albendazole reference
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(albendazole · DailyMed)
Registered Tanzania · TMDA

HIGH BECTIN

Albendazole 3000 mg,Calcium Carbonate 3176 mg,Ivermectin 100 mg,Magnesium Stearate . 60 mg,Maize Starch* 4764 mg,Povidone (PVP K-30) 180 mg,Sodium Lauril Sulphate 120 mg,Sodium Starch Glycolate 600 mg

TAN 26 VM 0617 Oral tablet 3000+100 antiparasitic products, insecticides and repellents INN generic

What it does

Albendazole is a medication used to treat infections caused by certain types of worms.

Commonly used for: worm infections (helminthiasis), neurocysticercosis, giardiasis

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.

Medicine sourcing is available in Kenya only. We don't sell or dispense medicines - licensed pharmacies do.

Sourcing - Kenya only

Registration & product details

Registration no.
TAN 26 VM 0617
Registration date
2026-09-08
Expiry date
2031-09-07
Status
Registered/Compliant
Active ingredient
Albendazole 3000 mg,Calcium Carbonate 3176 mg,Ivermectin 100 mg,Magnesium Stearate . 60 mg,Maize Starch* 4764 mg,Povidone (PVP K-30) 180 mg,Sodium Lauril Sulphate 120 mg,Sodium Starch Glycolate 600 mg
Dosage form
Oral tablet
Strength
3000+100
Pack size
-
Therapeutic class
-
ATC class (WHO)
P02CA - Benzimidazole derivatives
RxNorm RxCUI
430
Applicant / LTR
NGELELA AGROVET CO. LTD
Country of origin
CHINA

Source: Tanzania Medicines and Medical Devices Authority · fetched 2026-09-14 03:00:45

Drug Interactions

4
Check interactions

Unknown (4)

Albendazole - decreases exposure

Ritonavir decreases the exposure to albendazole.

Unknown Study

Coumarins - increases anticoagulant effect

Ivermectin potentially increases the anticoagulant effect of coumarins.

Unknown Anecdotal

Ivermectin - increases exposure

Levamisoleincreasestheexposuretoivermectin.o Study Ixazomib

Unknown Study

Levamisole And Levamisole Moderately Decreases The Exposure To Albendazole - decreases exposure

Albendazole slightly decreases the exposure to levamisole and levamisole moderately decreases the exposure to albendazole. Alcohol → see TABLE 1 p. 1517 (hepatotoxicity), TABLE 8 p. 1518 (hypotension)

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 Tanzania Medicines and Medical Devices Authority (Tanzania). Always consult a qualified healthcare professional before using any medication.

About albendazole

Albendazole is a medication used to treat infections caused by certain types of worms.

What it treats

  • worm infections (helminthiasis)
  • neurocysticercosis
  • giardiasis

How it works

It works by killing the worms and stopping them from growing and multiplying in the body.

Who it's for

It is for people who have specific parasitic worm infections.

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

About carbonate

Carbonate is used to help manage acidity in the stomach and can be found in various over-the-counter products.

What it treats

  • stomach acidity
  • indigestion
  • heartburn

How it works

Carbonate helps neutralize stomach acid, providing relief from discomfort caused by excess acidity.

Who it's for

Adults and children experiencing symptoms of stomach acidity or indigestion.

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

About glycolate

Glycolate is a compound that may be used in various medical treatments.

How it works

Glycolate works by interacting with certain bodily processes, though specific details are not available.

Who it's for

Glycolate may be suitable for individuals needing treatment related to certain health conditions, but specific indications are not provided.

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

About ivermectin

Ivermectin is a medicine used to treat certain infections caused by parasites.

What it treats

  • river blindness (onchocerciasis)
  • lymphatic filariasis
  • scabies
  • strongyloidiasis

How it works

Ivermectin works by killing parasites in the body, helping to eliminate infections.

Who it's for

Ivermectin is for people diagnosed with specific parasitic infections.

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

About maize

Maize is a common food ingredient that provides energy and nutrients.

What it treats

  • nutrition
  • energy source

How it works

Maize is a carbohydrate-rich food that the body uses for energy.

