furosemide reference
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(furosemide · DailyMed)
Registered Tanzania · TMDA

DUROTIC

Benzyl Alcohol BP 10 mg/ml,Furosemide 50 mg/ml,Sodium Hydroxide 6.500 mg/ml,Water for injections Quantity Sufficient q.s

TAN 25 VM 0500 Solution for injection 50MG/ML dermatologicals INN generic

What it does

Alcohol is a substance that can affect your mood and behavior. It is important to use it carefully, especially if you are taking other medications.

Commonly used for: social enjoyment, anxiety relief, temporary relaxation

Read more in plain English ↓

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

Ask about this medicine

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 25 VM 0500
Registration date
2025-08-14
Expiry date
2030-08-13
Status
Registered/Compliant
Active ingredient
Benzyl Alcohol BP 10 mg/ml,Furosemide 50 mg/ml,Sodium Hydroxide 6.500 mg/ml,Water for injections Quantity Sufficient q.s
Strength
50MG/ML
Pack size
-
Therapeutic class
-
ATC class (WHO)
D08AX - Other antiseptics and disinfectants
Drug group
DERMATOLOGICALS
RxNorm RxCUI
448
Manufacturer / MAH
Ashish Life Science
Country of origin
INDIA
Manufacturer location
Aston Building, 1101-1104, Sundervan Complex, Lokhandwala Complex, Andheri West, Mumbai, Maharashtra 400053, India

Source: Tanzania Medicines and Medical Devices Authority · fetched 2026-03-11 23:44:05 · updated 2026-09-24 03:00:47

Drug Interactions

12
Check interactions

Pharmacodynamic Warnings

Alcohol appears in TABLE 1: Drugs that cause hepatotoxicity

Alcohol appears in TABLE 8: Drugs that cause hypotension

Furosemide appears in TABLE 8: Drugs that cause hypotension

Alcohol appears in TABLE 11: Drugs with CNS depressant effects

Furosemide appears in TABLE 17: Drugs that reduce serum potassium

Furosemide appears in TABLE 18: Drugs that cause hyponatraemia

Furosemide appears in TABLE 19: Drugs that cause ototoxicity

Unknown (12)

Acitretin - increases concentration

Alcohol potentially increases the concentration of retinoids (acitretin). Avoid and for 2 months after stopping acitretin.

Unknown Study

Antiepileptics - increases risk of visual disturbances

Alcohol potentially increases the risk of visual disturbances when given with antiepileptics (retigabine).

Unknown Study

Furosemide - decreases exposure

Aliskirenslightlydecreasestheexposuretoloopdiuretics (furosemide).oStudy →AlsoseeTABLE8p.1518

Unknown Study

Furosemide - increases exposure

Leflunomideispredictedtoincreasetheexposuretoloop diuretics(furosemide).oTheoretical

Unknown Theoretical

Furosemide - increases exposure

Nitisinone is predicted to increase the exposure to furosemide.

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 alcohol

Alcohol is a substance that can affect your mood and behavior. It is important to use it carefully, especially if you are taking other medications.

What it treats

  • social enjoyment
  • anxiety relief
  • temporary relaxation

How it works

Alcohol affects the brain and central nervous system, leading to changes in mood and behavior.

Who it's for

Adults who consume alcohol in moderation for social or relaxation purposes.

Cautions

  • • Be cautious if taking medications that can harm the liver.
  • • Use with care if you have low blood pressure.
  • • Avoid combining with medications that can cause drowsiness.

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

About benzyl

Benzyl is an ingredient used in various treatments, often in topical formulations.

What it treats

  • skin infections
  • eczema
  • scabies

How it works

Benzyl helps to kill bacteria or parasites on the skin, promoting healing.

Who it's for

This treatment is for individuals with skin conditions requiring antibacterial or antiparasitic action.

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

About furosemide

Furosemide is a type of loop diuretic that helps the body get rid of excess fluid by making you urinate more.

What it treats

  • fluid retention (oedema)
  • high blood pressure (hypertension)

How it works

It works by blocking sodium and chloride reabsorption in the kidneys, which helps to remove water from the body.

Who it's for

It is used for adults and children who need to reduce excess fluid or lower high blood pressure.

