simvastatin reference
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Registered Botswana · BoMRA

SIMVACOR

Simvastatin 20mg

BOT1202044 FILM COATED TABLET 20mg INN generic

What it does

Simvastatin is a medication that helps lower cholesterol levels in the blood.

Commonly used for: high cholesterol (hyperlipidemia), preventing heart disease, reducing the risk of strokes

Read more in plain English ↓

Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.

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Answers come only from this medicine's registration record, BNF monograph and interaction data - not medical advice.

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Registration & product details

Registration no.
BOT1202044
Registration date
2012-02-17
Expiry date
2030-06-25
Status
Registered/Compliant
Active ingredient
Simvastatin 20mg
Dosage form
FILM COATED TABLET
Strength
20mg
Pack size
-
Therapeutic class
-
Manufacturer / MAH
Krka, D.d., Novo Mesto
Country of origin
Slovenia
Manufacturer location
Šmarješka cesta 6, 8501 Novo mesto, Slovenia

Source: Botswana Medicines Regulatory Authority · fetched 2026-09-18 04:32:37

Drug Interactions

125
Check interactions

Pharmacodynamic Warnings

Simvastatin appears in TABLE 1: Drugs that cause hepatotoxicity

Severe (10)

Simvastatin - increases exposure

Cobicistat is predicted to increase the exposure to statins (simvastatin). Avoid.

Severe Study

Simvastatin - increases exposure

Idelalisib is predicted to increase the exposure to statins (simvastatin). Avoid.

Severe Study

Simvastatin - increases exposure

Letermovir is predicted to increase the exposure to statins (rosuvastatin, simvastatin). Avoid.

Severe Study

Simvastatin - increases exposure

Clarithromycin is predicted to increase the exposure to statins (simvastatin). Avoid.

Severe Study

Simvastatin - increases exposure

Erythromycin markedly increases the exposure to statins (simvastatin). Avoid.

Severe Study

Simvastatin - increases exposure

Ribociclib (high-dose) is predicted to increase the exposure to statins (simvastatin). Avoid.

Severe Theoretical

Statins - increases exposure

Darolutamide is predicted to increase the exposure to statins (atorvastatin, fluvastatin, rosuvastatin). Avoid.

Severe Theoretical

Statins - increases exposure

Posaconazole is predicted to increase the exposure to statins (atorvastatin). Avoid.

Severe Anecdotal

Statins - increases exposure

Tedizolid is predicted to increase the exposure to statins (atorvastatin, fluvastatin, rosuvastatin). Avoid.

Severe Study

Statins - increases exposure

Voxilaprevir with sofosbuvir and velpatasvir markedly increases the exposure to statins (rosuvastatin). Avoid.

Severe Study

Moderate (38)

Simvastatin - increases exposure

Dronedarone moderately increases the exposure to statins (simvastatin). Monitor and adjust dose.

Moderate Study

Simvastatin - increases exposure

Fluconazole is predicted to increase the exposure to statins (atorvastatin, simvastatin). Monitor and adjust dose. Also see TABLE 1 p. 1517.

Moderate Anecdotal

Simvastatin - increases exposure

Isavuconazole is predicted to increase the exposure to statins (simvastatin). Monitor and adjust dose.

Moderate Theoretical

Simvastatin - decreases exposure

Cenobamate is predicted to decrease the exposure to statins (simvastatin). Adjust dose.

Moderate Theoretical

Simvastatin - increases exposure

Crizotinib is predicted to increase the exposure to statins (simvastatin). Monitor and adjust dose.

Moderate Theoretical

Unknown (77)

Daptomycin - increases risk of rhabdomyolysis

Statins are predicted to increase the risk of rhabdomyolysis when given with daptomycin. Daratumumab → see monoclonal antibodies Darbepoetin alfa → see TABLE 5 p. 1518 (thromboembolism), TABLE 16 p. 1

Unknown Theoretical

Daptomycin - increases risk of rhabdomyolysis e

Statins are predicted to increase the risk of rhabdomyolysis when given with daptomycin.

Unknown Theoretical

Simvastatin - decreases exposure

Enzalutamide is predicted to decrease the exposure to statins (atorvastatin, simvastatin).