Who it's for

Suitable for most people, including adults and children.

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

About povidone

Povidone is a synthetic polymer often used as a disinfectant and to help deliver medications in various forms.

What it treats

  • skin infections
  • wound care
  • eye infections (conjunctivitis)

How it works

Povidone works by killing bacteria and other germs, helping to prevent infections.

Who it's for

Povidone is suitable for people needing treatment for skin or eye infections.

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

About starch

Starch is a carbohydrate that serves as a source of energy and is often used in various food products.

What it treats

  • energy source
  • dietary supplement

How it works

Starch is broken down by the body into glucose, which provides energy for daily activities.

Who it's for

Starch can be used by anyone needing extra energy in their diet, particularly those with increased energy needs.

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

Clinical monograph: Ivermectin

BNF-referenced

Ivermectin is an antiparasitic agent that is primarily used in the treatment of various parasitic infections, including onchocerciasis, strongyloidiasis, and scabies. It works by binding to specific chloride channels in the parasite, leading to increased permeability of the cell membrane, paralysis, and death of the parasite. Ivermectin is recognized for its efficacy and safety profile, making it a vital medication in the management of helminthic infections.

Indications

  • Onchocerciasis (river blindness)
  • Strongyloidiasis
  • Scabies (especially hyperkeratotic or crusted scabies)
  • Lymphatic filariasis
  • Other helminth infections

Dosage

Children: Child 6 months–17 years: 100 mg for 1 dose;

Adults: Adult: Initially 1 mg/kg daily on the first day, then increased to 6 mg/kg daily in divided doses, gradually increased over 3 days. Maximum 9 mg/kg per day. For scabies, 100 mg for 1 dose; if reinfection occurs, a second dose may be given after 2 weeks.

Mechanism of action

Ivermectin binds selectively to glutamate-gated chloride channels, leading to increased permeability of the cell membrane to chloride ions. This results in hyperpolarization of the nerve or muscle cells in the parasites, causing paralysis and death. It also interacts with other chloride channels, which may contribute to its antiparasitic effects.

Pharmacodynamics

Ivermectin exhibits broad-spectrum activity against a variety of parasites, including nematodes and arthropods. Its effectiveness is attributed to its ability to paralyze and kill parasites, thus facilitating their expulsion from the host. The drug has a long half-life, allowing for effective dosing regimens, and it is generally well-tolerated in patients.

Pharmacokinetics

Ivermectin is rapidly absorbed following oral administration, with peak plasma concentrations occurring within 4 to 6 hours. It is extensively distributed throughout the body, including the central nervous system. The drug undergoes hepatic metabolism, primarily via cytochrome P450, and is eliminated with a half-life of approximately 18 hours. Excretion occurs mainly in the feces, with a smaller proportion eliminated in urine.

Contra-indications

  • Blood disorders
  • Epilepsy
  • Sjögren’s syndrome

Adverse effects

  • Diarrhoea
  • Dizziness
  • Headache
  • Influenza-like illness
  • Insomnia
  • Myalgia
  • Nausea
  • Rash
  • Seizure
  • Taste alteration
  • Vomiting
  • Skin reactions
  • Abnormal sensation in eye
  • Anaemia
  • Appetite decrease
  • Asthenia
  • Asthma exacerbated
  • Chest discomfort
  • Confusion
  • Conjunctival haemorrhage
  • Constipation
  • Gastrointestinal discomfort
  • Headache
  • Hepatitis
  • Hypotension
  • Joint disorders
  • Leukopenia
  • Myalgia
  • Nausea
  • Oedema
  • Pain
  • Psychiatric disorder
  • Severe cutaneous adverse reactions
  • Stupor
  • Tachycardia
  • Tremor
  • Urinary incontinence
  • Vertigo

Interactions

  • Coumarins: Unknown (increases anticoagulant effect)
  • Levamisole: Unknown (increases exposure)

Precautions

  • Use with caution in hepatic impairment
  • Avoid sun exposure when using topical formulations

Pregnancy

Embryotoxic in animal studies, avoid if possible.

