Pravastatin
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Pravastatin
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CAS No:
81093-37-0
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Formula:
C23H36O7
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Chemical Name:
Pravastatin
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Synonyms:
1-Naphthaleneheptanoic acid,1,2,6,7,8,8a-hexahydro-β,δ,6-trihydroxy-2-methyl-8-[(2S)-2-methyl-1-oxobutoxy]-,(βR,δR,1S,2S,6S,8S,8aR)-;1-Naphthaleneheptanoic acid,1,2,6,7,8,8a-hexahydro-β,δ,6-trihydroxy-2-methyl-8-(2-methyl-1-oxobutoxy)-,[1S-[1α(βS*,δS*),2α,6α,8β(R*),8aα]]-;(βR,δR,1S,2S,6S,8S,8aR)-1,2,6,7,8,8a-Hexahydro-β,δ,6-trihydroxy-2-methyl-8-[(2S)-2-methyl-1-oxobutoxy]-1-naphthaleneheptanoic acid;Pravastatin;Eptastatin;3β-Hydroxycompactin;Mevalothin;Pravastatin acid;Cholestate;103382-89-4;87068-19-7
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Categories:
Active Pharmaceutical Ingredients > Circulatory System Drugs
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CAS No:
Description
Pravastatin is an HMG-CoA reductase inhibitor against sterol synthesis with IC50 of 5.6 μM.Target: HMG-CoA reductasePravastatin (marketed as Pravachol or Selektine) is a member of the drug class of statins, used in combination with diet, exercise, and weight-loss for lowering cholesterol and preventing cardiovascular disease.Pravastatin is primarily used for the treatment of dyslipidemia and the prevention of cardiovascular disease. It is recommended to be used only after other measures
Solid
Pravastatin is a carboxylic ester resulting from the formal condensation of (S)-2-methylbutyric acid with the hydroxy group adjacent to the ring junction of (3R,5R)-7-[(1S,2S,6S,8S,8aR)-6,8-dihydroxy-2-methyl-1,2,6,7,8,8a-hexahydronaphthalen-1-yl]-3,5-dihydroxyheptanoic acid. Derived from microbial transformation of mevastatin, pravastatin is a reversible inhibitor of 3-hydroxy-3-methylglutaryl-coenzyme A (HMG-CoA). The sodium salt is used for lowering cholesterol and preventing cardiovascular disease. It is one of the lower potency statins, but has the advantage of fewer side effects compared with lovastatin and simvastatin. It has a role as a metabolite, an anticholesteremic drug, a xenobiotic and an environmental contaminant. It is a 3-hydroxy carboxylic acid, a hydroxy monocarboxylic acid, a carboxylic ester, a secondary alcohol, a carbobicyclic compound and a statin (semi-synthetic). It derives from a (3R,5R)-7-[(1S,2S,6S,8S,8aR)-6,8-dihydroxy-2-methyl-1,2,6,7,8,8a-hexahydronaphthalen-1-yl]-3,5-dihydroxyheptanoic acid and a (S)-2-methylbutyric acid. It is a conjugate acid of a pravastatin(1-).|Pravastatin is the 6-alpha-hydroxy acid form of [mevastatin]. Pravastatin was firstly approved in 1991 becoming the second available statin in the United States. It was the first statin administered as the active form and not as a prodrug. This drug was developed by Sankyo Co. Ltd.; however, the first approved pravastatin product was developed by Bristol Myers Squibb and FDA approved in 1991. Pravastatin is made through a fermentation process in which [mevastatin] is first obtained. The manufacturing process is followed by the hydrolysis of the lactone group and the biological hydroxylation with Streptomyces carbophilus to introduce the allylic 6-alcohol group.|Pravastatin is a HMG-CoA Reductase Inhibitor. The mechanism of action of pravastatin is as a Hydroxymethylglutaryl-CoA Reductase Inhibitor.|Pravastatin is a commonly used cholesterol lowering agent (statin) that is associated with mild, asymptomatic and self-limited serum aminotransferase elevations during therapy, and rarely with clinically apparent acute liver injury.|Pravastatin is a synthetic lipid-lowering agent. Pravastatin competitively inhibits hepatic hydroxymethyl-glutaryl coenzyme A (HMG-CoA) reductase, the enzyme which catalyzes the conversion of HMG-CoA to mevalonate, a key step in cholesterol synthesis. Pravastatin lowers plasma cholesterol and lipoprotein levels, and modulates immune responses by suppressing MHC II (major histocompatibility complex II) on interferon gamma-stimulated, antigen-presenting cells such as human vascular endothelial cells. (NCI04)|An antilipemic fungal metabolite isolated from cultures of Nocardia autotrophica. It acts as a competitive inhibitor of HMG CoA reductase (HYDROXYMETHYLGLUTARYL COA REDUCTASES).
