Pharmacological characteristics of metamizole

Insights

Metamizole, also known as dipyrone, is a versatile pain reliever, fever reducer, and antispasmodic. While not an NSAID, its complex analgesic mechanisms involve central cyclooxygenase-3 inhibition and activation of opioidergic and cannabinoid systems.

Area of Science:

  • Pharmacology
  • Pain Management
  • Drug Mechanisms

Background:

  • Metamizole (dipyrone) is a widely used non-opioid analgesic.
  • It is often misclassified as a non-steroidal anti-inflammatory drug (NSAID).
  • Metamizole is a pro-drug, metabolizing into pyrazolone compounds.

Purpose of the Study:

  • To elucidate the pharmacological characteristics of metamizole.
  • To clarify its mechanisms of action for analgesia, antipyresis, and spasmolysis.
  • To review its safety profile and therapeutic applications.

Main Methods:

  • Literature review of current scientific knowledge on metamizole.
  • Analysis of its pharmacokinetic and pharmacodynamic properties.
  • Evaluation of clinical and preclinical data regarding its efficacy and safety.

Main Results:

  • Metamizole's analgesic effect involves central cyclooxygenase-3 inhibition and activation of opioidergic/cannabinoid systems.
  • Its antipyretic action differs from NSAIDs, affecting both PG-dependent and independent pathways.
  • Spasmolytic effects are linked to reduced intracellular Ca2+ release via inositol phosphate inhibition.

Conclusions:

  • Metamizole is effective for various pain types, spastic conditions, and refractory fevers.
  • While generally safe, potential myelotoxicity (agranulocytosis) risk may have been overstated.
  • Contraindicated in pregnant women despite animal safety, due to a lack of human data.

Related Concept Videos

Phase II Reactions: Methylation Reactions01:17

Phase II Reactions: Methylation Reactions

Methylation is a phase II biotransformation process involving the attachment of a methyl group to a substrate. Enzymes known as methyltransferases orchestrate this reaction.
The mechanism of methylation unfolds in two stages. The first stage sees a methyltransferase enzyme facilitating the transfer of a methyl group from S-adenosylmethionine (SAM) to the substrate, forming S-adenosylhomocysteine (SAH). The second stage involves further metabolism of SAH into homocysteine, which can be recycled...
915
Drug Metabolism: Phase I Reactions01:17

Drug Metabolism: Phase I Reactions

A phase I reaction is a biochemical process that introduces a functionally reactive polar group to a substance. This transformation predominantly occurs in the liver, facilitated by the cytochrome P450 system of hemoproteins situated in the lipophilic endoplasmic reticulum of cells. The metabolite generated through this process can have varying polarities. If it is sufficiently polar, it can be easily excreted in the urine due to its water compatibility. However, if the metabolite is nonpolar,...
5.1K
Drug Metabolism: Phase II Reactions01:14

Drug Metabolism: Phase II Reactions

Phase II reactions are essential for the detoxification and elimination of drugs from the body. These reactions involve the conjugation of parent drugs or their phase I metabolites with endogenous molecules, resulting in more hydrophilic drug conjugates. The primary conjugation reactions in this phase are sulfation and glucuronidation. Both sulfation and glucuronidation typically produce biologically inactive metabolites. However, in some cases involving prodrugs, active metabolites may be...
4.7K
Pharmacogenetics of Drug Metabolism: Overview01:27

Pharmacogenetics of Drug Metabolism: Overview

Genetic polymorphism in drug metabolism is crucial to the inter-individual variability observed in drug responses. Drug metabolism primarily involves the chemical modification of drugs and other xenobiotics to enhance their elimination by increasing their polarity. Two main classes of enzymes mediate this biotransformation process: Phase I enzymes, primarily cytochrome P450s, catalyze oxidation and reduction reactions, while other enzymes, such as esterases, mediate hydrolysis, and Phase II...
194
Drugs Affecting GI Tract Motility: Dopamine Receptor Antagonists01:28

Drugs Affecting GI Tract Motility: Dopamine Receptor Antagonists

Prokinetic agents are specialized medications that stimulate gastrointestinal (GI) motility, promoting food movement through the GI tract. Dopamine, an inhibitory neurotransmitter, plays a significant role in this process, reducing GI motility and indirectly controlling the speed of digestion. Dopamine receptor antagonists, such as metoclopramide and domperidone, offer a unique advantage as prokinetic agents. By blocking the dopamine receptors, these drugs increase GI motility, improving food...
2.0K
Nondepolarizing (Competitive) Neuromuscular Blockers: Pharmacokinetics01:11

Nondepolarizing (Competitive) Neuromuscular Blockers: Pharmacokinetics

All neuromuscular blocking agents are injected intravenously because they are poorly absorbed from the GI tract. Rapid onset is achieved with intravenous administration, although absorption is also adequate from an intramuscular injection. Since these agents are highly ionized, they do not readily penetrate cell membranes or cross the blood-brain barrier.
Instead, they are transported by the blood to different tissues. Muscles with a greater blood supply (arteries) and blood flow receive more...
991