Breast-feeding

Manufacturer advises avoid-limited information available; ensure infant does not come in contact with treated areas.

Storage

Store in a cool, dry place away from direct sunlight.

Formulations

  • Tablets
  • Topical formulation
BNF 85 (British National Formulary) p.687 BNF 85 (British National Formulary) p.1415 BNF for Children 2019-2020 p.420 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.

Clinical monograph: Albendazole

BNF-referenced

Albendazole is a broad-spectrum anthelmintic used to treat various helminth infections, including those caused by tapeworms and roundworms. It is particularly effective in cases where mebendazole cannot be used and is well tolerated in patients.

Indications

  • Helminth infections
  • Strongyloidiasis
  • Hydatid disease
  • Tapeworm infections
  • Hookworm infections
  • Schistosomiasis

Dosage

Children: For children aged 2–17 years: 400 mg twice daily for 3 days. The dose may be repeated after 3 weeks if necessary. Alternatively, for hookworm infections: 7.5 mg/kg twice daily (maximum per dose 400 mg) for 28 days, followed by a 14-day break, repeated for up to 2–3 cycles.

Adults: For Adult patients, the dosage is typically 400 mg taken by mouth as a single dose or as directed by a healthcare professional based on the specific condition being treated.

Mechanism of action

Albendazole works by inhibiting the polymerization of tubulin into microtubules, disrupting the cytoplasmic structure of the helminths, and thereby inhibiting their motility and reproduction.

Pharmacodynamics

Albendazole exhibits its anthelmintic activity through the inhibition of glucose uptake, leading to depletion of glycogen stores in the worms, ultimately resulting in their death. It is effective against a wide range of parasites.

Pharmacokinetics

Albendazole is rapidly absorbed and is metabolized in the liver to its primary active metabolite, albendazole sulfoxide. Its bioavailability is increased when taken with fatty meals. The drug is primarily excreted in the urine and has a half-life that varies based on individual metabolism.

Adverse effects

  • Gastro-intestinal upset
  • Lightheadedness
  • Pruritus

Interactions

  • Levamisole may moderately decrease the exposure to albendazole
  • Ritonavir may decrease the exposure to albendazole

Precautions

  • Treatment must be given under careful patient supervision
  • Stop at the first sign of cerebral involvement

Pregnancy

Refer to BNF for specific guidance.

Breast-feeding

Refer to BNF for specific guidance.

Storage

Store in a cool, dry place away from light.

Formulations

  • Tablets
  • Suspension
BNF for Children 2019-2020 p.419 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.

Clinical monograph: carbonate

BNF-referenced

Carbonate is a polyatomic ion with the molecular formula CO3^2-. It plays a critical role in various biological processes, including the regulation of pH in biological systems and the formation of bicarbonate, which is essential for maintaining acid-base balance. Carbonates are commonly found in nature and are involved in buffering systems in blood and other bodily fluids.

Mechanism of action

Carbonate ions participate in buffering reactions that help maintain pH homeostasis in biological systems. They can react with acids to form bicarbonate and carbon dioxide, thus neutralizing excess acidity in the body. This mechanism is crucial in processes such as respiration and metabolism.

Pharmacodynamics

As a buffer, carbonate helps to stabilize pH levels in different biological environments, preventing excessive acidity or alkalinity that could impair cellular functions. It is involved in the transport of carbon dioxide in the blood and plays a role in maintaining the acid-base equilibrium necessary for physiological processes.

Pharmacokinetics

Carbonate ions are readily absorbed in the gastrointestinal tract when ingested and can be found in various body fluids. They are involved in the bicarbonate buffering system, where they are converted to bicarbonate (HCO3-) and carbon dioxide (CO2) through reactions with acids. The kidneys regulate the levels of bicarbonate and carbonate in the body, excreting or reabsorbing them as needed to maintain homeostasis.

Pregnancy

There is no specific information available regarding the use of carbonate compounds during pregnancy. Consult a healthcare provider for advice.

Breast-feeding

There is no specific information available regarding the use of carbonate compounds while breastfeeding. Consult a healthcare provider for advice.