Unknown Study

Simvastatin - increases concentration

Darolutamide is predicted to increase the concentration of statins (pravastatin, simvastatin).

Unknown Theoretical

Simvastatin - decreases exposure

Apalutamide is predicted to decrease the exposure to statins (simvastatin). Avoid or monitor.

Unknown Study

Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact

Disclaimer: This information is sourced from Botswana Medicines Regulatory Authority (Botswana). Always consult a qualified healthcare professional before using any medication.

About this medicine

Simvastatin is a medication that helps lower cholesterol levels in the blood.

What it treats

  • high cholesterol (hyperlipidemia)
  • preventing heart disease
  • reducing the risk of strokes

How it works

It works by blocking a substance your body needs to make cholesterol, which helps lower overall cholesterol levels.

Who it's for

Simvastatin is for adults who have high cholesterol or are at risk of heart disease.

Drug class

Statins

Cautions

  • • Avoid using with other drugs that can harm the liver.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

Clinical monograph: Simvastatin

BNF-referenced

Simvastatin is a member of the statin class of drugs, primarily used as an antilipemic agent to lower cholesterol levels in patients with hyperlipidaemia. It works by inhibiting HMG-CoA reductase, an enzyme crucial for cholesterol biosynthesis, ultimately reducing low-density lipoprotein (LDL) and triglyceride levels while increasing high-density lipoprotein (HDL) levels. This drug is part of a comprehensive strategy to reduce the risk of cardiovascular events and manage associated conditions such as atherosclerosis.

Mechanism of action

Simvastatin is a prodrug that is hydrolyzed in vivo to its active metabolite, which resembles HMG-CoA. This metabolite competes with HMG-CoA for the active site of HMG-CoA reductase, thereby inhibiting cholesterol synthesis. The reduction in hepatic cholesterol concentrations enhances the upregulation of LDL receptors, facilitating increased clearance of LDL from the bloodstream. Additionally, simvastatin inhibits the synthesis of very low-density lipoprotein (VLDL), contributing to its lipid-lowering effects. Beyond its cholesterol-lowering properties, simvastatin has been shown to exert vasculoprotective effects, known as pleiotropic effects.

Pharmacodynamics

Simvastatin effectively lowers total cholesterol, LDL cholesterol, apolipoprotein B, non-HDL cholesterol, and triglyceride levels, while increasing HDL cholesterol concentrations. Elevated levels of LDL and triglycerides are associated with an increased risk of atherosclerosis and cardiovascular diseases (CVD). By modulating these lipid levels, simvastatin reduces cardiovascular morbidity and mortality. The balance of cholesterol levels, particularly the total cholesterol to HDL ratio, serves as a predictive marker for coronary artery disease, with statins like simvastatin demonstrating significant cost-effectiveness in CVD management.

Pharmacokinetics

Simvastatin is administered orally and exhibits a peak plasma concentration within 1 to 2 hours post-dose. It is extensively metabolized in the liver, primarily by CYP3A4, with a half-life of approximately 1 to 2 hours. The drug's bioavailability is approximately 5% due to extensive first-pass metabolism. Simvastatin and its metabolites are primarily excreted via bile, with only a small fraction eliminated through urine. The pharmacokinetic profile necessitates caution in patients with renal impairment, particularly for higher doses.

Contra-indications

  • Active liver disease
  • Pregnancy
  • Hypersensitivity to simvastatin or any component of the formulation

Adverse effects

  • Myopathy
  • Rhabdomyolysis
  • Hepatic enzyme abnormalities
  • Gastrointestinal disturbances
  • Headache
  • Dizziness
  • Sleep disturbances
  • Skin rash
  • Increased creatine kinase levels

