tresor Methlated Spirit
Ethanol 96% 72.50 %,Hexamethyl pararosaniline chloride 0.10 %,Purified Water 22.40 %,methanol 5 %
What it does
Ethanol is a type of alcohol commonly found in drinks. It can affect your mood and behavior.
Commonly used for: social drinking, disinfectant, solvent
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
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Sourcing - Kenya onlyRegistration & product details
Source: Tanzania Medicines and Medical Devices Authority · fetched 2026-03-11 23:37:57 · updated 2026-09-24 03:00:46
About ethanol
Ethanol is a type of alcohol commonly found in drinks. It can affect your mood and behavior.
What it treats
- social drinking
- disinfectant
- solvent
How it works
Ethanol works by affecting the brain and nervous system, which can lead to relaxation and a feeling of euphoria.
Who it's for
Adults who consume alcoholic beverages responsibly.
Cautions
- • Excessive consumption can lead to addiction and health problems.
- • Not recommended for people with liver disease or certain medical conditions.
- • Should not be mixed with certain medications.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About hexamethyl
Hexamethyl is a chemical compound that may have various applications in medicine.
How it works
The specific mechanism of action for hexamethyl is not well-defined in the provided information.
Who it's for
Hexamethyl may be used in certain medical contexts, but specific conditions are not listed.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About methanol
Methanol is a toxic substance and should not be used as a medication.
How it works
Methanol is not used for any medical purpose and is dangerous to health.
Who it's for
Methanol is not suitable for anyone as it is harmful.
Cautions
- • Ingesting methanol can cause serious health problems and is potentially fatal.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About pararosaniline
Pararosaniline is a dye used in laboratory settings, primarily for staining tissues and cells.
What it treats
- tissue staining
- cell staining
How it works
Pararosaniline works by binding to specific components in cells and tissues, making them visible under a microscope.
Who it's for
This is used mainly by healthcare professionals and researchers in laboratory environments.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About purified
Purified ingredients are often used in various medicines to ensure safety and effectiveness by removing impurities.
What it treats
- various medical conditions
How it works
Purified ingredients help in delivering the intended effects of the medicine without the risk of contaminants.
Who it's for
People who need medications with safe and effective ingredients.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: ethanol
BNF-referencedEthanol, commonly known as alcohol, is a colorless, volatile liquid with the molecular formula C2H6O. It is widely used as a recreational beverage and has various applications in medicine and industry. Ethanol acts as a central nervous system depressant, and its effects are primarily mediated through interactions with neurotransmitter systems. It exhibits bactericidal and antifungal properties, making it useful as an antiseptic. Ethanol is metabolized primarily in the liver and is associated with both acute and chronic effects on the body.
Indications
- Alcohol use disorder
- Acute alcohol intoxication
- Antiseptic for skin disinfection
Mechanism of action
Ethanol affects the brain’s neurons in several ways. It alters their membranes, ion channels, enzymes, and receptors. Ethanol binds directly to the receptors for acetylcholine, serotonin, GABA, and NMDA receptors for glutamate. The sedative effects are mediated through binding to GABA receptors and glycine receptors, while also inhibiting NMDA receptor functioning. As an anti-infective, ethanol acts as an osmolyte, disrupting the osmotic balance across cell membranes. The acute effects result from competitive inhibition of glycine binding to NMDA receptors, leading to disrupted glutamatergic neurotransmission.
Pharmacodynamics
Ethanol produces cellular injury through dehydration and precipitation of cytoplasm, contributing to its bactericidal and antifungal actions. It can lead to neuritis and nerve degeneration when injected near nerve tissues. Up to 98% of ethanol in the body is oxidized, primarily by the hepatic enzyme alcohol dehydrogenase. Its modulation of neurotransmitter receptors, particularly GABA and NMDA, leads to its sedative properties and potential for developing tolerance with chronic use.
Pharmacokinetics
Ethanol is readily absorbed from the gastrointestinal tract and distributed throughout the body. It has a volume of distribution of approximately 0.5 to 0.6 L/kg. Ethanol is metabolized predominantly in the liver by alcohol dehydrogenase to acetaldehyde, which is further oxidized to acetic acid by aldehyde dehydrogenase. The elimination half-life of ethanol varies but is generally around 4 to 5 hours. Factors such as age, sex, body weight, and genetic variability can influence ethanol metabolism.