Storage

Store in a cool, dry place away from direct sunlight. Keep out of reach of children.

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

Clinical monograph: glycolate

BNF-referenced

Glycolate is an intermediate in the metabolism of ethylene glycol, a compound that can cause toxicity when ingested. The toxicity arises primarily from its conversion to glycolic acid and other harmful metabolites. Glycolate and its relation to ethylene glycol's elimination kinetics have been studied, revealing important insights into their toxicokinetics in animal models.

Dosage

Children: Refer to specific clinical guidelines for dosing in children, as no standard paediatric dosage is specified in the provided resources.

Adults: Refer to specific clinical guidelines for dosing, as no standard adult dosage is specified in the provided resources.

Mechanism of action

Ethylene glycol toxicity results from its metabolism to glycolic acid and other toxic metabolites. Glycolate accumulates in the body and is eliminated more slowly than ethylene glycol itself. The renal excretion of both compounds plays a crucial role in their elimination, accounting for a significant portion of the administered dose.

Pharmacodynamics

The pharmacodynamics of glycolate are closely tied to its role as a metabolite of ethylene glycol. Its accumulation can lead to metabolic acidosis, although minimal clinical effects have been observed at low doses. The relationship between glycolate and ethylene glycol indicates that glycolate may contribute to the overall toxic effects of ethylene glycol ingestion.

Pharmacokinetics

The pharmacokinetics of glycolate indicate that it reaches peak plasma levels between 4-6 hours after the administration of ethylene glycol. The elimination half-life of ethylene glycol is approximately 1.7 hours in rats and 3.4 hours in dogs. Glycolate is predominantly eliminated through renal excretion, with about 5% of the dose being excreted unchanged.

Pregnancy

There is limited data on the safety of glycolate in pregnancy. Caution is advised.

Breast-feeding

Data on the excretion of glycolate in human milk is not available. Caution is advised.

Storage

Store at room temperature, away from light and moisture.

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

Clinical monograph: laurilsulfate

Lauryl sulfate, often referred to as sodium lauryl sulfate (SLS), is a surfactant and detergent predominantly used in various personal care products such as shampoos, toothpastes, and soaps. It serves to lower surface tension, allowing for better mixing of ingredients and enhancing the cleansing properties of formulations. In pharmaceutical contexts, it is occasionally utilized as an excipient or emulsifying agent.

Indications

  • Cleansing agent
  • Surfactant in personal care products
  • Emulsifying agent in pharmaceutical formulations
  • Stabilizer in topical preparations

Dosage

Children: Refer to specific product guidelines, as lauryl sulfate is primarily used as an excipient or in topical formulations rather than as a therapeutic agent.

Adults: Refer to specific product guidelines, as lauryl sulfate is primarily used as an excipient or in topical formulations rather than as a therapeutic agent.

Mechanism of action

Lauryl sulfate functions primarily as a surfactant by disrupting the lipid bilayer of cell membranes. This action increases the permeability of the cell membranes, leading to enhanced absorption of other active ingredients. It also reduces the surface tension of water, which helps in the dispersion of particles in solutions.

Pharmacodynamics

The pharmacodynamics of lauryl sulfate relate to its ability to disrupt cellular membranes and facilitate the solubilization of drugs. Its surfactant properties also contribute to the emulsification of oil and water mixtures, which can improve the bioavailability of certain compounds. However, its irritant potential should be considered, as it can cause skin and mucosal irritation in sensitive individuals.

Pharmacokinetics

Lauryl sulfate is generally not absorbed systemically due to its large molecular size and ionic nature. When applied topically, it may cause localized effects, but systemic exposure is minimal. The elimination of lauryl sulfate primarily occurs through degradation and elimination via the gastrointestinal tract if ingested. Its distribution within the body is limited due to its surfactant properties and low bioavailability.

Adverse effects

  • Skin irritation
  • Dryness of skin
  • Dermatitis
  • Allergic reactions

Precautions

  • Use with caution in individuals with sensitive skin
  • Avoid contact with eyes and mucous membranes

Pregnancy

There is limited data on the safety of lauryl sulfate during pregnancy. It is advisable to use with caution and consult a healthcare provider.