Pravastatin Basic Attributes
424.53
424.53
KXO2KT9N0G
DTXSID6023498
C62070
C10BA03|C10AA03|C - Cardiovascular system
Characteristics
124
2.2
white powder
1.2±0.1 g/cm3
171.2-173 °C
634.5±55.0 °C at 760 mmHg
213.2±25.0 °C
1.555
H2O: 19 mg/mL
2-8°C
6.04X10-16 mm Hg at 25 deg C (est)
4.2None
Henry's Law constant = 2.01X10-15 atm-cu m/mol at 25 °C (est)
4.2
206.51 Ų [M-H]-
MW: 446.52. Odorless, white to off-white, fine or crystalline powder. Hygroscopic. UV max (ethanol): 230, 237, 245 nm. Freely soluble in water, methanol; soluble in alcohol; slightly soluble in isopropanol; very slightly soluble in acetonitrile. Practically insoluble in acetone, ethyl acetate, chlroform, ether. /Pravastatin sodium/|Colorless plate crystals. MP: 138-142 °C. Specific optical rotation: +194.0 deg at 22 °C/D ( c = 1 in methanol). UV max ethanol: 230, 237, 245 /Pravastatin lactone/|Hydroxyl radical reaction rate constant = 1.65X10-10 cu cm/molecule-sec at 25 °C (est)|Ozone reaction rate constant = 2.13X10-16 cu cm/molecule-sec at 25 °C (est)
Safety Information
2
11-34
16-26-36/37/39-45
QJ7185000
F,C
Stable under recommended storage conditions. /Pravastatin sodium salt hydrate/
P210, P240, P241, P260, P264, P273, P280, P301+P330+P331, P303+P361+P353, P304+P340, P305+P351+P338, P310, P321, P363, P370+P378, P391, P405, P501
H228
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.|Product: Offer surplus and non-recyclable solutions to a licensed disposal company; Contaminated packaging: Dispose of as unused product. /Pravastatin sodium salt hydrate/
Incompatible materials: Strong oxidizing agents. /Pravastatin sodium salt hydrate/
The Approved Drug Products with Therapeutic Equivalence Evaluations identifies currently marketed prescription drug products, including pravastatin sodium, approved on the basis of safety and effectiveness by FDA under sections 505 of the Federal Food, Drug, and Cosmetic Act. /Pravastatin sodium/
|Danger|H228 (100%): Flammable solid [Danger Flammable solids]|P210, P240, P241, P260, P264, P273, P280, P301+P330+P331, P303+P361+P353, P304+P340, P305+P351+P338, P310, P321, P363, P370+P378, P391, P405, and P501|Aggregated GHS information provided by 9 companies from 1 notifications to the ECHA C&L Inventory. Each notification may be associated with multiple companies.
Eye/face protection: Use equipment for eye protection tested and approved under appropriate government standards such as NIOSH (US) or EN 166(EU). /Pravastatin sodium salt hydrate/|Skin protection: Handle with gloves. /Pravastatin sodium salt hydrate/|Body Protection: Choose body protection in relation to its type, to the concentration and amount of dangerous substances, and to the specific work-place. /Pravastatin sodium salt hydrate/|Respiratory protection: Respiratory protection is not required. Where protection from nuisance levels of dusts are desired, use type N95 (US) or type P1 (EN 143) dust masks. Use respirators and components tested and approved under appropriate government standards such as NIOSH (US) or CEN (EU). /Pravastatin sodium salt hydrate/
Suitable extinguishing media: Use water spray, alcohol-resistant foam, dry chemical or carbon dioxide. /Pravastatin sodium salt hydrate/|Advice for firefighters: Wear self contained breathing apparatus for fire fighting if necessary. /Pravastatin sodium salt hydrate/
ACCIDENTAL RELEASE MEASURES: Personal precautions, protective equipment and emergency procedures: Avoid dust formation. Avoid breathing vapors, mist or gas. Environmental precautions: Do not let product enter drains. Methods and materials for containment and cleaning up: Sweep up and shovel. Keep in suitable, closed containers for disposal. /Pravastatin sodium salt hydrate/
ACCIDENTAL RELEASE MEASURES: Personal precautions, protective equipment and emergency procedures: Avoid dust formation. Avoid breathing vapors, mist or gas. Environmental precautions: Do not let product enter drains. /Pravastatin sodium salt hydrate/|Precautions for safe handling: Provide appropriate exhaust ventilation at places where dust is formed. /Pravastatin sodium salt hydrate/|Appropriate engineering controls: General industrial hygiene practice. /Pravastatin sodium salt hydrate/|Gloves must be inspected prior to use. Use proper glove removal technique (without touching glove's outer surface) to avoid skin contact with this product. Dispose of contaminated gloves after use in accordance with applicable laws and good laboratory practices. Wash and dry hands. /Pravastatin sodium salt hydrate/|SRP: Local exhaust ventilation should be applied wherever there is an incidence of point source emissions or dispersion of regulated contaminants in the work area. Ventilation control of the contaminant as close to its point of generation is both the most economical and safest method to minimize personnel exposure to airborne contaminants. Ensure that the local ventilation moves the contaminant away from the worker.
Pravastatin was not reported (limit of quantitation = 0.27 ug/L) in influent to a wastewater treatment plant of Lausanne, Switzerland. It was however detected in 2 samples of effluent into Vidy Bay, Lake Geneva, Switzerland at concentrations of approximately 0.26 ug/L. Sampling was conducted between Feb 20 and March 11, 2009(1).