Contra-indications
- Hypersensitivity to ethanol
- Acute alcohol intoxication
- Severe liver disease
- Pregnancy (in non-medicinal use)
- Severe pancreatitis
- Severe head injury or intracranial bleeding
Adverse effects
- Dizziness
- Nausea
- Vomiting
- Headache
- Sedation
- Cognitive impairment
- Respiratory depression
- Hypotension
- Gastrointestinal bleeding
- Alcohol withdrawal syndrome
Interactions
- CNS depressants (e.g., benzodiazepines, opioids) may enhance sedative effects
- Disulfiram may cause unpleasant reactions when taken with ethanol
- Acetaminophen may increase hepatic toxicity when used with ethanol
- Warfarin may have altered effects when used with ethanol
Precautions
- Caution in patients with a history of alcohol abuse
- Use with caution in patients with hepatic impairment
- Monitor for signs of respiratory depression
- Consider potential for addiction and withdrawal symptoms
- Use in moderation in older adults due to increased sensitivity
Pregnancy
Ethanol should be avoided during pregnancy due to the risk of fetal alcohol spectrum disorders.
Breast-feeding
Ethanol can pass into breast milk; breastfeeding should be avoided for a minimum of 2 hours after consumption.
Storage
Store in a cool, dry place away from light. Keep tightly closed and out of reach of children.
Formulations
- Oral solutions
- Topical antiseptics
- Intravenous formulations
- Medicinal tinctures
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: hexamethyl
Hexamethyl is an organic compound that is primarily known for its use as a chemical intermediate in the synthesis of various pharmaceuticals and agrochemicals. It is not widely used as a therapeutic agent in clinical practice, and its pharmacological profile is not extensively documented. The compound may have applications in research settings but lacks established clinical indications.
Dosage
Children: Refer to established pharmacological guidelines or clinical literature for any applicable dosing recommendations, as specific doses for hexamethyl are not available.
Adults: Refer to established pharmacological guidelines or clinical literature for any applicable dosing recommendations, as specific doses for hexamethyl are not available.
Mechanism of action
The precise mechanism of action of hexamethyl is not well-defined due to its limited use in clinical medicine. Generally, compounds with similar structures may act by influencing metabolic pathways or serving as substrates for enzymatic reactions, but specific details on hexamethyl's action are not available.
Pharmacodynamics
Hexamethyl's pharmacodynamics are largely unknown due to its limited therapeutic application. In general, the pharmacodynamics of organic compounds can involve interactions with biological molecules, influencing biochemical pathways, or modulating receptor activity. However, specific effects related to hexamethyl are not documented in the literature.
Pharmacokinetics
The pharmacokinetics of hexamethyl have not been thoroughly studied, and details regarding absorption, distribution, metabolism, and excretion are not well-characterized. In general, organic compounds may exhibit variable pharmacokinetic profiles depending on their structure and the route of administration, but specific data for hexamethyl is lacking.
Pregnancy
There is limited data on the use of hexamethyl during pregnancy. Caution is advised, and it should only be used if the potential benefit justifies the potential risk to the fetus.
Breast-feeding
It is not known whether hexamethyl is excreted in human milk. Caution is advised when administering to nursing mothers.
Storage
Store in a cool, dry place, away from light and moisture. Ensure the container is tightly closed.
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: methanol
BNF-referencedMethanol, also known as wood alcohol, is a colorless, volatile liquid with a slightly sweet odor. It is primarily used as an industrial solvent, antifreeze, and fuel. Methanol is toxic to humans and can cause severe metabolic acidosis, visual disturbances, and central nervous system depression when ingested. Its toxicity is primarily due to its metabolic conversion to formaldehyde and formic acid, which lead to various harmful effects.
Dosage
Children: Refer to the BNF for Children for specific dosing guidelines in cases of methanol poisoning in pediatric patients.
Adults: In cases of methanol poisoning, immediate medical attention is required. Treatment typically involves the administration of fomepizole or ethanol as antidotes, along with supportive care and correction of metabolic acidosis. Dosing should be guided by clinical protocols.
Mechanism of action
Methanol is metabolized in the liver by alcohol dehydrogenase to formaldehyde, which is further oxidized to formic acid. Formic acid is responsible for many of the toxic effects of methanol, including metabolic acidosis and visual impairment. The severity of toxicity can depend on individual susceptibility and the activity of metabolic pathways, particularly those involving folic acid metabolism, which is necessary for formate metabolism.