Breast-feeding

There is insufficient data on the excretion of lauryl sulfate in human milk. Caution is recommended while using this product during breastfeeding.

Storage

Store in a cool, dry place away from direct sunlight. Keep out of reach of children.

Formulations

  • Topical creams
  • Shampoos
  • Cleansing products

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

Clinical monograph: maize

Maize, also known as corn, is a cereal grain first domesticated by indigenous peoples in southern Mexico about 10,000 years ago. It is a staple food in many parts of the world and is used for human consumption, animal feed, and as a raw material in various industrial processes. Maize is rich in carbohydrates, particularly starch, and provides essential nutrients such as vitamins B and E, magnesium, and dietary fiber.

Indications

  • Nutritional support
  • Source of carbohydrates
  • Dietary fiber source
  • Animal feed

Dosage

Children: As with adults, there are no specific dosing recommendations for maize for children. It can be introduced into the diet in age-appropriate forms and quantities, keeping in mind the overall dietary balance.

Adults: There are no specific dosing recommendations for maize as it is typically consumed as part of a balanced diet. It can be included in daily meals in various forms such as whole kernels, flour, or as part of dishes.

Mechanism of action

Maize primarily acts as a source of energy due to its high carbohydrate content. The complex carbohydrates in maize are broken down into glucose, which is then utilized by the body for energy production. It also contributes to dietary fiber intake, which can aid in digestive health and regulation of blood sugar levels.

Pharmacodynamics

The consumption of maize influences blood glucose and insulin levels due to its carbohydrate content. It has a relatively low glycemic index when consumed in whole form, which can help in managing blood sugar levels. The dietary fiber present in maize can also promote satiety and aid in weight management.

Pharmacokinetics

The digestion of maize begins in the mouth with salivary amylase breaking down starches into simpler sugars. In the stomach and small intestine, enzymes further break down these carbohydrates. The resultant glucose is absorbed into the bloodstream, where it is transported to cells for energy production. The absorption rate can vary based on the form of maize consumed (e.g., whole kernels versus processed forms).

Pregnancy

Maize is generally considered safe for consumption during pregnancy as it is a staple food and provides essential nutrients.

Breast-feeding

Maize is safe to consume while breastfeeding and can provide important nutrients to both the mother and the infant.

Storage

Store in a cool, dry place, away from moisture and pests. Properly sealed containers can help prolong shelf life.

Formulations

  • Whole maize grains
  • Maize flour (cornmeal)
  • Maize starch
  • Maize oil

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

Clinical monograph: povidone

Povidone, also known as polyvinylpyrrolidone (PVP), is a synthetic polymer that is used as a water-soluble binder, stabilizer, and film-forming agent in various pharmaceutical formulations. It is recognized for its ability to enhance the solubility and bioavailability of drugs, making it valuable in both topical and oral therapies. Povidone has antiseptic properties and is commonly used in wound care, surgical scrubs, and as an excipient in medications.

Indications

  • Topical antiseptic for skin disinfection
  • Surgical scrubs and hand sanitizers
  • Wound care management
  • Pharmaceutical excipient in solid and liquid formulations

Dosage

Children: Refer to specific product guidelines for pediatric dosing recommendations, as doses can vary based on formulation and intended use.

Adults: Refer to specific product guidelines for dosing recommendations, as doses can vary based on the formulation and intended use.

Mechanism of action

Povidone acts by forming a complex with iodine when used as an antiseptic, which releases iodine slowly to exert its antimicrobial effect. The iodine disrupts microbial cell walls and interferes with protein synthesis, leading to cell death. Additionally, as a polymer, povidone can enhance drug solubility and stability by forming a hydrophilic matrix.

Pharmacodynamics

Povidone has a broad spectrum of antimicrobial activity against bacteria, viruses, and fungi. Its antiseptic properties are primarily due to the release of iodine, which is effective in reducing microbial load and preventing infection. The polymer's ability to bind to various substances allows it to be utilized in formulations that require improved stability and solubility.