Drug class

Loop diuretics

Cautions

  • • Be careful if you are taking medications that lower blood pressure.
  • • Avoid drugs that can lower potassium levels in the blood.
  • • Watch out for medications that can cause low sodium levels.
  • • Some drugs can harm your ears, so be cautious if you are taking them.

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

About hydroxide

Hydroxide is a compound used to help neutralize stomach acid and relieve indigestion or heartburn.

What it treats

  • indigestion
  • heartburn

How it works

Hydroxide works by neutralizing the excess acid in the stomach, which helps to reduce discomfort.

Who it's for

Hydroxide is suitable for adults and children experiencing symptoms of excess stomach acid.

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

About injections

Injections are a method of delivering medication directly into the body using a syringe and needle.

What it treats

  • administering vaccines
  • treating infections
  • managing pain
  • delivering hormones
  • providing nutrients

How it works

Injections allow medicines to enter the bloodstream quickly, helping them work faster than oral medications.

Who it's for

Injections may be used for anyone who needs medication that cannot be taken by mouth or needs rapid effect.

Cautions

  • • May cause discomfort or pain at the injection site.
  • • Risk of infection if not administered properly.
  • • Some people may have allergic reactions to injected medications.

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

About quantity

This medicine is used to treat various health conditions, helping to improve your overall well-being.

How it works

This medicine works by targeting specific processes in the body to provide relief from symptoms or manage certain conditions.

Who it's for

This medicine is intended for individuals who have been prescribed it by a healthcare professional for their specific health needs.

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

About sufficient

Sufficient is a medicine that helps manage certain conditions effectively.

How it works

Sufficient works by addressing the underlying issues of specific health conditions.

Who it's for

Sufficient is suitable for individuals with specific health needs as determined by a healthcare professional.

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

Clinical monograph: Furosemide

BNF-referenced

Furosemide is a potent loop diuretic primarily used to manage conditions associated with fluid overload, such as heart failure, cirrhosis, and renal disease. It promotes diuresis by inhibiting the reabsorption of sodium and chloride in the kidneys, leading to increased urine output and decreased fluid retention. It is administered either orally or intravenously, depending on the clinical situation and urgency.

Indications

  • Oedema associated with congestive heart failure
  • Oedema due to hepatic cirrhosis
  • Nephrotic syndrome

Mechanism of action

Furosemide promotes diuresis by blocking tubular reabsorption of sodium and chloride in the proximal and distal tubules, as well as in the thick ascending loop of Henle. This is achieved through competitive inhibition of sodium-potassium-chloride cotransporters (NKCC2), preventing sodium reabsorption and consequently increasing the excretion of water, sodium, chloride, magnesium, calcium, hydrogen, and potassium ions. Furosemide also exerts direct vasodilatory effects, which contribute to its effectiveness in treating acute pulmonary edema.

Pharmacodynamics

Furosemide effectively manages hypertension and edema associated with congestive heart failure, cirrhosis, and renal disorders, including nephrotic syndrome. It enhances renal excretion of sodium and water by inhibiting their reabsorption from the nephron, resulting in increased urine production. The diuretic effect begins within 1 to 1.5 hours after oral administration, with peak effects occurring within 2 hours and lasting 4 to 6 hours. Intravenous administration leads to rapid effects, with onset within 5 minutes and peak effects at 30 minutes.

Pharmacokinetics

Furosemide is well-absorbed when given orally, with a bioavailability of approximately 50-70%. It is extensively protein-bound (approximately 95-98%) and is secreted via active transport mechanisms in the kidneys. The elimination half-life is about 1-2 hours in healthy individuals, but this can be prolonged in patients with renal impairment. Furosemide is excreted primarily through the kidneys, with a significant portion undergoing hepatic metabolism. Monitoring of electrolytes is necessary due to the risk of hypokalemia and other electrolyte imbalances.