Pharmacodynamics
Methanol toxicity manifests through its metabolic products, primarily formic acid, which decreases blood pH, leading to metabolic acidosis. This acidosis can cause complications such as respiratory distress and cardiovascular instability. The accumulation of formic acid also impacts mitochondrial function and can lead to cellular hypoxia and damage, particularly in the optic nerve, resulting in visual impairment or blindness.
Pharmacokinetics
Methanol is rapidly absorbed through the gastrointestinal tract and can cross the blood-brain barrier. It is metabolized primarily in the liver, with a significant portion converted to formaldehyde and then to formic acid. The elimination half-life of methanol varies and can be prolonged in cases of intoxication due to saturation of metabolic pathways. The time to peak concentrations can vary significantly; toxicity can develop long after initial ingestion, complicating management.
Adverse effects
- Metabolic acidosis
- Visual impairment
- Headaches
- Nausea
- Vomiting
- Dizziness
- Coma
- Death
Precautions
- Use with caution in individuals with liver impairment
- Monitor for signs of toxicity, especially in cases of suspected overdose
Pregnancy
Methanol is classified as a teratogen and should be avoided during pregnancy due to the risk of fetal toxicity and developmental harm.
Breast-feeding
Methanol is not recommended while breastfeeding due to potential harmful effects in the nursing infant.
Storage
Store in a cool, dry place away from light and heat. Keep container tightly closed and 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: pararosaniline
BNF-referencedPararosaniline is a synthetic dye and a member of the triphenylmethane dye class, primarily used in histological staining and as a biological marker. It has applications in the laboratory setting, particularly for staining tissues and cells for microscopic examination. The compound can also be relevant in certain industrial applications.
Indications
- Histological staining
- Microscopic examination of tissues
- Biological marker in laboratory settings
Dosage
Children: Refer to specific protocols for laboratory use, as dosing is not typically applicable to children outside of histological applications.
Adults: Refer to specific protocols for laboratory use, as dosing is not typically applicable to adults outside of histological applications.
Mechanism of action
Pararosaniline functions primarily as a chromogen, which means it can produce a color change in biological tissues upon binding to specific cellular components. It interacts with proteins and nucleic acids, resulting in a distinct coloration that allows for enhanced visualization under a microscope. The precise molecular interactions involve electrostatic and hydrophobic forces that facilitate the binding to target molecules.
Pharmacodynamics
The pharmacodynamics of pararosaniline relate to its ability to bind to cellular components, leading to a visual change that enables the differentiation of various tissue types. This property is essential in histology for diagnosing diseases and understanding tissue structure. Its effectiveness as a dye depends on factors such as pH, concentration, and the presence of other cellular components.
Pharmacokinetics
The pharmacokinetics of pararosaniline are not extensively documented, as it is primarily used in laboratory settings rather than as a therapeutic agent. However, it is understood that the compound may be absorbed through mucous membranes and can be retained in tissues where it binds. The metabolic pathways and excretion routes for pararosaniline are not well characterized.
Pregnancy
There is limited information regarding the safety of pararosaniline during pregnancy. Caution is advised.
Breast-feeding
Information regarding the excretion of pararosaniline in breast milk is not available. Caution is advised during breastfeeding.
Storage
Store in a cool, dry place away from light. 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: purified
Purified refers to a substance that has been processed to remove impurities, contaminants, or unwanted substances, resulting in a more concentrated and effective form of the original compound. In pharmacology, purified compounds are often used to enhance therapeutic efficacy and reduce adverse effects. The purification process can apply to a variety of substances, including drugs, biological products, and chemical compounds.
Dosage
Children: Refer to specific drug formulations and product labels as purified substances can vary widely in their use and dosing.
Adults: Refer to specific drug formulations and product labels as purified substances can vary widely in their use and dosing.
Mechanism of action
The mechanism of action for purified compounds varies widely depending on the specific substance. Generally, purified drugs exert their effects by interacting with specific biological targets, such as receptors, enzymes, or ion channels, leading to a desired therapeutic effect. This interaction can involve binding to receptors to activate or inhibit signaling pathways, modulating enzymatic activity, or altering physiological processes.
Pharmacodynamics
Pharmacodynamics describes the effects of a drug on the body and the relationship between drug concentration and effect. For purified drugs, this can involve dose-response relationships and the time course of their action. The purified form often enhances potency and reduces variability in response among patients, which can lead to more predictable therapeutic outcomes. The overall effect is determined by the drug's affinity for its target, the efficacy of the drug-receptor interaction, and the downstream signaling pathways activated as a result of this interaction.
