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FENAID EXTRA TABLETS

Paracetamol/Ibuprofen/Caffeine

FDA/SD.245-040590 Paracetamol/Ibuprofen/Caffeine 500mg/ 400mg/ 30mg various INN generic

What it does

Caffeine is a natural stimulant that helps increase alertness and reduce tiredness.

Commonly used for: fatigue, drowsiness, headaches, migraine (common migraine)

Read more in plain English ↓

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

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

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Registration & product details

Registration no.
FDA/SD.245-040590
Registration date
2024-04-12
Expiry date
2029-03-01
Status
Valid
Active ingredient
Paracetamol/Ibuprofen/Caffeine
Strength
500mg/ 400mg/ 30mg
Pack size
-
Therapeutic class
-
ATC class (WHO)
V04CG - Tests for gastric secretion
Drug group
VARIOUS
RxNorm RxCUI
1886
Manufacturer / MAH
Prowill Pharmaceuticals
Country of origin
INDIA
Manufacturer location
28117, MIDC Industrial Area, Turbhe, Navi Mumbai, Maharashtra 400703, India

Source: Food and Drugs Authority · fetched 2026-04-18 08:33:03 · updated 2026-09-15 04:00:05

Drug Interactions

22
Check interactions

Pharmacodynamic Warnings

Paracetamol appears in TABLE 1: Drugs that cause hepatotoxicity

Ibuprofen appears in TABLE 2: Drugs that cause nephrotoxicity

Ibuprofen appears in TABLE 4: Drugs with antiplatelet effects

Ibuprofen appears in TABLE 16: Drugs that increase serum potassium

Ibuprofen appears in TABLE 18: Drugs that cause hyponatraemia

Severe (1)

Mifamurtide - decreases efficacy

NSAIDs(high-dose)arepredictedtodecreasetheefficacyof mifamurtide.Avoid.rTheoretical

Severe Theoretical

Moderate (8)

Antiarrhythmics - increases exposure

NSAIDs (celecoxib) are predicted to increase the exposure to antiarrhythmics (flecainide, propafenone). Monitor and adjust dose.

Moderate Theoretical

Cladribine - increases exposure

NSAIDs(sulindac)mightincreasetheexposuretocladribine. Avoidoradjustdose.oTheoretical

Moderate Theoretical

Flecainide - increases exposure

NSAIDs (celecoxib) are predicted to increase the exposure to antiarrhythmics (flecainide, propafenone). Monitor and adjust dose.

Moderate Theoretical

Pemetrexed - increases exposure

NSAIDs are predicted to increase the exposure to pemetrexed. Use with caution or avoid. Also see TABLE 2 p. 1517

Moderate Theoretical

Prilocaine - increases risk of methaemoglobinaemia

Paracetamol is predicted to increase the risk of methaemoglobinaemia when given with topical anaesthetics, local (prilocaine). Use with caution or avoid.

Moderate Theoretical

Propafenone - increases exposure

NSAIDs (celecoxib) are predicted to increase the exposure to antiarrhythmics (flecainide, propafenone). Monitor and adjust dose.

Moderate Theoretical

Topical Anaesthetics, Local - increases risk of methaemoglobinaemia

Paracetamol is predicted to increase the risk of methaemoglobinaemia when given with topical anaesthetics, local (prilocaine). Use with caution or avoid.

Moderate Theoretical

Topical Prilocaine - increases risk of methaemoglobinaemia

Paracetamolispredictedtoincreasetheriskof methaemoglobinaemiawhengivenwithtopicalprilocaine. Usewithcautionoravoid.rTheoretical 1xidneppA|snoitcaretnI A1 https://www.facebook.c (Books-Courses-Medic

Moderate Theoretical

Unknown (13)

Alendronate - increases risk of gastrointestinal irritation

NSAIDs are predicted to increase the risk of gastrointestinal irritation when given with bisphosphonates (alendronate, ibandronate).