Toxicity
The reported oral LD50 of pravastatin in mice is of 8939 mg/kg.[MSDS] There haven't been significant overdosage reports however, in the case of overdosage, symptomatic treatment is recommended along with laboratory monitoring and supportive measures. In carcinogenic studies, high dose administration of pravastatin has been reported to increase the incidence of hepatocellular carcinomas in males and lung carcinomas in females. There is no evidence relating the administration of pravastatin with mutagenicity in different assays not to produce effects in fertility or reproductive potential.|IDENTIFICATION AND USE: Pravastatin, a hydroxymethylglutaryl-CoA (HMG-CoA) reductase inhibitor (i.e., statin), is an antilipemic agent. Pravastatin occurs as an odorless, white to off-white, fine or crystalline powder formulated into a tablet. It is used as an adjunct to lifestyle modifications for prevention of cardiovascular events and for the management of dyslipidemias. HUMAN EXPOSURE AND TOXICITY: Pravastatin is contraindicated for use in pregnant woman because of the potential for fetal harm. There have also been rare reports of fatal and non-fatal hepatic failure in patients taking statins, including pravastatin. Also, rare cases of rhabdomyolysis with acute renal failure secondary to myoglobinuria have been reported with pravastatin and other drugs in this class. A history of renal impairment may be a risk factor for the development of rhabdomyolysis. ANIMAL STUDIES: Acute studies were performed in both mice and rats. Signs of toxicity in mice were decreased activity, irregular respiration, ptosis, lacrimation, soft stool, diarrhea, urine-stained abdomen, ataxia, creeping behavior, loss of righting reflex, hypothermia, urinary incontinence, pilo-erection convulsion and/or prostration. Signs of toxicity in rats were soft stool, diarrhea, decreased activity, irregular respiration, waddling gait, and ataxia, loss of righting reflex and/or weight loss. In a 2-year study in rats fed pravastatin at doses of 10, 30, or 100 mg/kg bw, there was an increased incidence of hepatocellular carcinomas in males at the highest dose. Likewise, in a 2-year study in mice fed pravastatin at doses of 250 and 500 mg/kg/day, there was an increased incidence of hepatocellular carcinomas in males and females; lung adenomas in females were increased. In dogs, pravastatin sodium was toxic at high doses and caused cerebral hemorrhage with clinical evidence of acute CNS toxicity such as ataxia, convulsions. The threshold dose for CNS toxicity is 25 mg/kg. Cerebral hemorrhages have not been observed in any other laboratory species and the CNS toxicity in dogs may represent a species-specific effect. In pregnant rats given oral gavage doses of 4, 20, 100, 500, and 1000 mg/kg/day from gestation days 7 through 17 (organogenesis) increased mortality of offspring and increased cervical rib skeletal anomalies were observed at >/= 100 mg/kg/day. In pregnant rats given oral gavage doses of 10, 100, and 1000 mg/kg/day from gestation day 17 through lactation day 21 (weaning), increased mortality of offspring and developmental delays were observed at >/= 100 mg/kg/day. In a fertility study in adult rats with daily doses up to 500 mg/kg, pravastatin did not produce any adverse effects on fertility or general reproductive performance. No evidence of mutagenicity was observed in vitro, with or without metabolic activation, in the following studies: microbial mutagen tests, using mutant strains of Salmonella typhimurium or Escherichia coli; a forward mutation assay in L5178Y TK +/- mouse lymphoma cells; a chromosomal aberration test in hamster cells; and a gene conversion assay using Saccharomyces cerevisiae. In addition, there was no evidence of mutagenicity in either a dominant lethal test in mice or a micronucleus test in mice.
Pravastatin therapy is associated with mild, asymptomatic and usually transient serum aminotransferase elevations. In summary analyses of large scale studies with prospective monitoring, ALT elevations above normal occurred in 3% to 15% of patients; but levels above 3 times the upper limit of normal (ULN) occurred in only 0.7% of pravastatin treated compared to 0.3% of placebo recipients. These elevations were more common with higher doses of pravastatin, being 2.3% with 80 mg daily. Most of these elevations were self-limited and did not require dose modification. Pravastatin has been only rarely associated with clinically apparent hepatic injury with symptoms or jaundice at a rate estimated to be 1 per 100,000 users. In the case reports, latency varied from 2 to 9 months and the pattern of serum enzyme elevations from cholestatic to hepatocellular. Recovery was complete within a few months. Rash, fever and eosinophilia were uncommon as were autoantibodies, but few cases have been reported and the full clinical syndrome not well defined. Pravastatin appears to be less likely to cause clinically apparent liver injury than atorvastatin, simvastatin and rosuvastatin.
The HMG-CoA reductase inhibitors are a class of drugs also known as statins. These drugs are effective and widely prescribed for the treatment of hypercholesterolemia and prevention of cardiovascular morbidity and mortality. Seven statins are currently available: atorvastatin, fluvastatin, lovastatin, pitavastatin, pravastatin, rosuvastatin and simvastatin. Although these drugs are generally well tolerated, skeletal muscle abnormalities from myalgia to severe lethal rhabdomyolysis can occur. Factors that increase statin concentrations such as drug-drug interactions can increase the risk of these adverse events. Drug-drug interactions are dependent on statins' pharmacokinetic profile: simvastatin, lovastatin and atorvastatin are metabolized through cytochrome P450 (CYP) 3A, while the metabolism of the other statins is independent of this CYP. All statins are substrate of organic anion transporter polypeptide 1B1, an uptake transporter expressed in hepatocyte membrane that may also explain some drug-drug interactions. Many HIV-infected patients have dyslipidemia and comorbidities that may require statin treatment. HIV-protease inhibitors (HIV PIs) are part of recommended antiretroviral treatment in combination with two reverse transcriptase inhibitors. All HIV PIs except nelfinavir are coadministered with a low dose of ritonavir, a potent CYP3A inhibitor to improve their pharmacokinetic properties. Cobicistat is a new potent CYP3A inhibitor that is combined with elvitegravir and will be combined with HIV-PIs in the future. The HCV-PIs boceprevir and telaprevir are both, to different extents, inhibitors of CYP3A. This review summarizes the pharmacokinetic properties of statins and PIs with emphasis on their metabolic pathways explaining clinically important drug-drug interactions. Simvastatin and lovastatin metabolized through CYP3A have the highest potency for drug-drug interaction with potent CYP3A inhibitors such as ritonavir- or cobicistat-boosted HIV-PI or the hepatitis C virus (HCV) PI, telaprevir or boceprevir, and therefore their coadministration is contraindicated. Atorvastatin is also a CYP3A substrate, but less potent drug-drug interactions have been reported with CYP3A inhibitors. Non-CYP3A-dependent statin concentrations are also affected although to a lesser extent when coadministered with HIV or HCV PIs, mainly through interaction with OATP1B1, and treatment should start with the lowest available statin dose. Effectiveness and occurrence of adverse effects should be monitored at regular time intervals.|The risk of skeletal muscle effects may be enhanced when pravastatin is used in combination with niacin; a reduction in Pravachol dosage should be considered in this setting.|Because it is known that the risk of myopathy during treatment with hydroxymethylglutaryl-coenzyme A (HMG-CoA) reductase inhibitors is increased with concurrent administration of other fibrates, Pravachol should be administered with caution when used concomitantly with other fibrates|Due to an increased risk of myopathy/rhabdomyolysis when hydroxymethylglutaryl-coenzyme A (HMG-CoA) reductase inhibitors are coadministered with gemfibrozil, concomitant administration of Pravachol with gemfibrozil should be avoided|For more Interactions (Complete) data for Pravastatin (16 total), please visit the HSDB record page.