Pharmacokinetics
Pharmacokinetics involves the absorption, distribution, metabolism, and excretion (ADME) of a drug. For purified substances, absorption can be more efficient due to the absence of impurities that may affect solubility or stability. Distribution may also be enhanced, leading to higher bioavailability. Metabolism can be influenced by the structure of the purified compound, as it may be metabolized more readily by liver enzymes. Excretion typically occurs through the kidneys or liver, depending on the molecular characteristics of the purified drug.
Pregnancy
Consult with a healthcare professional, as the safety of purified forms of medications during pregnancy may vary depending on the specific substance.
Breast-feeding
Consult with a healthcare professional, as the safety of purified forms of medications during breastfeeding may vary depending on the specific substance.
Storage
Store in a cool, dry place, away from light and moisture, and 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.
Molecular reference: ethanol
PubChem CID 702Molecular 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.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: methanol
PubChem CID 887Molecular formula: CH4O
Mechanism of action
... The metabolic mechanisms of methanol toxicity /are/ reviewed. ... It is noted that the most severe toxicity occurs many hours following peak blood and tissue methanol concentrations so that these do not necessarily provide an accurate indication of toxicity. Individual differences are seen both in this latent period and in individual susceptibility to methanol. This susceptibility may depend on the activity of folic acid requiring metabolic reactions involved in formate metabolism, formate being an intermediate produced during methanol oxidation and responsible for many toxic effects of methanol. Studies of the characteristics of methanol poisoning in non-primates and monkeys are examined. Despite the ingestion of lethal doses of methanol, non-primates generally do not develop significant metabolic acidosis nor impairment of vision, and no consistent histopathology has been demonstrated in these species. In monkeys, results suggest that the latent period represents a period of compensated metabolic acidosis; when compensatory mechanisms are exhausted, blood pH begins to drop. Formate accumulates and produces acidosis in the methanol poisoned monkey, but not in the rat, apparently due to a slower rate of formate metabolism to carbon dioxide in the monkey. ... Studies demonstrating the role of alcohol dehydrogenase in methanol metabolism in the monkey are reported; however, the catalase/peroxidative system which participates in methanol metabolism in rats apparently does not function in the monkey. Formaldehyde and formate metabolism are also examined. The regulation of the rate of formate metabolism is governed by regulation of the hepatic tetrahydrofolate concentrations. ... Further research is needed to determine what step or process it is which places the primate at a distinct liability in the metabolic disposition of one carbon moieties. Methanol toxicity is observed in monkeys and humans but is not seen in rats or mice. The expression of methanol poisoning is related to the ability of an animal to metabolize formate to carbon dioxide. Since the rate of formate oxidation is related to hepatic tetrahydrofolate content and the activites of folate dependent enzymes, studies were designed to determine hepatic concentrations of hepatic tetrahydrofolate and activites of folate dependent enzymes of human liver and livers of species considered insensitive to methanol poisoning. An excellent correlation between hepatic tetrahydrofolate and maximal rates of formate oxidation has been observed. In human liver, levels were only 50% of those observed for rat liver and similar to those found in monkey liver. Total folate was also lower (60% decreased) in human liver than that found in rat or monkey liver. Interestingly, mouse liver contains much higher hepatic tetrahydrofolate and total folate than rat or monkey liver. This is consistent with higher formate oxidation rates in this species. A second important observation has been made. 10-Formyltetrahydrofolate dehydrogenase activity, the enzyme catalyzing the final step of formate oxidation to carbon dioxide, was markedly reduced in both monkey and human liver. Thus, two mechanisms may be operative in explaining low formate oxidation in species susceptible to methanol toxicity, low hepatic tetahydrofolate levels and reduced hepatic 10-formyltetrahydrofolate dehydrogenase activity. Formic acid, the toxic metabolite of methanol, has been hypothesized to produce retinal and optic nerve toxicity by disrupting mitochondrial energy production. It has been shown in vitro to inhibit the activity of cytochrome oxidase, a vital component of the mitochondrial electron transport chain involved in ATP synthesis. Inhibition occurs subsequent to the binding of formic acid to the ferric heme iron of cytochrome oxidase, and the apparent inhibition constant is between 5 and 30 mM. Concentrations of formate present in the blood and tissues of methanol-intoxicated humans, non-human primates and rodent m
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: pararosaniline
PubChem CID 11293Molecular formula: C19H17N3
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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