Unknown Study

Bisphosphonates - increases risk of gastrointestinal irritation

NSAIDs are predicted to increase the risk of gastrointestinal irritation when given with bisphosphonates (alendronate, ibandronate).

Unknown Study

Bisphosphonates - increases risk of renal impairment

NSAIDs are predicted to increase the risk of renal impairment when given with bisphosphonates (clodronate).

Unknown Study

Clodronate - increases risk of renal impairment

NSAIDs are predicted to increase the risk of renal impairment when given with clodronate.

Unknown Study

Coumarins - increases anticoagulant effect

Paracetamol increases the anticoagulant effect of coumarins.

Unknown Study

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

Disclaimer: This information is sourced from Food and Drugs Authority (Ghana). Always consult a qualified healthcare professional before using any medication.

About caffeine

Caffeine is a natural stimulant that helps increase alertness and reduce tiredness.

What it treats

  • fatigue
  • drowsiness
  • headaches
  • migraine (common migraine)

How it works

Caffeine works by blocking certain receptors in the brain, which helps to improve mood and concentration.

Who it's for

Caffeine is suitable for adults who need a boost of energy or alertness.

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

About ibuprofen

Ibuprofen is a non-steroidal anti-inflammatory drug (NSAID) that helps reduce pain, inflammation, and fever.

What it treats

  • mild to moderate pain (like headaches or toothaches)
  • inflammation (like arthritis)
  • fever (high temperature)

How it works

Ibuprofen works by blocking substances in the body that cause pain and inflammation.

Who it's for

Ibuprofen is suitable for adults and children over certain ages, but always check with a healthcare provider for specific use.

Drug class

NSAIDs

Cautions

  • • Be careful if you are taking medications that can harm your kidneys.
  • • Avoid using with medications that prevent blood clots.
  • • Caution if you take drugs that can raise potassium levels in the blood.
  • • Be aware if you are taking medications that cause low sodium levels.

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

About paracetamol

Paracetamol is a common pain relief medication used to reduce fever and relieve mild to moderate pain.

What it treats

  • fever
  • headaches
  • muscle aches
  • joint pain
  • toothaches
  • menstrual cramps

How it works

Paracetamol works by blocking pain signals in the brain and helping to lower body temperature.

Who it's for

Paracetamol is suitable for most adults and children who need pain relief or fever reduction.

Cautions

  • • Use with caution if you are taking other drugs that may harm the liver.

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

Clinical monograph: Ibuprofen

BNF-referenced

Ibuprofen is a non-steroidal anti-inflammatory drug (NSAID) used to relieve pain, reduce inflammation, and lower fevers. It is commonly used for conditions such as musculoskeletal disorders, dysmenorrhea, postoperative pain, and dental pain. Ibuprofen works by inhibiting enzymes involved in the synthesis of prostaglandins, which are responsible for pain and inflammation.

Indications

  • Pain and inflammation in musculoskeletal disorders
  • Mild to moderate pain including dysmenorrhea
  • Postoperative analgesia
  • Dental pain
  • Migraine
  • Fever

Dosage

Adults: Initially 300–400 mg 3–4 times a day; increase if necessary up to 600 mg 4 times a day; maintenance 200–400 mg 3 times a day, may be adequate.

Mechanism of action

The exact mechanism of action of ibuprofen is unknown. However, it is considered a non-selective inhibitor of cyclooxygenase (COX), which is involved in the synthesis of prostaglandins and thromboxane. By inhibiting COX-1 and COX-2, ibuprofen decreases the production of prostaglandins that mediate inflammation, pain, and fever, while COX-1 inhibition may lead to gastrointestinal side effects.