Contra-indications

  • Addison's disease
  • anuria
  • comatose or pre-comatose states associated with liver cirrhosis
  • dehydration
  • hyperkalaemia
  • hypovolaemia
  • resistant oedema
  • hypotension
  • impaired micturition
  • prostatic enlargement

Adverse effects

  • agranulocytosis
  • aplastic anaemia
  • dehydration
  • hypotension
  • malaise
  • mucosal reaction
  • nephritis
  • tubulointerstitial nephritis
  • pancreatitis
  • acute kidney injury
  • hepatic disorders
  • skin eruption
  • tetany
  • vasculitis
  • hearing impairment
  • gastrointestinal discomfort
  • gynaecomastia
  • musculoskeletal pain
  • hyperglycaemia
  • hyperuricaemia
  • muscle cramps

Interactions

  • aliskiren + furosemide: Unknown (decreases exposure)
  • leflunomide + furosemide: Unknown (increases exposure)
  • nitisinone + furosemide: Unknown (increases exposure)
  • teriflunomide + furosemide: Unknown (increases exposure)

Precautions

  • Caution in patients with hepatorenal syndrome
  • Caution in patients with hypoproteinaemia as it may reduce diuretic effect and increase risk of side effects
  • Should correct hypovolaemia before initiation of treatment
  • Monitor plasma-potassium concentration
  • Monitor electrolytes

Pregnancy

Furosemide should not be used to treat gestational hypertension because of the maternal hypovolaemia associated with this condition.

Breast-feeding

Manufacturers advise avoiding use during breastfeeding as furosemide may inhibit lactation; however, the amount in milk is too small to be harmful.

Storage

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

Formulations

  • Tablets
  • Oral suspension
  • Oral solution
BNF 85 (British National Formulary) p.268 BNF for Children 2019-2020 p.164 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: Alcohol

BNF-referenced

Alcohol is a volatile, flammable liquid used primarily as an antiseptic for skin disinfection and preparation before injections. It is commonly employed in medical settings to cleanse the skin and reduce the risk of infection.

Indications

  • Skin disinfection
  • Preparation of skin before injections
  • Cleansing minor wounds

Dosage

Children: Apply to the skin as required; consult product literature for specific guidance.

Adults: Apply to the skin as required for disinfection.

Mechanism of action

Alcohol exerts its antiseptic effect by denaturing proteins, disrupting cell membranes, and dehydrating microbial cells, leading to cell lysis and death.

Pharmacodynamics

Alcohol has broad-spectrum antimicrobial activity, effective against bacteria, fungi, and viruses. Its efficacy is influenced by concentration, with higher concentrations generally being more effective.

Pharmacokinetics

Alcohol is rapidly absorbed through the skin and mucous membranes. It is metabolized primarily in the liver, with a half-life that varies based on the individual's metabolic rate and the amount consumed.

Contra-indications

  • Concomitant use with lithium
  • Regular use in neonates
  • Patients with severe burns when diathermy has been preceded by application of alcoholic skin disinfectants

Adverse effects

  • Eye erythema
  • Punctate keratitis
  • Cytotoxicity
  • Eye discolouration

Interactions

  • Increases risk of visual disturbances with antiepileptics
  • Increases concentration with methylphenidate
  • Increases risk of facial flushing and skin irritation with topical pimecrolimus
  • Increases concentration with retinoids
  • Increases concentration with acitretin
  • Increases risk of facial flushing and skin irritation with topical tacrolimus
  • Decreases antidiuretic effect with vasopressin

Precautions

  • Avoid regular application to inflamed or broken skin or mucosa
  • Avoid broken skin
  • Flammable

Pregnancy

Sufficient iodine may be absorbed to affect the fetal thyroid in the second and third trimester.

Breast-feeding

Avoid regular or excessive use.

Storage

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

Formulations

  • Betadine 2.5% dry powder spray
  • Industrial methylated spirit
  • Povidone-Iodine 25 mg per 1 gram
BNF for Children 2019-2020 p.806 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: benzyl

BNF-referenced

Benzylpenicillin, a member of the penicillin class of antibiotics, is primarily used to treat infections caused by susceptible microorganisms. It is effective against a range of Gram-positive bacteria and some Gram-negative bacteria, making it a valuable agent in the treatment of various infections, including pneumonia, meningitis, and syphilis.

Indications

  • Bacterial infections
  • Pneumonia
  • Meningitis
  • Syphilis
  • Endocarditis
  • Skin and soft tissue infections

Dosage

Children: Paediatric dosing for benzylpenicillin is determined by the child's weight and the severity of the infection. Refer to the BNF for Children for specific dosing guidelines.

Adults: The usual adult dose for benzylpenicillin varies based on the type and severity of the infection. It is generally administered via intramuscular or intravenous routes. For severe infections, doses may range from 1 to 4 million units every 4 to 6 hours.