LD50 Dog (male) oral >800 mg/kg|LD50 Rat (female) sc 4455 mg/kg|LD50 Rat (male) sc 3172 mg/kg|LD50 Rat (female) iv 440 mg/kg|For more Non-Human Toxicity Values (Complete) data for Pravastatin (12 total), please visit the HSDB record page.
Active liver disease or unexplained persistent transaminase elevations are contraindications to the use of pravastatin. Caution should be exercised when pravastatin is administered to patients who have a recent (<6 months) history of liver disease, have signs that may suggest liver disease (e.g., unexplained aminotransferase elevations, jaundice), or are heavy users of alcohol.|Pravachol is contraindicated for use in pregnant woman because of the potential for fetal harm. As safety in pregnant women has not been established and there is no apparent benefit to therapy with Pravachol during pregnancy, Pravachol should be immediately discontinued as soon as pregnancy is recognized. Limited published data on the use of Pravachol in pregnant women are insufficient to determine a drug-associated risk of major congenital malformations or miscarriage.
Due its polarity, pravastatin binding to plasma proteins is very limited and the bound form represents only about 43-48% of the administered dose. However, the activity of p-glycoprotein in luminal apical cells and OATP1B1 produce significant changes to pravastatin distribution and elimination.
Pravastatin's production and administration as a medication(1) may result in its release to the environment through various waste streams(SRC).
TERRESTRIAL FATE: Based on a classification scheme(1), an estimated Koc value of 250(SRC), determined from a structure estimation method(2), indicates that pravastatin is expected to have moderate mobility in soil(SRC). The estimates pKa of pravastatin is 4.2(3), indicating that this compound will exist partially in the anion form in the environment and anions generally do not adsorb more strongly to soils containing organic carbon and clay than their neutral counterparts(4). Volatilization of pravastatin from moist soil surfaces is not expected to be an important fate process(SRC) given an estimated Henry's Law constant of 2.0X10-15 atm-cu m/mole(SRC), using a fragment constant estimation method(5). Pravastatin is not expected to volatilize from dry soil surfaces(SRC) based upon an estimated vapor pressure of 6.0X10-16 mm Hg at 25 °C(SRC), determined from a fragment constant method(2). Biodegradation data in soil were not available(SRC, 2017).|AQUATIC FATE: Based on a classification scheme(1), an estimated Koc value of 250(SRC), determined from a structure estimation method(2), indicates that pravastatin is not expected to adsorb to suspended solids and sediment(SRC). Volatilization from water surfaces is not expected(3) based upon an estimated Henry's Law constant of 2.0X10-15 atm-cu m/mole((SRC), developed using a fragment constant estimation method(4). According to a classification scheme(5), an estimated BCF of 3(SRC), from its log Kow of 2.18(6) and a regression-derived equation(2), suggests the potential for bioconcentration in aquatic organisms is low(SRC). Biodegradation data in water were not available(SRC, 2017).|ATMOSPHERIC FATE: According to a model of gas/particle partitioning of semivolatile organic compounds in the atmosphere(1), pravastatin, which has an estimated vapor pressure of 6.0X10-16 mm Hg at 25 °C(SRC), determined from a fragment constant method(2), is expected to exist solely in the particulate phase in the ambient atmosphere. Particulate-phase pravastatin may be removed from the air by wet and dry deposition(SRC). Pravastatin contains chromophores that absorb at wavelengths >290 nm(3) and, therefore, may be susceptible to direct photolysis by sunlight(SRC).
A base-catalyzed second-order hydrolysis rate constant of 1.5X10-3 L/mole-sec(SRC) was estimated using a structure estimation method(1); this corresponds to half-lives of 143 and 14 years at pH values of 7 and 8, respectively(1). Pravastatin contains chromophores that absorb at wavelengths >290 nm(2) and, therefore, may be susceptible to direct photolysis by sunlight(SRC).
An estimated BCF of 3 was calculated in fish for pravastatin(SRC), using a log Kow of 2.18(1) and a regression-derived equation(2). According to a classification scheme(3), this BCF suggests the potential for bioconcentration in aquatic organisms is low(SRC).
Using a structure estimation method based on molecular connectivity indices(1), the Koc of pravastatin can be estimated to be 250(SRC). According to a classification scheme(2), this estimated Koc value suggests that pravastatin is expected to have moderate mobility in soil. The pKa of pravastatin is 4.2(3), indicating that this compound will exist partially in the anion form in the environment and anions generally do not adsorb more strongly to soils containing organic carbon and clay than their neutral counterparts(4).
The Henry's Law constant for pravastatin is estimated as 2.01X10-15 atm-cu m/mole(SRC) using a fragment constant estimation method(1). This Henry's Law constant indicates that pravastatin is expected to be essentially nonvolatile from water surfaces(2). Pravastatin is not expected to volatilize from dry soil surfaces(SRC) based upon an estimated vapor pressure of 6.0X10-16 mm Hg(SRC), determined from a fragment constant method(3).
DRINKING WATER: Pravastatin was not detected in raw drinking water from Lausanne, Switzerland; limit of quantitation = 0.019 ug/L(1).|SURFACE WATER: Pravastatin was tested for but not detected in the River Taff and the River Ely in South Wales, UK, which were monitored over a period of 10 months(1).