Pharmacodynamics

Ibuprofen exerts its analgesic effects through multiple pathways involved in both acute and chronic inflammation. It reduces pain and inflammation by inhibiting the synthesis of prostanoids via COX-1 and COX-2. The pain relief is believed to be mediated through both peripheral effects at the site of injury and central effects within the nervous system, particularly affecting pain transmission pathways. Additionally, ibuprofen has antipyretic effects linked to its action on prostanoid synthesis in the hypothalamus.

Pharmacokinetics

Ibuprofen is rapidly absorbed from the gastrointestinal tract, with peak plasma concentrations typically occurring within 1 to 2 hours after oral administration. It is extensively metabolized in the liver, primarily by oxidation, and has an elimination half-life of approximately 2 to 4 hours. The drug is excreted mainly in the urine, with a small proportion eliminated unchanged. Renal impairment may affect ibuprofen clearance, necessitating caution in patients with compromised kidney function.

Contra-indications

  • History of hypersensitivity to aspirin or any other NSAID
  • Severe renal impairment
  • Severe hepatic impairment
  • Active peptic ulcer disease
  • Caution in patients with asthma, angioedema, urticaria, or rhinitis precipitated by NSAIDs

Adverse effects

  • Gastrointestinal ulceration
  • Nausea
  • Vomiting
  • Diarrhea
  • Dizziness
  • Rash
  • Headache
  • Tinnitus
  • Visual impairment
  • Fluid retention
  • Increased blood pressure

Interactions

  • Increased risk of gastrointestinal bleeding with other NSAIDs or anticoagulants
  • May reduce the antihypertensive effect of ACE inhibitors
  • May increase serum levels of lithium
  • May enhance the effects of other anticoagulants
  • Caution with corticosteroids due to increased risk of gastrointestinal side effects

Precautions

  • Use with caution in patients with mild to moderate hepatic impairment
  • Use with caution in patients with mild to moderate renal impairment
  • Monitor for signs of gastrointestinal bleeding
  • Avoid use during the third trimester of pregnancy

Pregnancy

Avoid unless the potential benefit outweighs the risk. Avoid during the third trimester due to the risk of closure of the fetal ductus arteriosus and possibly persistent pulmonary hypertension of the newborn.

Breast-feeding

Small amounts are present in milk. Manufacturer advises to avoid unless necessary.

Storage

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

Formulations

  • Tablets (200 mg, 400 mg)
  • Oral suspension (100 mg/5 mL)
  • Gel (5%) for topical application
  • Suppositories (various strengths)
BNF 85 (British National Formulary) p.1276 BNF for Children 2019-2020 p.701 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: Paracetamol

BNF-referenced

Paracetamol, also known as acetaminophen, is a widely used analgesic and antipyretic medication. It is effective in alleviating pain and reducing fever but does not possess anti-inflammatory properties. Paracetamol is often used for mild to moderate pain relief, including headaches, muscle aches, arthritis, backaches, toothaches, colds, and fevers. Its mechanism of action is primarily central, as it affects the brain's heat-regulating centers and increases pain thresholds.

Indications

  • Mild to moderate pain
  • Fever
  • Headaches
  • Muscle aches
  • Arthritis
  • Backaches
  • Toothaches
  • Colds

Dosage

Adults: For adults, the typical dosage is 500 mg to 1 g every 4 to 6 hours, with a maximum daily limit of 4 g. In cases of intravenous administration, the dosage is 15 mg/kg every

Mechanism of action

Paracetamol is thought to exert its analgesic effects by inhibiting cyclo-oxygenase (COX) enzymes, specifically COX-1 and COX-2, which are involved in the synthesis of prostaglandins responsible for pain sensation. Unlike most NSAIDs, paracetamol does not exhibit peripheral anti-inflammatory effects. Its antipyretic action is believed to result from direct action on heat-regulating centers in the brain, leading to peripheral vasodilation and sweating.

Pharmacodynamics

Paracetamol has been shown to have both antipyretic and analgesic effects, lacking any significant anti-inflammatory activity. It does not interfere with platelet aggregation or disrupt hemostasis, making it a safer option for individuals at risk of bleeding. Allergic reactions to paracetamol are rare. The drug does not affect uric acid secretion or acid-base balance when used at recommended doses.