Mechanism of action

Benzylpenicillin exerts its antibacterial effects by inhibiting the synthesis of bacterial cell walls. It binds to penicillin-binding proteins (PBPs) located inside the bacterial cell wall, disrupting the transpeptidation process, which is crucial for cross-linking peptidoglycan layers. This inhibition leads to cell lysis and death of the bacteria.

Pharmacodynamics

Benzylpenicillin demonstrates time-dependent bactericidal activity, meaning its effectiveness is related to the duration of time the drug concentration remains above the minimum inhibitory concentration (MIC) for the target bacteria. It has a narrow spectrum of activity, primarily targeting Gram-positive cocci and some Gram-negative rods.

Pharmacokinetics

Benzylpenicillin is typically administered parenterally due to poor oral absorption. It is rapidly distributed throughout the body and can penetrate various tissues, including the central nervous system during inflammation. The drug is primarily eliminated by renal excretion, with a half-life of approximately 30 minutes to 1 hour in healthy individuals. Dosage adjustments may be necessary in patients with renal impairment.

Interactions

  • leflunomide+benzylpenicillin: Unknown (increases exposure)
  • nitisinone+benzylpenicillin: Unknown (increases exposure)
  • teriflunomide+benzylpenicillin: Unknown (increases exposure)

Pregnancy

Benzylpenicillin is generally considered safe to use during pregnancy, as it is a penicillin antibiotic and has a long history of use.

Breast-feeding

Benzylpenicillin is excreted in breast milk in small amounts, but it is not expected to have adverse effects on a nursing infant.

Storage

Store in a cool, dry place, protected from light. Reconstituted solutions should be used promptly or stored in a refrigerator and used within a limited time frame.

Formulations

  • Benzylpenicillin injection

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: hydroxide

BNF-referenced

Hydroxide, represented by the molecular formula HO-, is an anion commonly found in various chemical and biological systems. It plays a crucial role in acid-base chemistry and is a fundamental component in many biochemical pathways. Hydroxide ions are involved in maintaining pH balance in biological systems and participate in various metabolic processes.

Dosage

Children: Refer to specific guidelines for pediatric dosing; consult the BNF for Children for accurate dosage information.

Adults: Refer to specific guidelines for use; dosage may vary based on the context of use.

Mechanism of action

Hydroxide ions act primarily as bases, neutralizing acids to form water and salts. They participate in various biochemical pathways, including selenium metabolism and the degradation of reactive oxygen species. Hydroxide can influence enzyme activity and stability by altering the pH of the environment, thereby affecting metabolic reactions.

Pharmacodynamics

Hydroxide ions can impact biological processes by changing the local pH, which influences enzyme activity, ion transport, and the solubility of other compounds. Their ability to neutralize acids can help regulate physiological pH, contributing to homeostasis in living organisms.

Pharmacokinetics

As an inorganic ion, hydroxide does not undergo traditional pharmacokinetic processes like absorption, distribution, metabolism, or excretion. Instead, it is rapidly equilibrated in biological fluids and participates in acid-base reactions, having immediate effects on the local environment.

Pregnancy

There is limited information regarding the use of hydroxide during pregnancy. Consult a healthcare professional for advice.

Breast-feeding

Limited data is available on the excretion of hydroxide in breast milk. Consult a healthcare professional before use.

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: injections

Injections refer to the administration of a substance directly into the body through a syringe and needle. This method is commonly used for delivering medications, vaccines, or biological therapies. Injections can be administered intravenously, intramuscularly, subcutaneously, or intradermally, depending on the drug's properties and the desired effect. This route ensures rapid onset of action, making it ideal for emergencies or when immediate therapeutic effects are required.

Indications

  • Pain management
  • Vaccination
  • Antibiotic therapy
  • Hormonal therapies
  • Anesthesia
  • Nutritional support
  • Chemotherapy

Dosage

Children: Refer to specific drug guidelines for paediatric dosing, as it requires careful consideration of weight and age.

Adults: Refer to specific drug guidelines for adult dosing, as it varies widely depending on the medication and clinical condition.

Mechanism of action

The mechanism of action of injected drugs varies widely based on the specific medication being administered. Generally, injected drugs enter the bloodstream directly, allowing them to circulate rapidly throughout the body. For instance, antibiotics may work by inhibiting bacterial cell wall synthesis, while analgesics may modulate pain pathways in the central nervous system. Each drug has unique pathways through which it achieves its therapeutic effects.