Occupational exposure to pravastatin may occur through inhalation and dermal contact with this compound at workplaces where pravastatin is produced or used. The general public is not likely to be exposed to pravastatin unless by direct medical treatment. (SRC)
Drug Information
Pravastatin is indicated for primary prevention of coronary events hypercholesterolemic patients without clinical evidence of coronary heart disease. Its use includes the reduction of risk on myocardial infarction, undergoing myocardial revascularization procedures and cardiovascular mortality. As well, pravastatin can be used as a secondary prevention agent for cardiovascular events in patients with clinically evident coronary heart disease. This indication includes the reduction of risk of total mortality by reducing coronary death, myocardial infarction, undergoing myocardial revascularization procedures, stroke, and stroke/transient ischemic attack as well as to slow the progression of coronary atherosclerosis. The term cardiovascular events correspond to all the incidents that can produce damage to the heart muscle including the interruption of blood flow. As adjunctive therapy to diet, pravastatin is used in: - Patients with primary hypercholesterolemia and mixed dyslipidemias including hyperlipidemia type IIa and IIb. - Patients with elevated serum triglycerides including type IV hyperlipidemia. - Patients with heterozygous familial hypercholesterolemia in patients over 8 years of age with low-density lipoprotein (LDL) cholesterol higher than 190 mg/dl after diet modifications or LDL levels higher than 160 mg/dl and familial history of premature cardiovascular diseases or at least two cardiovascular risk factors. In patients that do not respond adequately to diet, pravastatin is used to treat patients with primary dysbetalipoproteinemia (type III hyperlipidemia). Dyslipidemia is defined as an elevation of plasma cholesterol, triglycerides or both as well as to the presence of low levels of high-density lipoprotein. This condition represents an increased risk for the development of atherosclerosis.|FDA Label|Pravafenix is indicated for the treatment of high-coronary-heart-disease (CHD)-risk adult patients with mixed dyslipidaemia characterised by high triglycerides and low HDL-cholesterol (C) levels whose LDL-C levels are adequately controlled while on a treatment with pravastatin-40-mg monotherapy.|Treatment of cardiovascular disease|Disorders of lipoprotein metabolism and other hyperlipidaemias|Prevention of cardiovascular events, Treatment of hypercholesterolaemia|Treatment of mixed hyperlipidaemia
Pravastatin is a commonly used cholesterol lowering agent (statin) that is associated with mild, asymptomatic and self-limited serum aminotransferase elevations during therapy, and rarely with clinically apparent acute liver injury.
Antilipemic Agents
Anticholesteremic Agents; Hydroxymethylglutaryl-CoA Reductase Inhibitors|In hypercholesterolemic patients without clinically evident coronary heart disease (CHD), Pravachol (pravastatin sodium) is indicated to: reduce the risk of myocardial infarction, reduce the risk of undergoing myocardial revascularization procedures and reduce the risk of cardiovascular mortality with no increase in death from non-cardiovascular causes. /Included in US product label/|In patients with clinically evident coronary heart disease (CHD), Pravachol is indicated to: reduce the risk of total mortality by reducing coronary death, reduce the risk of myocardial infarction (MI), reduce the risk of undergoing myocardial revascularization procedures, reduce the risk of stroke and stroke/transient ischemic attack (TIA) and slow the progression of coronary atherosclerosis. /Included in US product label/|Pravachol is indicated: As an adjunct to diet to reduce elevated total cholesterol (Total-C), low-density lipoprotein cholesterol (LDL-C), apolipoprotein B (ApoB), and triglyceride (TG) levels and to increase high-density lipoprotein cholesterol (HDL-C) in patients with primary hypercholesterolemia and mixed dyslipidemia (Fredrickson Types IIa and IIb). As an adjunct to diet for the treatment of patients with elevated serum TG levels (Fredrickson Type IV). For the treatment of patients with primary dysbetalipoproteinemia (Fredrickson Type III) who do not respond adequately to diet. As an adjunct to diet and lifestyle modification for treatment of heterozygous familial hypercholesterolemia (HeFH) in children and adolescent patients ages 8 years and older if after an adequate trial of diet the following findings are present: a. LDL-C remains >/=190 mg/dL or b. LDL-C remains >/=160 mg/dL and there is a positive family history of premature cardiovascular disease (CVD) or two or more other CVD risk factors are present in the patient. /Included in US product label/|For more Therapeutic Uses (Complete) data for Pravastatin (9 total), please visit the HSDB record page.
Rare cases of rhabdomyolysis with acute renal failure secondary to myoglobinuria have been reported with pravastatin and other drugs in this class. A history of renal impairment may be a risk factor for the development of rhabdomyolysis. Such patients merit closer monitoring for skeletal muscle effects.|The risk of myopathy during treatment with statins is increased with concurrent therapy with either erythromycin, cyclosporine, niacin, or fibrates. However, neither myopathy nor significant increases in CPK levels have been observed in 3 reports involving a total of 100 post-transplant patients (24 renal and 76 cardiac) treated for up to 2 years concurrently with pravastatin 10 to 40 mg and cyclosporine. Some of these patients also received other concomitant immunosuppressive therapies. Further, in clinical trials involving small numbers of patients who were treated concurrently with pravastatin and niacin, there were no reports of myopathy. Also, myopathy was not reported in a trial of combination pravastatin (40 mg/day) and gemfibrozil (1200 mg/day), although 4 of 75 patients on the combination showed marked CPK elevations versus 1 of 73 patients receiving placebo. There was a trend toward more frequent CPK elevations and patient withdrawals due to musculoskeletal symptoms in the group receiving combined treatment as compared with the groups receiving placebo, gemfibrozil, or pravastatin monotherapy. The use of fibrates alone may occasionally be associated with myopathy. The benefit of further alterations in lipid levels by the combined use of Pravachol with fibrates should be carefully weighed against the potential risks of this combination.|There have been rare reports of immune-mediated necrotizing myopathy (IMNM), an autoimmune myopathy, associated with statin use. IMNM is characterized by: proximal muscle weakness and elevated serum CPK, which persist despite discontinuation of statin treatment; muscle biopsy showing necrotizing myopathy without significant inflammation and improvement with immunosuppressive agents.|Uncomplicated myalgia has ... been reported in pravastatin-treated patients. Myopathy, defined as muscle aching or muscle weakness in conjunction with increases in creatine phosphokinase (CPK) values to greater than 10 times the ULN, was rare (<0.1%) in pravastatin clinical trials. Myopathy should be considered in any patient with diffuse myalgias, muscle tenderness or weakness, and/or marked elevation of CPK. Predisposing factors include advanced age (>/= 65), uncontrolled hypothyroidism, and renal impairment.|For more Drug Warnings (Complete) data for Pravastatin (27 total), please visit the HSDB record page.