Pharmacokinetics

Paracetamol is rapidly absorbed from the gastrointestinal tract, with peak plasma concentrations typically occurring within 30 to 60 minutes after oral administration. It is primarily metabolized in the liver via conjugation with glucuronide and sulfate, with a minor pathway involving cytochrome P450 enzymes. The elimination half-life ranges from 1 to 4 hours, with renal excretion of metabolites as the primary route of elimination.

Adverse effects

  • Nausea and vomiting
  • Liver injury
  • Renal damage
  • Hypersensitivity reactions
  • Flushing
  • Hypotension
  • Anorectal erythema
  • Angioedema
  • Agranulocytosis
  • Thrombocytopenia
  • Leukopenia
  • Severe cutaneous adverse reactions (SCARs)

Interactions

  • Increased risk of methaemoglobinaemia with topical prilocaine
  • Increased risk of methaemoglobinaemia with topical anaesthetics
  • Increased anticoagulant effect with coumarins
  • Increased risk of hepatotoxicity with imatinib
  • Decreased exposure with rifampicin
  • Decreased exposure with pitolisant

Precautions

  • Monitor patients with liver disease or heavy alcohol use for increased risk of hepatotoxicity
  • Adjust doses in patients taking enzyme-inducing antiepileptic medications
  • Use caution in patients with renal impairment
  • Clinical judgement is required for dose adjustment in weight-based dosing

Pregnancy

Paracetamol is generally considered safe to use during pregnancy for pain and fever relief, but should be used at the lowest effective dose for the shortest duration necessary.

Breast-feeding

Paracetamol is excreted in breast milk in small amounts and is considered safe for use while breastfeeding.

Storage

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

Formulations

  • Oral tablets (500 mg)
  • Oral suspension (120 mg/5 mL, 500 mg/5 mL)
  • Rectal suppositories (various strengths)
  • Intravenous infusion (various strengths)
BNF 85 (British National Formulary) p.503 BNF for Children 2019-2020 p.300 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: caffeine

BNF-referenced

Caffeine is a central nervous system stimulant that temporarily wards off drowsiness and restores alertness. It is widely consumed in beverages like coffee, tea, and energy drinks. Its pharmacological effects are attributed to its ability to block adenosine receptors and influence several signaling pathways, impacting multiple physiological systems.

Indications

  • Management of apnea of prematurity
  • Enhancement of alertness and cognitive performance
  • Relief of headaches, particularly when combined with analgesics
  • Enhancement of physical performance in sports

Dosage

Children: For infants, particularly for apnea of prematurity

Adults: The usual adult dose for alertness enhancement is 100 to 200 mg, taken as needed. For the management of apnea of prematurity, doses may vary and should be determined by a healthcare professional.

Mechanism of action

Caffeine acts primarily as an antagonist of adenosine receptors, inhibiting the action of adenosine, which normally promotes sleep and relaxation. This antagonism leads to increased neuronal firing and the release of neurotransmitters such as dopamine and norepinephrine. Caffeine also inhibits phosphodiesterase enzymes, enhancing levels of cyclic AMP and cyclic GMP, which are important for various cellular functions. Additionally, in the context of respiratory function, caffeine stimulates the respiratory centers in the central nervous system, enhancing ventilation.

Pharmacodynamics

Caffeine stimulates the central nervous system, increasing alertness and reducing fatigue. It relaxes smooth muscles, increases cardiac muscle contraction, and can enhance physical performance. Caffeine also promotes gastric acid secretion and gastrointestinal motility, and it exhibits mild diuretic properties. Its effects can lead to restlessness and agitation in some individuals, particularly at higher doses.