Pharmacokinetics

Povidone is not absorbed systemically when applied topically, as it remains localized at the site of application. Its pharmacokinetics are largely dependent on the formulation and route of administration, with the polymer being metabolized by hydrolysis and excreted in urine as low-molecular-weight compounds. The release and activity of iodine are influenced by the concentration of povidone and the presence of organic matter.

Adverse effects

  • Local irritation
  • Allergic reactions
  • Skin rashes
  • Hypersensitivity reactions

Precautions

  • Use with caution in patients with known allergies to iodine or povidone-iodine
  • Avoid use in deep puncture wounds or serious burns

Pregnancy

Povidone is generally considered safe for use during pregnancy, but it is advisable to consult a healthcare professional before use.

Breast-feeding

Povidone is considered safe during breastfeeding, but it is recommended to consult a healthcare professional.

Storage

Store at room temperature, away from moisture and heat. Keep the container tightly closed.

Formulations

  • Topical solution
  • Ointment
  • Surgical scrub
  • Gauze impregnated with povidone-iodine

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

Clinical monograph: starch

Starch is a polysaccharide carbohydrate consisting of a large number of glucose units joined by glycosidic bonds. It is a major energy source in the human diet and is found in numerous food sources such as grains, legumes, and tubers. In a clinical setting, starch can also be used as an excipient in various pharmaceuticals and is sometimes utilized in enteral nutrition formulations.

Indications

  • Nutritional supplementation
  • Energy source in enteral nutrition
  • Excipient in pharmaceutical formulations

Dosage

Children: Refer to specific guidelines or product inserts for dosing information, as it can vary based on the context of use.

Adults: Refer to specific guidelines or product inserts for dosing information, as it can vary based on the context of use.

Mechanism of action

Starch is broken down into glucose units by enzymes such as amylase during digestion. The glucose is then absorbed in the intestines and utilized for energy production in the body's cells. This pathway involves hydrolysis of the glycosidic bonds, converting starch into simpler sugars.

Pharmacodynamics

Starch primarily serves as an energy source. Its digestion and absorption lead to an increase in blood glucose levels, which provides energy for metabolic processes. In this context, it plays a crucial role in maintaining energy homeostasis in the body.

Pharmacokinetics

Starch is not absorbed in its polymeric form; it must first be enzymatically hydrolyzed into simpler sugars such as maltose and glucose. The digestion and absorption of starch occur predominantly in the small intestine, with glucose being readily absorbed into the bloodstream. The rate of absorption can vary depending on the type of starch and its physical form.

Adverse effects

  • Allergic reactions
  • Gastrointestinal discomfort
  • Diarrhea
  • Constipation

Precautions

  • Use with caution in individuals with known allergies to starch or starch derivatives
  • Monitor for gastrointestinal symptoms in patients with a history of digestive disorders

Pregnancy

Starch is generally considered safe for use during pregnancy. However, it should be consumed in moderation as part of a balanced diet.

Breast-feeding

Starch is deemed safe for nursing mothers when used in moderation as part of a balanced diet.

Storage

Store in a cool, dry place away from moisture and direct sunlight.