The action of pravastatin on the 3-hydroxy-3-methyl-glutaryl-coenzyme A (HMG-CoA) reductase produces an increase in the expression of hepatic LDL receptors which in order decreases the plasma levels of LDL cholesterol. The effect of pravastatin has been shown to significantly reduce the circulating total cholesterol, LDL cholesterol, and apolipoprotein B. As well, it modestly reduces very low-density-lipoproteins (VLDL) cholesterol and triglycerides while increasing the level of high-density lipoprotein (HDL) cholesterol and apolipoprotein A. In clinical trials with patients with a history of myocardial infarction or angina with high total cholesterol, pravastatin decreased the level of total cholesterol by 18%, decreased of LDL by 27%, decreased of triglycerides by 6% and increased of high-density lipoprotein (HDL) by 4%. As well, there was reported a decrease in risk of death due to coronary disease of 24%. When coadministered with [cholestyramine], pravastatin can reduce by 50% the levels of LDL and slow the progression of atherosclerosis and the risk of myocardial infarction and death.
Substances used to lower plasma cholesterol levels. (See all compounds classified as Anticholesteremic Agents.)|Compounds that inhibit HYDROXYMETHYLGLUTARYL COA REDUCTASES. They have been shown to directly lower CHOLESTEROL synthesis. (See all compounds classified as Hydroxymethylglutaryl-CoA Reductase Inhibitors.)
Pravastatin is absorbed 60-90 min after oral administration and it presents a low bioavailability of 17%. This low bioavailability can be presented due to the polar nature of pravastatin which produces a high range of first-pass metabolism and incomplete absorption. Pravastatin is rapidly absorbed from the upper part of the small intestine via proton-coupled carrier-mediated transport to be later taken up in the livery by the sodium-independent bile acid transporter. The reported time to reach the peak serum concentration in the range of 30-55 mcg/L is of 1-1.5 hours with an AUC ranging from 60-90 mcg.h/L.|From the administered dose of pravastatin, about 70% is eliminated in the feces while about 20% is obtained in the urine. When pravastatin is administered intravenously, approximately 47% of the administered dose is eliminated via the urine with 53% of the dose eliminated either via biotransformation of biliary.|The reported steady-state volume of distribution of pravastatin is reported to be of 0.5 L/kg. This pharmacokinetic parameter in children was found to range from 31-37 ml/kg.|The reported clearance rate of pravastatin ranges from 6.3-13.5 ml.min/kg in adults while in children it has been reported to be of 4-11 L/min.|/MILK/ In lactating rats, up to 7 times higher levels of pravastatin are present in the breast milk than in the maternal plasma, which corresponds to exposure 2 times the MRHD of 80 mg/day based on body surface area (mg/sq m).|In pregnant rats, pravastatin crosses the placenta and is found in fetal tissue at 30% of the maternal plasma levels following administration of a single dose of 20 mg/day orally on gestation day 18, which corresponds to exposure 2 times the MRHD of 80 mg daily based on body surface area (mg/ssq m).|Low levels of radioactivity were found in the fetuses of rats dosed orally with radiolabeled pravastatin sodium.|Dogs are unique as compared to all other species tested, including man, in that they have a much greater systemic exposure to pravastatin. Pharmacokinetic data from a study in dogs at a dose of 1.1 mg/kg (comparable to a 40 mg dose in humans) showed that the elimination of pravastatin is slower in dogs than in humans. Absolute bioavailability is two times greater in dogs compared to humans and estimated renal and hepatic extraction of pravastatin are about one-tenth and onehalf, respectively, than those in humans. When concentrations of pravastatin in plasma or serum of rats, dogs, rabbits, monkeys and humans were compared, the exposure in dogs was dramatically higher, based on both CMAX and AUC. The mean AUC value in man at a therapeutic dose of 40 mg is approximately 100 times less than that in the dog at the no-effect dose of 12.5 mg/kg, and approximately 180 times lower than that in dogs at the threshold dose of 25 mg/kg for cerebral hemorrhage.|For more Absorption, Distribution and Excretion (Complete) data for Pravastatin (23 total), please visit the HSDB record page.
After initial administration, pravastatin undergoes extensive first-pass extraction in the liver. However, pravastatin's metabolism is not related to the activity of the cytochrome P-450 isoenzymes and its processing is performed in a minor extent in the liver. Therefore, this drug is highly exposed to peripheral tissues. The metabolism of pravastatin is ruled mainly by the presence of glucuronidation reactions with very minimal intervention of CYP3A enzymes. After metabolism, pravastatin does not produce active metabolites. This metabolism is mainly done in the stomach followed by a minor portion of renal and hepatic processing. The major metabolite formed as part of pravastatin metabolism is the 3-alpha-hydroxy isomer. The activity of this metabolite is very clinically negligible.|The major biotransformation pathways for pravastatin are: (a) isomerization to 6-epi pravastatin and the 3a-hydroxyisomer of pravastatin (SQ 31,906) and (b) enzymatic ring hydroxylation to SQ 31,945. The 3a-hydroxyisomeric metabolite (SQ 31,906) has 1/10 to 1/40 the HMG-CoA reductase inhibitory activity of the parent compound. Pravastatin undergoes extensive first-pass extraction in the liver (extraction ratio 0.66).
The reported elimination half-life of pravastatin is reported to be of 1.8 hours.|Following single dose oral administration of (14)C-pravastatin, the radioactive elimination half life for pravastatin is 1.8 hours in humans.|In a two-way crossover study, eight healthy male subjects each received an intravenous and an oral dose of (14)C-pravastatin sodium. ... The estimated average plasma elimination half-life of pravastatin was 0.8 and 1.8 hr for the intravenous and oral routes, respectively. ...