Pharmacokinetics

Caffeine is rapidly absorbed from the gastrointestinal tract, with peak plasma concentrations occurring within 30 to 120 minutes after ingestion. It is distributed widely throughout body tissues, readily crossing the blood-brain barrier. Caffeine is metabolized primarily in the liver by cytochrome P450 1A2, producing three primary metabolites: paraxanthine, theobromine, and theophylline. The elimination half-life varies significantly among individuals, influenced by factors such as age, liver function, pregnancy, and the use of certain medications. It is primarily excreted in urine.

Adverse effects

  • Restlessness
  • Agitation
  • Insomnia
  • Increased heart rate
  • Nausea
  • Gastrointestinal discomfort
  • Headaches

Interactions

  • caffeinecitrate+adenosine: Unknown (decreases efficacy)
  • caffeinecitrate+antiarrhythmics: Unknown (decreases efficacy)

Precautions

  • Use cautiously in patients with a history of anxiety disorders, insomnia, or cardiac arrhythmias.
  • Monitor caffeine intake in individuals with certain medical conditions, such as hypertension.

Pregnancy

Caffeine crosses the placenta; excessive intake during pregnancy may be associated with adverse outcomes. It is generally recommended to limit caffeine consumption.

Breast-feeding

Caffeine is excreted in breast milk; moderate consumption is considered safe, but excessive intake may affect the infant's sleep and behavior.

Storage

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

Formulations

  • Tablets
  • Oral solutions
  • Injectable preparations
  • Caffeine citrate

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: Ibuprofen

PubChem CID 3672

Molecular formula: C13H18O2

Mechanism of action

The exact mechanism of action of ibuprofen is unknown. However, ibuprofen is considered an NSAID and thus it is a non-selective inhibitor of cyclooxygenase, which is an enzyme involved in prostaglandin (mediators of pain and fever) and thromboxane (stimulators of blood clotting) synthesis via the arachidonic acid pathway. Ibuprofen is a non-selective COX inhibitor and hence, it inhibits the activity of both COX-1 and COX-2. The inhibition of COX-2 activity decreases the synthesis of prostaglandins involved in mediating inflammation, pain, fever, and swelling while the inhibition of COX-1 is thought to cause some of the side effects of ibuprofen including GI ulceration. IBUPROFEN AT 25 MG/KG IV INCREASED THE PRIMARY AND TOTAL HEMOSTATIC PLUG FORMATION TIME IN RABBIT EAR CHAMBERS WITH LASER-INDUCED INJURY. THE SAME DOSE INCREASED THE NUMBER OF CUMULATIVE EMBOLI OVER A 10 MINUTE PERIOD AFTER A LASER INJURY TO ARTERIOLES. IN DOGS, DOSES OF 10, 25, AND 50 MG/KG DID NOT ENHANCE THE RELEASE OF (125)I-LABELED FIBRIN DEGRADATION PRODUCTS FROM THE THROMBI AFTER INCUBATION IN PLASMIN, BUT THE LARGEST DOSE SIGNIFICANTLY DECREASED THE THROMBUS WEIGHT 90 AND 180 MINUTES AFTER DRUG ADMINISTRATION. THUS, IBUPROFEN HAD AN INHIBITORY EFFECT ON PLATELET FUNCTION IN VIVO AND IN LARGE DOSES DIMINISHED THE THROMBUS WEIGHT. L-Arginine (L-arg) exhibits multiple biological properties and plays an important role in the regulation of different functions in pathological conditions. Many of these effects could be achieved on this amino acid serving as a substrate for the enzyme nitric oxide synthase (NOS). At the gastrointestinal level, recent reports revealed its protective activities involving a hyperemic response increasing the gastric blood flow. The aim of this study was to characterize the relationship between NOS activity/expression and prostaglandin changes (PGs) in rats gastric mucosa, with L-arg associated resistance to the nonsteroidal anti-inflammatory drug (NSAID) ibuprofen (IBP). The protective effect of oral L-arg (100 mg/kg body wt), administerred together with IBP (100 mg/kg body wt, per os), was evident enough 90 min after drug administration, although a significant protection persisted for more than 6 hr. Pretreatment with N(G)-nitro-L-arginine (L-NNA) (40 mg/kg body wt, intraperitoneally), a competitive inhibitor of constitutive NOS, partly altered the protection afforded by the amino acid. In contrast, no changes could be observed after inducible NOS inhibition [aminoguanidine (AG) 50 mg/Kg body wt, intraperitoneally). L-arg, plus IBP, produced a significant increase of the cyclic GMP (cGMP) response in tissue samples from rat stomach, 90 min and 6 h after drug administration. iNOS activity and mRNA expression were higher in IBP-treated rats, and no differences were observed in inducible responses in the L-arg plus IBP group. No variations in the cNOS activity and expression were found among the different groups of animals assayed. The measurement of mucosal PGE2 content confirmed that biosynthesis of the eicosanoid is maintained by L-arg for over 90 min after IBP, while a total inhibition was observed 6 hr later. The mechanisms of the L-arg protective effect on the damaged induced by IBP could be explained by the different period after drug administration. The early phase is mediated by cyclooxygenase/prostaglandins pathway (COX/PGs) although NO liberated by cNOS and the guanylate cyclase/cGMP pathway could be also relevant. The later phase implicates inhibition of the iNOS/NO response. We previously showed the non-steroidal anti-inflammatory drug (NSAID) ibuprofen suppresses inflammation and amyloid in the APPsw (Tg2576) Tg2576 transgenic mouse. The mechanism for these effects and the impact on behavior are unknown. We now show ibuprofen's effects were not mediated by alterations in amyloid precursor protein (APP) expression or oxidative damage (carbonyls). Six months ibuprofen treatment in Tg+ females caused a decrease in open fie