Pharmacodynamics

Pharmacodynamics refers to the effects of drugs on the body and their mechanisms of action. For injectable medications, effects can be immediate or delayed, depending on the drug's formulation and route of administration. Factors influencing pharmacodynamics include receptor affinity, drug concentration, and the presence of other substances that may enhance or inhibit the drug's effects. For example, some injectable drugs may require specific receptors to exert their effects, while others may have a broader range of action.

Pharmacokinetics

Pharmacokinetics involves the absorption, distribution, metabolism, and excretion (ADME) of injected drugs. After administration, drugs are rapidly absorbed into the bloodstream, leading to quick therapeutic effects. The distribution depends on factors such as blood flow, tissue permeability, and protein binding. Drugs are metabolized primarily in the liver and excreted through the kidneys or bile. The pharmacokinetic profile can vary widely based on the drug's chemical nature, dosage, and individual patient factors.

Pregnancy

Safety during pregnancy depends on the specific injection and its active ingredients. It is essential to consult a healthcare professional for guidance.

Breast-feeding

The safety of injections during breastfeeding varies by the specific medication. It is recommended to seek advice from a healthcare provider.

Storage

Store injections as per manufacturer's guidelines, usually in a cool, dry place away from direct sunlight. Some may require refrigeration.

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: quantity

Quantity is a term that refers to the amount or measurement of a substance, often used in the context of pharmacology to denote the dosage or concentration of medications. It is essential for ensuring proper therapeutic levels and avoiding toxicity.

Dosage

Children: Refer to the specific drug's dosing guidelines for children.

Adults: Refer to the specific drug's dosing guidelines for adults.

Pregnancy

Consult with a healthcare provider, as safety data may vary depending on the specific drug and its classification.

Breast-feeding

Consult with a healthcare provider, as safety data may vary depending on the specific drug and its classification.

Storage

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

Sufficient is a term that may refer to the adequacy or appropriateness of a drug's effect or dosage in a clinical context. Without a specific drug name, this entry focuses on general pharmacological principles rather than on a particular medication. It is essential to consider the pharmacological properties, clinical uses, and dosing guidelines of specific agents when evaluating their sufficiency for therapeutic purposes.

Dosage

Children: Refer to specific drug guidelines in the BNF for Children for appropriate dosing information.

Adults: Refer to specific drug guidelines in the BNF for appropriate dosing information.

Mechanism of action

The mechanism of action will vary significantly depending on the specific drug referred to as 'sufficient.' Generally, mechanisms of action may include receptor agonism or antagonism, enzyme inhibition, or modulation of signaling pathways within cells. Understanding the specific drug's pharmacodynamics is crucial for determining its therapeutic efficacy.

Pharmacodynamics

Pharmacodynamics involves the study of the biochemical and physiological effects of drugs and their mechanisms of action. It encompasses the interactions between drug molecules and target receptors, the resulting cellular responses, and the overall therapeutic effects observed in patients. The relationship between drug concentration and effect is fundamental to understanding drug efficacy and safety.

Pharmacokinetics

Pharmacokinetics describes how a drug is absorbed, distributed, metabolized, and excreted in the body. Key parameters include bioavailability, volume of distribution, clearance, and half-life. These factors influence dosing regimens and the timing of therapeutic effects. Individual patient characteristics, such as age, sex, organ function, and genetic factors, can also impact pharmacokinetic profiles.

Pregnancy

Consult with a healthcare provider before use. Insufficient data on safety.

Breast-feeding

Consult with a healthcare provider before use. Insufficient data on safety.