Pravastatin is a specific inhibitor of the hepatic HMG-CoA reductase in humans. The inhibition of this enzyme produces a reduction in cholesterol biosynthesis as HMG-CoA reductase activity is an early-limiting step in cholesterol biosynthesis. The inhibitory mechanism of action produces a reduction in cholesterol synthesis which in order has been observed to increase the number of LDL receptors on cell surfaces and an enhancement in receptor-mediated metabolism of LDL and clearance. On the other hand, pravastatin-driven inhibition of LDL production inhibits hepatic synthesis of VLDL as the LDL is the precursor for these molecules.|Statins are largely used in clinics in the treatment of patients with cardiovascular diseases for their effect on lowering circulating cholesterol. Lectin-like oxidized low-density lipoprotein (LOX-1), the primary receptor for ox-LDL, plays a central role in the pathogenesis of atherosclerosis and cardiovascular disorders. We have recently shown that chronic exposure of cells to lovastatin disrupts LOX-1 receptor cluster distribution in plasma membranes, leading to a marked loss of LOX-1 function. Here we investigated the molecular mechanism of statin-mediated LOX-1 inhibition and we demonstrate that all tested statins /including pravastatin/ are able to displace the binding of fluorescent ox-LDL to LOX-1 by a direct interaction with LOX-1 receptors in a cell-based binding assay. Molecular docking simulations confirm the interaction and indicate that statins completely fill the hydrophobic tunnel that crosses the C-type lectin-like (CTLD) recognition domain of LOX-1. Classical molecular dynamics simulation technique applied to the LOX-1 CTLD, considered in the entire receptor structure with or without a statin ligand inside the tunnel, indicates that the presence of a ligand largely increases the dimer stability. Electrophoretic separation and western blot confirm that different statins binding stabilize the dimer assembly of LOX-1 receptors in vivo. The simulative and experimental results allow us to propose a CTLD clamp motion, which enables the receptor-substrate coupling. These findings reveal a novel and significant functional effect of statins.|Pravastatin is a reversible inhibitor of 3-hydroxy-3-methylglutaryl-coenzyme A (HMG-CoA) reductase, the enzyme that catalyzes the conversion of HMG-CoA to mevalonate, an early and rate limiting step in the biosynthetic pathway for cholesterol. In addition, pravastatin reduces very-low-density lipoprotein (VLDL) and triglyceride (TG) and increases high-density lipoprotein cholesterol (HDL-C).|The HMG-CoA reductase inhibitors (statins) have been shown to exert several vascular protective effects that are not related to changes in cholesterol profile, and these effects of statins are partly caused by the activation of angiogenesis. Endothelial cell (EC) proliferation and migration are crucial events for angiogenesis and statins are known to enhance these events. However, the molecular mechanism by which statins promote EC proliferation and migration is not fully understood. In this study, we show Akt and its downstream target mammalian target of rapamycin (mTOR) play an important role in pravastatin-induced EC proliferation and migration. We found that pravastatin significantly enhanced the proliferation and migration of rat aortic endothelial cells (rAECs). The addition of pravastatin to rAECs resulted in rapid phosphorylation of Akt and p70 S6 kinase (p70S6K). LY294002, a specific inhibitor of phosphatidylinositol 3-kinase (PI3K), blocked both Akt and p70S6K phosphorylation, whereas rapamycin, a specific inhibitor of mTOR, suppressed only p70S6K phosphorylation induced by pravastatin. Furthermore, both LY294002 and rapamycin inhibited pravastatin-induced rAEC proliferation and migration. Taken together, our findings indicate that pravastatin activates PI3K/Akt/mTOR /p70S6K signaling in this sequential manner and this pathway contributes to pravastatin-induced rAEC proliferation and migration.|Statins (HMG CoA reductase inhibitors) have beneficial effects independent of reducing cholesterol synthesis and this includes their ability to acutely activate endothelial nitric oxide synthase (eNOS). ... We characterized the pathways by which statins activate NOS, including involvement of scavenger receptor-B1 (SR-B1), which is expressed in endothelial cells and maintains cholesterol concentrations. Nitric oxide production was monitored in bovine aortic endothelial cells (BAECs) exposed to lovastatin (LOV) or pravastatin (PRA) for 10-20 min, alone or following pre-exposure to the end product of HMG-CoA reductase (mevalonate), G protein inhibitors (pertussis/cholera toxins), phospholipase C (PLC) inhibitor (U-73122), or intracellular and extracellular calcium chelators - BAPTA-AM and EGTA (respectively), or a function blocking antibody to SR-B1. Both statins increased NO production in a rapid, dose-dependent and HMG-CoA reductase-independent manner. Inhibiting Gi protein or PLC almost completely blocked statin-induced NO generation. Additionally, removing extracellular calcium inhibited statin-induced NO production. COS-7 cells co-transfected with eNOS and SR-B1 increased NO production when exposed to LOV or high-density lipoprotein (HDL), an agonist of SR-B1. These effects were not observed in COS-7 cells with eNOS alone or co-transfected with bradykinin receptor 2, indicating specificity for SR-B1. Further, pretreatment of BAEC with blocking antibody for SR-B1 blocked NO responses to statins and HDL. LOV and PRA acutely activate eNOS through pathways that include the cell surface receptor SR-B1, Gi protein, phosholipase C and entry of extracellular calcium into endothelial cells.|It has been shown previously that inhibitors of 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase, such as compactin, lovastatin, and pravastatin, block cholesterol synthesis, suppress lymphocyte functions, and beneficially affect atherogenesis. Recently, it was reported that compactin and lovastatin inhibit the respiratory burst of DMSO-differentiated HL-60 cells, an effect reversed by mevalonic acid. The mode of action of these inhibitors in this role is not understood fully. Thus, we studied the mechanism of inhibition of neutrophil superoxide (O2*-) generation by pravastatin and found that pravastatin at 0.5 mM inhibited the receptor-mediated tyrosine kinase (TK)-dependent pathway of O2*- generation and also luminol chemiluminescence but not the protein kinase C (PKC)-dependent or the TK- and PKC-independent pathways of O2*- generation in neutrophils. Pravastatin also inhibited the tumor necrosis factor-alpha- and formyl-methionyl-leucyl-phenylalanine-induced phosphorylation of a tyrosine of a 115-kDa protein. These effects were not reversed by mevalonate. From these results it is concluded that pravastatin inhibited receptor-mediated O2*-generation by decreasing tyrosine phosphorylation but not by inhibiting the formation of an intermediate in the biosynthesis of cholesterol.