Formulations

  • Powder
  • Granules
  • Tablets
  • Suspensions

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: Albendazole

PubChem CID 2082

Molecular formula: C12H15N3O2S

Mechanism of action

Albendazole causes degenerative alterations in the tegument and intestinal cells of the worm by diminishing its energy production, ultimately leading to immobilization and death of the parasite. It works by binding to the colchicine-sensitive site of tubulin, thus inhibiting its polymerization or assembly into microtubules. As cytoplasmic microtubules are critical in promoting glucose uptake in larval and adult stages of the susceptible parasites, the glycogen stores of the parasites are depleted. Degenerative changes in the endoplasmic reticulum, the mitochondria of the germinal layer, and the subsequent release of lysosomes result in decreased production of adenosine triphosphate (ATP), which is the energy required for the survival of the helminth. Benzimidazoles produce many biochemical changes in susceptible nematodes, eg, inhibition of mitochondrial fumarate reductase, reduced glucose transport, and uncoupling of oxidative phosphorylation ... /but/ the primary action ... /should be/ to inhibit microtubule polymerization by binding to beta-tubulin. The selective toxicity of these agents derives from the fact that specific, high-affinity binding to parasite beta-tubulin occurs at much lower concn than does binding to the mammalian protein ... Benzimidazole-resistant Haemonchus contortus display reduced high-affinity drug binding to beta-tubulin and alterations in beta-tubulin isotype gene expression that correlate with drug resistance ... Two identified mechanisms of drug resistance in nematodes involve both a progressive loss of "susceptible" beta-tubulin gene isotypes together with emergence of a "resistant" isotype with a conserved point mutation that encodes a tyrosine instead of phenylalanine at position 200 of beta-tubulin. While this mutation may not be required for benzimidazole resistance in all parasites, eg, Giardia lamblia, benzimidazole resistance in parasitic nematodes is unlikely to be overcome by novel benzimidazole analogs, because tyrosine also is present at position 200 of human beta-tubulin. /Benzimidazoles/ Although the exact mechanism of action of albendazole has not been fully elucidated, the principal anthelmintic effect of benzimidazoles, including albendazole, appears to be the specific, high-affinity binding of the drug to free beta-tubulin in parasite cells, resulting in selective inhibition of parasite microtubule polymerization, and inhibition of microtubule-dependent uptake of glucose. Benzimidazole drugs bind to the beta-tubulin of parasites at much lower concentrations than to mammalian beta-tubulin protein; the drugs do not inhibit glucose uptake in mammals, and do not appear to have any effect on blood glucose concentrations in humans The mode of action of albendazole is by binding strongly with the tubulin in the cells of nematodes. The intestinal cells of the nematode are particularly affected, resulting in a loss of absorptive function which causes the nematodes to starve to death.

Pharmacodynamics

Albendazole is a broad-spectrum anthelmintic. The principal mode of action for albendazole is by its inhibitory effect on tubulin polymerization which results in the loss of cytoplasmic microtubules.

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

Molecular reference: glycolate

PubChem CID 757

Molecular formula: C2H4O3

Mechanism of action

Ethylene glycol toxicity results from its metabolism to glycolic acid and other toxic metabolites. The accumulation of glycolate and the elimination kinetics of ethylene glycol and its metabolites are not well understood, so studies with male Sprague-Dawley rats and mixed breed dogs have been carried out. Ethylene glycol was administered by gavage to rats and dogs which were placed in metabolic cages for urine and blood sample collection at timed intervals. The peak plasma level of ethylene glycol occurred at 2 hr after dosing and that of glycolate between 4-6 hr. The rate of ethylene glycol elimination was somewhat faster in rats with a half-life of 1.7 hr compared to 3.4 hr in dogs. The maximum plasma level of glycolate was greater in rats although the pattern of accumulation was similar to that in dogs. Glycolate disappeared from the plasma at the same time as ethylene glycol, suggesting a slower rate of elimination of the metabolite than that of ethylene glycol. Renal excretion of ethylene glycol was an important route for its elimination accounting for 20-30% of the dose. Renal excretion of glycolate represented about 5% of the dose. Ethylene glycol induced an immediate, but short lived diuresis compared to that in control rats. Minimal clinical effects (mild acidosis with no sedation) were noted at these doses of ethylene glycol (1-2 g/kg) in both rats and dogs. The results indicate that the toxicokinetics of ethylene glycol and glycolate were similar in both species. The effect of 0.35 to 0.8 mmol/kg glycolic acid and 1.0 to 4.4 mmol/kg sodium glycolate on cyclopropane-epinephrine induced cardiac arrhythmias was examined using dogs. Doses of 0.35 to 0.5 mmol/kg glycolic acid increased the duration of arrhythmias in the 13 dogs tested, whereas doses >0.5 mmol/kg decreased or totally eliminated the arrhythmias in each of 11 dogs. Depression was observed for many of the dogs at higher doses. Sodium glycolate was much less effective in decreasing the arrhythmias, with 3 mmol/kg being required and its action being transient.

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

This drug in other countries

The same active ingredient registered across other registries we cover - including different brands.