Pharmacodynamics

Ibuprofen has multiple actions in different inflammatory pathways involved in acute and chronic inflammation. The main effects reported in ibuprofen are related to the control of pain, fever and acute inflammation by the inhibition of the synthesis of prostanoids by COX-1 and COX-2. Pain relief is attributed to peripheral affected regions and central nervous system effects in the pain transmission mediated by the dorsal horn and higher spinothalamic tract. Some reports have tried to link the pain regulation with a possible enhancement on the synthesis of endogenous cannabinoids and action on the NMDA receptors. The effect on pain has been shown to be related to the cortically evoked potentials. The antipyretic effect is reported to be linked to the effect on the prostanoid synthesis due to the fact that the prostanoids are the main signaling mediator of pyresis in the hypothalamic-preoptic region. The use of ibuprofen in dental procedures is attributed to the local inhibition of prostanoid production as well as to anti-oedemic activity and an increase of plasma beta-endorphins. Some reports have suggested a rapid local reduction of the expression of COX-2 in dental pulp derived by the administration of ibuprofen. The administration of ibuprofen in patients with rheumatic diseases has shown to control joint symptoms. Ibuprofen is largely used in OTC products such as an agent for the management of dysmenorrhea which has been proven to reduce the amount of menstrual prostanoids and to produce a reduction in the uterine hypercontractility. As well, it has been reported to reduce significantly the fever and the pain caused by migraines. This effect is thought to be related to the effect on platelet activation and thromboxane A2 production which produces local vascular effects in the affected regions. This effect is viable as ibuprofen can enter in the central nervous system. In the investigational uses of ibuprofen, it has been reported to reduce neurodegeneration when given in low doses over a long time. On the other hand, its use in Parkinson disease is related to the importance of inflammation and oxidative stress in the pathology of this condition. The use of ibuprofen for breast cancer is related to a study that shows a decrease of 50% in the rate of breast cancer.