/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 TKO /SRP: "To keep open", minimal flow rate/. Use 0.9% saline (NS) or lactated Ringer's (LR) 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/|To date, there has been limited experience with overdosage of pravastatin. If an overdose occurs, it should be treated symptomatically with laboratory monitoring and supportive measures should be instituted as required.
/SIGNS AND SYMPTOMS/ Rare cases of rhabdomyolysis with acute renal failure secondary to myoglobinuria have been reported with pravastatin and other drugs in this class. A history of renal impairment may be a risk factor for the development of rhabdomyolysis. Such patients merit closer monitoring for skeletal muscle effects.|/SIGNS AND SYMPTOMS/ There have been rare postmarketing reports of fatal and non-fatal hepatic failure in patients taking statins, including pravastatin. If serious liver injury with clinical symptoms and/or hyperbilirubinemia or jaundice occurs during treatment with Pravachol, promptly interrupt therapy. If an alternate etiology is not found do not restart Pravachol.|/SIGNS AND SYMPTOMS/ The risk of myopathy during treatment with statins is increased with concurrent therapy with either erythromycin, cyclosporine, niacin, or fibrates. However, neither myopathy nor significant increases in CPK levels have been observed in 3 reports involving a total of 100 post-transplant patients (24 renal and 76 cardiac) treated for up to 2 years concurrently with pravastatin 10 to 40 mg and cyclosporine. Some of these patients also received other concomitant immunosuppressive therapies. Further, in clinical trials involving small numbers of patients who were treated concurrently with pravastatin and niacin, there were no reports of myopathy. Also, myopathy was not reported in a trial of combination pravastatin (40 mg/day) and gemfibrozil (1200 mg/day), although 4 of 75 patients on the combination showed marked CPK elevations versus 1 of 73 patients receiving placebo. There was a trend toward more frequent CPK elevations and patient withdrawals due to musculoskeletal symptoms in the group receiving combined treatment as compared with the groups receiving placebo, gemfibrozil, or pravastatin monotherapy. The use of fibrates alone may occasionally be associated with myopathy. The benefit of further alterations in lipid levels by the combined use of Pravachol with fibrates should be carefully weighed against the potential risks of this combination.|/SIGNS AND SYMPTOMS/ Hypersensitivity reactions have occurred rarely with statin therapy during clinical trials or postmarketing surveillance. Such reactions may include anaphylaxis, angioedema, head/neck edema, contact dermatitis, lupus erythematosus-like syndrome, polymyalgia rheumatica, dermatomyositis, vasculitis, purpura, thrombocytopenia, leukopenia, hemolytic anemia, positive antinuclear antibody (ANA) titer, increased erythrocyte sedimentation rate, eosinophilia, arthritis, arthralgia, urticaria, asthenia, photosensitivity, fever, chills, flushing, malaise, dyspnea, toxic epidermal necrolysis, erythema multiforme, and Stevens-Johnson syndrome. /Statins/|For more Human Toxicity Excerpts (Complete) data for Pravastatin (17 total), please visit the HSDB record page.
Apo Pravastatin
Pravastatin Use and Manufacturing
Pravastatin is the bioactive metabolite of mevastatin, isolated from Penicillium citrinum and is prepared by microbial hydroxylation with Mucor hiemalis or Phaseolus coccineus or Rhizoctonia solani or Nocardia strains.|Preparation by microbial hydroxylation: A. Terahara, M. Tanaka, German patent 3122499; eidem, United States of America patent 4346227 (1981, 1982 both to Sankyo). /Pravastatin sodium/
anti-hyperlipoproteinemic, 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase inhibitor
1
HPLC determination in biological fluids. /Pravastatin sodium/|... Aim of our study was to develop a simple, but reliable method which allows the determination of pravastatin plasma concentrations under clinical routine conditions. Samples were prepared by solid-phase extraction on cyclohexyl bond elut cartridges. Chromatography was carried out on an octyl matrix. Triamcinolone acetonide was used as internal standard. The method was linear within the range of 5 to 200 microg/l pravastatin. The coefficient of variation depended on the pravastatin concentration, but was less than 10% throughout. The pharmacokinetics of pravastatin were determined in healthy individuals. Five healthy subjects received single oral doses of pravastatin (60 mg) and one of these subjects additionally received a dose of 80 mg at three different study days. In all subjects blood was sampled 0, 30, 60, 90, 120, 150, 180, 240 and 300 min after drug intake. Peak plasma concentrations of pravastatin were found between 60 min and 120 min after oral administration of 60 mg and reached values between 37 microg/l and 126 microg/l. The calculated AUCs were between 52 ng/mL x h and 311 ng/mL x h and the corresponding plasma elimination half-life times were between 95 min and 165 min. In all subjects plasma concentrations of pravastatin 5 hours after oral drug administration were near the detection limit of the method (5 microg/l). Intraindividually, there was only little variation in the kinetics of pravastatin. However, marked differences were encountered between the subjects studied. The data suggest that the determination of pravastatin plasma concentrations by means of a HPLC system can be used for routine analysis of pravastatin plasma concentrations. The obtained pharmacokinetic data in healthy individuals stand in ample agreement with the results of prior studies in which the concentrations of pravastatin were determined by other more sophisticated methods.
Human drugs -> Pravafenix -> EMA Drug Category|Lipid modifying agents -> Human pharmacotherapeutic group|Human drugs -> Rare disease (orphan)|Human Drugs -> EU pediatric investigation plans|Human Drugs -> FDA Approved Drug Products with Therapeutic Equivalence Evaluations (Orange Book) -> Active Ingredients|Fatty Acyls [FA] -> Fatty alcohols [FA05]
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