Interactions

  • Cobicistat (severe increase in exposure)
  • Idelalisib (severe increase in exposure)
  • Letermovir (severe increase in exposure)
  • Clarithromycin (severe increase in exposure)
  • Erythromycin (severe increase in exposure)
  • Ribociclib (severe increase in exposure)
  • Dronedarone (moderate increase in exposure)
  • Fluconazole (moderate increase in exposure)
  • Isavuconazole (moderate increase in exposure)
  • Cenobamate (moderate decrease in exposure)
  • Amiodarone (max 20 mg daily)
  • Amlodipine (max 20 mg daily)
  • Verapamil (max 20 mg daily)
  • Diltiazem (max 20 mg daily)
  • Bezafibrate (max 10 mg daily)
  • Ciprofibrate (max 10 mg daily)
  • Lomitapide (max 40 mg daily)
  • Ticagrelor (max 20 mg daily)
  • Elbasvir with grazoprevir (max 20 mg daily)
  • Bempedoic acid (max 20 mg daily with concurrent use)

Precautions

  • Use with caution in patients with renal impairment
  • Monitor liver function tests before and during treatment
  • Consider routine monitoring of renal function
  • Counsel patients regarding the risk of myopathy and rhabdomyolysis
  • Assess for any potential drug interactions prior to initiation

Pregnancy

Manufacturer advises avoiding use during pregnancy due to potential risks.

Breast-feeding

Manufacturer advises avoiding use during breastfeeding due to lack of safety data.

Storage

Store at room temperature, away from moisture and

BNF 85 (British National Formulary) p.244 BNF for Children 2019-2020 p.158 PubChem / pathway

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Molecular reference: Simvastatin

PubChem CID 54454

Molecular formula: C25H38O5

Mechanism of action

Simvastatin is a prodrug in which the 6-membered lactone ring of simvastatin is hydrolyzed <i>in vivo</i> to generate the beta,delta-dihydroxy acid, an active metabolite structurally similar to HMG-CoA (hydroxymethylglutaryl CoA). Once hydrolyzed, simvastatin competes with HMG-CoA for HMG-CoA reductase, a hepatic microsomal enzyme, which catalyzes the conversion of HMG-CoA to mevalonate, an early rate-limiting step in cholesterol biosynthesis. Simvastatin acts primarily in the liver, where decreased hepatic cholesterol concentrations stimulate the upregulation of hepatic low density lipoprotein (LDL) receptors which increases hepatic uptake of LDL. Simvastatin also inhibits hepatic synthesis of very low density lipoprotein (VLDL). The overall effect is a decrease in plasma LDL and VLDL. At therapeutic doses, the HMG-CoA enzyme is not completely blocked by simvastatin activity, thereby allowing biologically necessary amounts of mevalonate to remain available. As mevalonate is an early step in the biosynthetic pathway for cholesterol, therapy with simvastatin would also not be expected to cause any accumulation of potentially toxic sterols. In addition, HMG-CoA is metabolized readily back to acetyl-CoA, which participates in many biosynthetic processes in the body. In vitro and in vivo animal studies also demonstrate that simvastatin exerts vasculoprotective effects independent of its lipid-lowering properties, also known as the pleiotropic effects of statins. This includes improvement in endothelial function, enhanced stability of atherosclerotic plaques, reduced oxidative stress and inflammation, and inhibition of the thrombogenic response. Statins have also been found to bind allosterically to β2 integrin function-associated antigen-1 (LFA-1), which plays an important role in leukocyte trafficking and in T cell activation. Simvastatin is a prodrug and is hydrolyzed to its active beta-hydroxyacid form, simvastatin acid, after administration. Simvastatin is a specific 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, simvastatin reduces VLDL and TG and increases HDL-C. The HDL-associated enzyme paraoxonase protects LDLs from oxidative stress. 3-Hydroxy-3-methylglutaryl coenzyme A reductase inhibitors (statins) appear to favorably influence the atherosclerotic process by different mechanisms. The present study examined the influence of simvastatin on paraoxonase expression and serum paraoxonase levels. Simvastatin upregulated in a dose-dependent manner the activity of the promoter of the paraoxonase gene in expression cassettes transfected into HepG2 cells. Upregulation could be blocked by mevalonate and other intermediates of the cholesterol biosynthetic pathway. Simvastatin increased nuclear factors, notably sterol regulatory element-binding protein-2, capable of binding to the paraoxonase promoter; this was also blocked by mevalonate. Sterol regulatory element-binding protein-2 upregulated promoter activity in vitro. Patients treated with statin showed a significant increase in serum concentrations and activities of paraoxonase. The data indicate that simvastatin can modulate expression in vitro of the antioxidant enzyme paraoxonase and is associated with increased serum paraoxonase concentration and activity. It is consistent with effects of simvastatin treatment, which have the potential to influence beneficially antiatherogenic mechanisms at the HDL level. The study provides evidence for 1 molecular mechanism by which paraoxonase gene expression could be regulated. ... We report in this work that, unexpectedly, simvastatin enhances LPS-induced IL-12p40 production by murine macrophages, and that it does so by activating the IL-12p40 promoter. Mutational analysis and dominant-negative expression studies indicate that both C/EBP and AP-1 transcri