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

Molecular reference: Paracetamol

PubChem CID 1983

Molecular formula: C8H9NO2

Mechanism of action

According to its FDA labeling, acetaminophen's exact mechanism of action has not been fully established - despite this, it is often categorized alongside NSAIDs (non-steroidal anti-inflammatory drugs) due to its ability to inhibit the cyclo-oxygenase (COX) pathways. It is thought to exert central actions which ultimately lead to the alleviation of pain symptoms. One theory is that acetaminophen increases the pain threshold by inhibiting two isoforms of cyclo-oxygenase, COX-1 and COX-2, which are involved in prostaglandin (PG) synthesis. Prostaglandins are responsible for eliciting pain sensations. Acetaminophen does not inhibit cyclooxygenase in peripheral tissues and, therefore, has no peripheral anti-inflammatory effects. Though acetylsalicylic acid (aspirin) is an irreversible inhibitor of COX and directly blocks the active site of this enzyme, studies have shown that acetaminophen (paracetamol) blocks COX indirectly. Studies also suggest that acetaminophen selectively blocks a variant type of the COX enzyme that is unique from the known variants COX-1 and COX-2. This enzyme has been referred to as _COX-3_. The antipyretic actions of acetaminophen are likely attributed to direct action on heat-regulating centers in the brain, resulting in peripheral vasodilation, sweating, and loss of body heat. The exact mechanism of action of this drug is not fully understood at this time, but future research may contribute to deeper knowledge. Although further investigation is warranted, the active metabolite of acetaminophen (AM404) was shown to interact with several molecular targets, including the Ca<sub>v</sub>3.2 calcium channel, the cannabinoid CB1 receptors, TRPV1 receptors, and Na<sub>v</sub>1.8 and Na<sub>v</sub>1.7 channels. Acetaminophen produces analgesia and antipyresis by a mechanism similar to that of salicylates. Unlike salicylates, however, acetaminophen does not have uricosuric activity. There is some evidence that acetaminophen has weak anti-inflammatory activity in some nonrheumatoid conditions (e.g., in patients who have had oral surgery). ... Acetaminophen lowers body temperature in patients with fever but rarely lowers normal body temperature. The drug acts on the hypothalamus to produce antipyresis; heat dissipation is increased as a result of vasodilation and increased peripheral blood flow. The effects of acetaminophen on cyclooxygenase activity have not been fully determined. Acetaminophen is a weak, reversible, isoform-nonspecific cyclooxygenase inhibitor at dosages of 1 g daily. The inhibitory effect of acetaminophen on cyclooxygenase-1 is limited, and the drug does not inhibit platelet function. Therapeutic doses of acetaminophen appear to have little effect on cardiovascular and respiratory systems; however, toxic doses may cause circulatory failure and rapid, shallow breathing. Acetaminophen (N-acetyl-p-aminophenol (APAP)) is the most common antipyretic/analgesic medicine worldwide. If APAP is overdosed, its metabolite, N-acetyl-p-benzo-quinoneimine (NAPQI), causes liver damage. However, epidemiological evidence has associated previous use of therapeutic APAP doses with the risk of chronic obstructive pulmonary disease (COPD) and asthma. The transient receptor potential ankyrin-1 (TRPA1) channel is expressed by peptidergic primary sensory neurons. Because NAPQI, like other TRPA1 activators, is an electrophilic molecule, /the researchers/ hypothesized that APAP, via NAPQI, stimulates TRPA1, thus causing airway neurogenic inflammation. NAPQI selectively excites human recombinant and native (neuroblastoma cells) TRPA1. TRPA1 activation by NAPQI releases proinflammatory neuropeptides (substance P and calcitonin gene-related peptide) from sensory nerve terminals in rodent airways, thereby causing neurogenic edema and neutrophilia. Single or repeated administration of therapeutic (15-60 mg/kg) APAP doses to mice produces detectable levels of NAPQI in the lung, and increases neutrophil numbers, myeloperoxidase

Pharmacodynamics

Animal and clinical studies have determined that acetaminophen has both antipyretic and analgesic effects. This drug has been shown to lack anti-inflammatory effects. As opposed to the _salicylate_ drug class, acetaminophen does not disrupt tubular secretion of uric acid and does not affect acid-base balance if taken at the recommended doses. Acetaminophen does not disrupt hemostasis and does not have inhibitory activities against platelet aggregation. Allergic reactions are rare occurrences following acetaminophen use.