Storage

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

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: Alcohol

PubChem CID 702

Molecular formula: C2H6O

Mechanism of action

Ethanol affects the brain’s neurons in several ways. It alters their membranes as well as their ion channels, enzymes, and receptors. Alcohol also binds directly to the receptors for acetylcholine, serotonin, GABA, and the NMDA receptors for glutamate. The sedative effects of ethanol are mediated through binding to GABA receptors and glycine receptors (alpha 1 and alpha 2 subunits). It also inhibits NMDA receptor functioning. In its role as an anti-infective, ethanol acts as an osmolyte or dehydrating agent that disrupts the osmotic balance across cell membranes. ... Ethanol is known to affect a large number of membrane proteins that participate in signaling pathways such as neurotransmitter receptors, enzymes, and ion channels, and there is extensive evidence that ethanol interacts with a variety of neurotransmitters. The major actions of ethanol involve enhancing the inhibitory effects of gamma-aminobutyric acid (GABA) at GABAa receptors and blockade of the N-methyl-D-aspartate (NMDA) subtype of glutamate, an excitatory amine acid (EAA) receptor. Animal studies indicate that the acute effects of ethanol result from competitive inhibition of glycine binding to NMDA receptor and disruption of glutamatergic neurotransmission by inhibiting the response of the NMDA receptor. Persistent glycine antagonism and attenuation of glutamatergic neurotransmission by chronic ethanol exposure results in tolerance to ethanol by enhancing EAA neurotransmission and NMDA receptor upregulation. The latter appears to involve selective increases in NMDA R2B subunit concentrations and other molecular changes in specific brain loci. The abrupt withdrawal of ethanol thus produces a hyperexcitable state that leads to the ethanol withdrawal syndrome and excitotoxic neuronal death. GABA-mediated inhibition, which normally acts to limit excitation, is eliminated during ethanol withdrawal syndrome and further intensifies this excitation. In addition, NMDA receptors function to inhibit the release of dopamine in the nucleus accumbens and mesolimbic structures, which modulate the reinforcing action of addictive xenobiotics such as ethanol. By inhibiting NMDA receptor activity, ethanol could increase dopamine release from the nucleus accumbens and ventral tegmental area and could thus create dependence. Chronic ethanol administration also results in tolerance, dependence, and an ethanol withdrawal syndrome, mediated, in part, by desensitization and or downregulation of GABAa receptors. The development of alcoholic ketoacidosis (AKA) requires that a combination of physical and physiologic events occur. The normal response to starvation and depletion of hepatic glycogen stores is for amino acids to be converted to pyruvate. Pyruvate can serve as a substrate for gluconeogenesis, be converted to acetyl-CoA, which can enter the Krebs cycle or can be utilized in various biosynthetic pathways (eg, fatty acid, ketone bodies, cholesterol, and acetylcholine) ... Ethanol metabolism generates NADH, resulting in an excess of reducing potential. This high redox state favors the conversion of pyruvate to lactate, diverting pyruvate from being a substrate for gluconeogenesis. To compensate for the lack of normal metabolic substrates, the body mobilizes fat from adipose tissue and increased fatty acid metabolism as an alternative source of energy. This response is mediated by a decrease in insulin and an increased secretion of glucagon, catecholamines, growth hormone, and cortisol. Fatty acid metabolism results in the formation of acetyl-CoA and it combines with the excess acetate that is generated from ethanol metabolism to form acetoacetate. Most of the acetoacetate is reduced to beta-hydroxybutyrate due to the excess reducing potential or high redox state of the cell. Volume depletion interferes with the renal elimination of acetoacetate and beta-hydroxybutyrate, and contributes to the acidosis. An elevated lactate concentration may result from shunting from pyruvate or

Pharmacodynamics

Alcohol produces injury to cells by dehydration and precipitation of the cytoplasm or protoplasm. This accounts for its bacteriocidal and antifungal action. When alcohol is injected in close proximity to nerve tissues, it produces neuritis and nerve degeneration (neurolysis). Ninety to 98% of ethanol that enters the body is completely oxidized. Ethanol is also used as a cosolvent to dissolve many insoluble drugs and to serve as a mild sedative in some medicinal formulations. Ethanol also binds to GABA, glycine, NMDA receptors and modulates their effects. Ethanol is also metabolised by the hepatic enzyme alcohol dehydrogenase.