Pharmacodynamics

Simvastatin is an oral antilipemic agent which inhibits HMG-CoA reductase. It is used to lower total cholesterol, low density lipoprotein-cholesterol (LDL-C), apolipoprotein B (apoB), non-high density lipoprotein-cholesterol (non-HDL-C), and trigleride (TG) plasma concentrations while increasing HDL-C concentrations. High LDL-C, low HDL-C and high TG concentrations in the plasma are associated with increased risk of atherosclerosis and cardiovascular disease. The total cholesterol to HDL-C ratio is a strong predictor of coronary artery disease and high ratios are associated with higher risk of disease. Increased levels of HDL-C are associated with lower cardiovascular risk. By decreasing LDL-C and TG and increasing HDL-C, rosuvastatin reduces the risk of cardiovascular morbidity and mortality. Elevated cholesterol levels, and in particular, elevated low-density lipoprotein (LDL) levels, are an important risk factor for the development of CVD. Use of statins to target and reduce LDL levels has been shown in a number of landmark studies to significantly reduce the risk of development of CVD and all-cause mortality. Statins are considered a cost-effective treatment option for CVD due to their evidence of reducing all-cause mortality including fatal and non-fatal CVD as well as the need for surgical revascularization or angioplasty following a heart attack. Evidence has shown that even for low-risk individuals (with <10% risk of a major vascular event occurring within 5 years) statins cause a 20%-22% relative reduction in major cardiovascular events (heart attack, stroke, coronary revascularization, and coronary death) for every 1 mmol/L reduction in LDL without any significant side effects or risks. **Skeletal Muscle Effects** Simvastatin occasionally causes myopathy manifested as muscle pain, tenderness or weakness with creatine kinase (CK) above ten times the upper limit of normal (ULN). Myopathy sometimes takes the form of rhabdomyolysis with or without acute renal failure secondary to myoglobinuria, and rare fatalities have occurred. Predisposing factors for myopathy include advanced age (≥65 years), female gender, uncontrolled hypothyroidism, and renal impairment. Chinese patients may also be at increased risk for myopathy. In most cases, muscle symptoms and CK increases resolved when treatment was promptly discontinued. In a clinical trial database of 41,413 patients, the incidence of myopathy was approximately 0.03% and 0.08% at 20 and 40 mg/day, respectively, while the risk of myopathy with simvastatin 80 mg (0.61%) was disproportionately higher than that observed at the lower doses. It's therefore recommended that the 80mg dose of simvastatin should be used only in patients who have been taking simvastatin 80 mg chronically (e.g., for 12 months or more) without evidence of muscle toxicity. As well, patients already stabilized on simvastatin 80mg should be monitored closely for evidence of muscle toxicity; if they need to be initiated on an interacting drug that is contraindicated or is associated with a dose cap for simvastatin, that patient should be switched to an alternative statin with less potential for the drug-drug interaction. The risk of myopathy during treatment with simvastatin may be increased with concurrent administration of interacting drugs such as [fenofibrate], [niacin], [gemfibrozil], [cyclosporine], and strong inhibitors of the CYP3A4 enzyme. Cases of myopathy, including rhabdomyolysis, have been reported with HMG-CoA reductase inhibitors coadministered with [colchicine], and caution should therefore be exercised when prescribing these two medications together. **Liver Enzyme Abnormalities** Persistent increases (to more than 3X the ULN) in serum transaminases have occurred in approximately 1% of patients who received simvastatin in clinical studies. When drug treatment was interrupted or discontinued in these patients, the transaminase levels usually fell slowly to pretreatment levels. The in

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

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