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

Molecular reference: caffeine

PubChem CID 2519

Molecular formula: C8H10N4O2

Mechanism of action

The mechanism of action of caffeine is complex, as it impacts several body systems, which are listed below. The effects as they relate to various body systems are described as follows: **General and cellular actions** Caffeine exerts several actions on cells, but the clinical relevance is poorly understood. One probable mechanism is the inhibition of nucleotide phosphodiesterase enzymes, adenosine receptors, regulation of calcium handling in cells, and participates in adenosine receptor antagonism. Phosphodiesterase enzymes regulate cell function via actions on second messengers cAMP and cGMP. This causes lipolysis through activation of hormone-sensitive lipases, releasing fatty acids and glycerol. **Respiratory** The exact mechanism of action of caffeine in treating apnea related to prematurity is unknown, however, there are several proposed mechanisms, including respiratory center stimulation in the central nervous system, a reduced threshold to hypercapnia with increased response, and increased consumption of oxygen, among others. The blocking of the adenosine receptors enhances respiratory drive via an increase in brain medullary response to carbon dioxide, stimulating ventilation and respiratory drive, while increasing contractility of the diaphragm. **Central nervous system** Caffeine demonstrates antagonism of all 4 adenosine receptor subtypes (A1, A2a, A2b, A3) in the central nervous system. Caffeine's effects on alertness and combatting drowsiness are specifically related to the antagonism of the A2a receptor. **Renal system** Caffeine has diuretic effects due to is stimulatory effects on renal blood flow, increase in glomerular filtration, and increase in sodium excretion. **Cardiovascular system** Adenosine receptor antagonism at the A1 receptor by caffeine stimulates inotropic effects in the heart. Blocking of adenosine receptors promotes catecholamine release, leading to stimulatory effects occurring in the heart and the rest of the body. In the blood vessels, caffeine exerts direct antagonism of adenosine receptors, causing vasodilation. It stimulates the endothelial cells in the blood vessel wall to release nitric oxide, potentiating blood vessel relaxation. Catecholamine release, however, antagonizes this and exerts inotropic and chronotropic effects on the heart, ultimately leading to vasoconstriction. Finally, caffeine is shown to raise systolic blood pressure measurements by 5 to 10 mmHg when it is not taken regularly, versus no effect in those who consume it regularly. The vasoconstricting effects of caffeine are beneficial in migraines and other types of headache, which are normally caused by vasodilation in the brain. Caffeine competitively inhibits phosphodiesterase, the enzyme that degrades cyclic 3',5'-adenosine monophosphate (AMP). Increased levels of intracellular cyclic AMP mediate most of caffeine's pharmacologic actions. Caffeine stimulates all levels of the CNS... Caffeine's cortical effects are milder and of shorter duration than those of amphetamines. In slightly larger doses, caffeine stimulates medullary, vagal, vasomotor, and respiratory centers, promoting bradycardia, vasoconstriction, and increased respiratory rate. Caffeine constricts cerebral vasculature. In contrast, the drug directly dilates peripheral blood vessels...

Pharmacodynamics

Caffeine stimulates the central nervous system (CNS), heightening alertness, and sometimes causing restlessness and agitation. It relaxes smooth muscle, stimulates the contraction of cardiac muscle, and enhances athletic performance. Caffeine promotes gastric acid secretion and increases gastrointestinal motility. It is often combined in products with analgesics and ergot alkaloids, relieving the symptoms of migraine and other types of headaches. Finally, caffeine acts as a mild diuretic.

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.