovir, the drug undergoes subsequent phosphorylation by cellular enzymes to form its active metabolite, adefovir diphosphate. Adefovir diphosphate inhibits hepatitis B virus (HBV) DNA polymerase (reverse transcriptase) by competing with the natural substrate deoxyadenosine triphosphate and by causing DNA chain termination after its incorporation into viral DNA. Adefovir diphosphate is a weak inhibitor of human DNA polymerases, including alpha- and gamma-polymerases.|Adefovir is an acyclic nucleotide analog of adenosine monophosphate which is phosphorylated to the active metabolite adefovir diphosphate by cellular kinases. Adefovir diphosphate inhibits HBV DNA polymerase (reverse transcriptase) by competing with the natural substrate deoxyadenosine triphosphate and by causing DNA chain termination after its incorporation into viral DNA. The inhibition constant (Ki) for adefovir diphosphate for HBV DNA polymerase was 0.1 uM. Adefovir diphosphate is a weak inhibitor of human DNA polymerases alpha and gamma with Ki values of 1.18 uM and 0.97 uM, respectively.|9-(2-Phosphonylmethoxyethyl)adenine (PMEA) is a potent and selective inhibitor of retrovirus (i.e., human immunodeficiency virus) replication in vitro and in vivo. Uptake of PMEA by human MT-4 cells and subsequent conversion to the mono- and diphosphorylated metabolites (PMEAp and PMEApp) are dose-dependent and occur proportionally with the initial extracellular PMEA concentrations. Adenylate kinase is unable to phosphorylate PMEA. However, 5-phosphoribosyl-1-pyrophosphate synthetase directly converts PMEA to PMEApp with a Km of 1.47 mM and a Vmax that is 150-fold lower than the Vmax for AMP. ATPase, 5'-phosphodiesterase, and nucleoside diphosphate kinase are able to dephosphorylate PMEApp to PMEAp, albeit to a much lower extent than the dephosphorylation of ATP. PMEApp has a relatively long intracellular half-life (16-18 hr) and has a much higher affinity for the human immunodeficiency virus-specified reverse transcriptase than for the cellular DNA polymerase alpha (Ki/Km: 0.01 and 0.60, respectively). PMEApp is at least as potent an inhibitor of human immunodeficiency virus reverse transcriptase as 2',3'-dideoxyadenosine 5'-triphosphate. Being an alternative substrate to dATP, PMEApp acts as a potent DNA chain terminator, and this may explain its anti-retrovirus activity.
If overdose occurs the patient must be monitored for evidence of toxicity, and standard supportive treatment applied as necessary. Following a 10 mg single dose of adefovir, a four-hour hemodialysis session removed approximately 35% of the adefovir dose.|Removed by hemodialysis; effect of peritoneal dialysis unknown.|/SRP:/ Immediate first aid: Ensure that adequate decontamination has been carried out. If patient is not breathing, start artificial respiration, preferably with a demand valve resuscitator, bag-valve-mask device, or pocket mask, as trained. Perform CPR if necessary. Immediately flush contaminated eyes with gently flowing water. Do not induce vomiting. If vomiting occurs, lean patient forward or place on the left side (head-down position, if possible) to maintain an open airway and prevent aspiration. Keep patient quiet and maintain normal body temperature. Obtain medical attention. /Poisons A and B/|/SRP:/ Basic treatment: Establish a patent airway (oropharyngeal or nasopharyngeal airway, if needed). Suction if necessary. Watch for signs of respiratory insufficiency and assist ventilations if needed. Administer oxygen by nonrebreather mask at 10 to 15 L/min. Monitor for pulmonary edema and treat if necessary ... . Monitor for shock and treat if necessary ... . Anticipate seizures and treat if necessary ... . For eye contamination, flush eyes immediately with water. Irrigate each eye continuously with 0.9% saline (NS) during transport ... . Do not use emetics. For ingestion, rinse mouth and administer 5 mL/kg up to 200 mL of water for dilution if the patient can swallow, has a strong gag reflex, and does not drool ... . Cover skin burns with dry sterile dressings after decontamination ... . /Poisons A and B/|/SRP:/ Advanced treatment: Consider orotracheal or nasotracheal intubation for airway control in the patient who is unconscious, has severe pulmonary edema, or is in severe respiratory distress. Positive-pressure ventilation techniques with a bag valve mask device may be beneficial. Consider drug therapy for pulmonary edema ... . Consider administering a beta agonist such as albuterol for severe bronchospasm ... . Monitor cardiac rhythm and treat arrhythmias as necessary ... . Start IV administration of D5W /SRP: "To keep open", minimal flow rate/. Use 0.9% saline (NS) or lactated Ringer's if signs of hypovolemia are present. For hypotension with signs of hypovolemia, administer fluid cautiously. Watch for signs of fluid overload ... . Treat seizures with diazepam or lorazepam ... . Use proparacaine hydrochloride to assist eye irrigation ... . /Poisons A and B/