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

Molecular reference: Furosemide

PubChem CID 3440

Molecular formula: C12H11ClN2O5S

Mechanism of action

Furosemide promotes diuresis by blocking tubular reabsorption of sodium and chloride in the proximal and distal tubules, as well as in the thick ascending loop of Henle. This diuretic effect is achieved through the competitive inhibition of sodium-potassium-chloride cotransporters (NKCC2) expressed along these tubules in the nephron, preventing the transport of sodium ions from the lumenal side into the basolateral side for reabsorption. This inhibition results in increased excretion of water along with sodium, chloride, magnesium, calcium, hydrogen, and potassium ions. As with other loop diuretics, furosemide decreases the excretion of uric acid. Furosemide exerts direct vasodilatory effects, which results in its therapeutic effectiveness in the treatment of acute pulmonary edema. Vasodilation leads to reduced responsiveness to vasoconstrictors, such as angiotensin II and noradrenaline, and decreased production of endogenous natriuretic hormones with vasoconstricting properties. It also leads to increased production of prostaglandins with vasodilating properties. Furosemide may also open potassium channels in resistance arteries. The main mechanism of action of furosemide is independent of its inhibitory effect on carbonic anhydrase and aldosterone. Though both in vivo and in vitro studies have demonstrated an anticonvulsant effect of the loop diuretic furosemide, the precise mechanism behind this effect is still debated. The current study investigates the effect of furosemide on Cs-induced epileptiform activity (Cs-FP) evoked in area CA1 of rat hippocampal slices in the presence of Cs(+) (5mM) and ionotropic glutamatergic and GABAergic receptor antagonists. As this model diverges in several respects from other epilepsy models it can offer new insight into the mechanism behind the anticonvulsive effect of furosemide. The present study shows that furosemide suppresses the Cs-FP in a dose-dependent manner with a near complete block at concentrations = 1.25 mM. Because furosemide targets several types of ion transporters we examined the effect of more selective antagonists. Bumetanide (20 uM), which selectively inhibits the Na-K-2Cl co-transporter (NKCC1), had no significant effect on the Cs-FP. VU0240551 (10 uM), a selective antagonist of the K-Cl co-transporter (KCC2), reduced the ictal-like phase by 51.73 +/- 8.5% without affecting the interictal-like phase of the Cs-FP. DIDS (50 uM), a nonselective antagonist of Cl(-)/HCO3(-)-exchangers, Na(+)-HCO3(-)-cotransporters, chloride channels and KCC2, suppressed the ictal-like phase by 60.8 +/- 8.1% without affecting the interictal-like phase. At 500 uM, DIDS completely suppressed the Cs-FP. Based on these results we propose that the anticonvulsant action of furosemide in the Cs(+)-model is exerted through blockade of the neuronal KCC2 and Na(+)-independent Cl(-)/HCO3(-)-exchanger (AE3) leading to stabilization of the activity-induced intracellular acidification in CA1 pyramidal neurons. Sodium chloride reabsorption in the thick ascending limb of the loop of Henle is mediated by the Na(+)-K(+)-2Cl(-) cotransporter (NKCC2). The loop diuretic furosemide is a potent inhibitor of NKCC2. However, less is known about the mechanism regulating the electrolyte transporter. Considering the well-established effects of nitric oxide on NKCC2 activity, cGMP is likely involved in this regulation. cGMP-dependent protein kinase I (cGKI; PKGI) is a cGMP target protein that phosphorylates different substrates after activation through cGMP. We investigated the potential correlation between the cGMP/cGKI pathway and NKCC2 regulation. We treated wild-type (wt) and cGKIa-rescue mice with furosemide. cGKIa-rescue mice expressed cGKIa only under the control of the smooth muscle-specific transgelin (SM22) promoter in a cGKI deficient background. Furosemide treatment increased the urine excretion of sodium and chloride in cGKIa-rescue mice compared to that in wt mice. We analyzed the phosphorylation of NKC

Pharmacodynamics

Furosemide manages hypertension and edema associated with congestive heart failure, cirrhosis, and renal disease, including the nephrotic syndrome. Furosemide is a potent loop diuretic that works to increase the excretion of Na+ and water by the kidneys by inhibiting their reabsorption from the proximal and distal tubules, as well as the loop of Henle. It works directly acts on the cells of the nephron and indirectly modifies the content of the renal filtrate. Ultimately, furosemide increases the urine output by the kidney. Protein-bound furosemide is delivered to its site of action in the kidneys and secreted via active secretion by nonspecific organic transporters expressed at the luminal site of action. Following oral administration, the onset of the diuretic effect is about 1 and 1.5 hours, and the peak effect is reached within the first 2 hours. The duration of effect following oral administration is about 4-6 hours but may last up to 8 hours. Following intravenous administration, the onset of effect is within 5 minutes, and the peak effect is reached within 30 minutes. The duration of action following intravenous administration is approximately 2 hours. Following intramuscular administration, the onset of action is somewhat delayed.

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

Molecular reference: benzyl

PubChem CID 123147

Molecular formula: C7H7

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

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