/SIGNS AND SYMPTOMS/ Doses of adefovir dipivoxil 500 mg daily for 2 weeks and 250 mg daily for 12 weeks have been associated with gastrointestinal side effects.|/CASE REPORTS/ This report investigates the pathomechanism of acute renal failure caused by toxic acute tubular necrosis after treatment with the antiretroviral agent adefovir. A 38-year-old white homosexual man with human immunodeficiency virus infection and no history of opportunistic infections was maintained on highly active antiretroviral therapy (HAART), including hydroxyurea, stavudine, indinavir, ritonavir, and adefovir dipivoxil. Histologic examination of the renal biopsy showed severe acute tubular degenerative changes primarily affecting the proximal tubules. On ultrastructural examination, proximal tubular mitochondria were extremely enlarged and dysmorphic with loss and disorientation of their cristae. Functional histochemical stains for mitochondrial enzymes revealed focal tubular deficiency of cytochrome C oxidase (COX), a respiratory chain enzyme partially encoded by mitochondrial DNA (mtDNA), with preservation of succinate dehydrogenase, a respiratory chain enzyme entirely encoded by nuclear DNA (nDNA). Immunoreactivity for COX subunit I (encoded by mtDNA) was weak to undetectable in most tubular epithelial cells, although immunoreactivities for COX subunit IV and iron sulfur subunit of respiratory complex III (both encoded by nDNA) were well preserved in all renal tubular cells. Single-renal tubule polymerase chain reaction revealed marked reduction of mtDNA in COX-immunodeficient renal tubules. We conclude that adefovir-induced nephrotoxicity is mediated by depletion of mtDNA from proximal tubular cells through inhibition of mtDNA replication. This novel form of nephrotoxicity may serve as a prototype for other forms of renal toxicity caused by reverse transcriptase inhibitors.|/CASE REPORTS/ A 56-year-old male patient received adefovir dipivoxil (10 mg/day) for chronic hepatitis B resistant to lamivudine. On the fifth week of treatment, the platelet count dropped to 26 x 10(3) mm(-3); anti-platelet antibodies were detectable in serum. The drug was discontinued and the platelet count improved spontaneously. A re-challenge with adefovir caused a new episode of thrombocytopenia, again after a five-week treatment period. To date, thrombocytopenia has not been described after adefovir therapy for chronic hepatitis B and seems to be a rare event.|/CASE REPORTS/ Fanconi syndrome results from generalised renal tubular toxicity and, owing to phosphate wasting can cause hypophosphatemic osteomalacia. /Investigators/ diagnosed Fanconi syndrome in conjunction with severe osteomalacia in 2 hepatitis B-positive patients on standard-dose adefovir therapy. The first patient was a 40-year-old male with a 5 month history of bone pain involving his knees, ankles, and ribs. He had been receiving adefovir dipivoxil for 27 months before the development of hypophosphataemia, urinary phosphate wasting, and aminoaciduria. These abnormalities resolved within weeks of discontinuation of adefovir dipivoxil and supplementation with elemental phosphate, calcium carbonate, and cholecalciferol. The second patient was a 53-year-old female with a 6 month history of lethargy, cachexia, and generalized bone pain. She had been receiving adefovir for 64 months before the development of these symptoms. She had hypophosphataemia, hypocalcaemia, metabolic acidosis, and severe vitamin D deficiency, but initially no urinary phosphate wasting. Four months of high-dose cholecalciferol supplementation unmasked her Fanconi syndrome including significant urinary phosphate wasting. The patient improved within weeks of discontinuation of adefovir and supplementation with elemental phosphate, calcium carbonate, and calcitriol. ...|For more Human Toxicity Excerpts (Complete) data for Adefovir (11 total), please visit the HSDB record page.
9-(2-phosphonomethoxyethyl)adenine
Adefovir Use and Manufacturing
Preparation: A. Holy, I. Rosenberg, EP 206459; eidem, US 4808716 (1986, 1989 both to Ceskoslov. Akad. Ved)
Used as an antiviral
Adefovir dipivoxil is available as tablets. Each tablet contains 10 mg of adefovir dipivoxil. The tablets are white and debossed with "10" and "GILEAD" on one side and the stylized figure of a liver on the other side.
Liquid chromatography/tandem mass spectrometry|UV Spectrophotometry|HPLC determination.
Computed Properties
Molecular Weight:273.19
XLogP3:-2
Hydrogen Bond Donor Count:3
Hydrogen Bond Acceptor Count:8
Rotatable Bond Count:5
Exact Mass:273.06269088
Monoisotopic Mass:273.06269088
Topological Polar Surface Area:136
Heavy Atom Count:18
Complexity:327
Covalently-Bonded Unit Count:1
Compound Is Canonicalized:Yes
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