(doxycycline · DailyMed)
DOXYTYLONOR
Anhydrous Glucose Up to 1 gram,Bromhexine Hydrochloride 20 mg/6 mL,Doxycycline Hyclate 100 mg/6 mL,Tylosin Tartarate 100 mg/6 mL
What it does
Bromhexine is a medicine that helps to clear mucus from the airways, making it easier to breathe.
Commonly used for: chest congestion, mucus build-up in the lungs, chronic bronchitis
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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Sourcing - Kenya onlyRegistration & product details
Source: Tanzania Medicines and Medical Devices Authority · fetched 2026-03-11 23:44:45 · updated 2026-09-28 03:00:45
Drug Interactions
11Pharmacodynamic Warnings
Doxycycline appears in TABLE 1: Drugs that cause hepatotoxicity
Severe (1)
Tetracyclines - decreases absorption
Strontium is predicted to decrease the absorption of tetracyclines. Avoid. Theoretical Sucralfate
Moderate (5)
Doxycycline - decreases concentration
Fosphenytoin is predicted to decrease the concentration of tetracyclines (doxycycline). Adjust dose.
Doxycycline - decreases exposure
Rifampicin modestly decreases the exposure to tetracyclines (doxycycline). Adjust dose.
Lithium - increases risk of lithium toxicity
Tetracyclines are predicted to increase the risk of lithium toxicity when given with lithium. Avoid or adjust dose.
Tetracyclines - decreases concentration
Fosphenytoin is predicted to decrease the concentration of tetracyclines (doxycycline). Adjust dose.
Tetracyclines - decreases exposure
Rifampicin modestly decreases the exposure to tetracyclines (doxycycline). Adjust dose.
Unknown (5)
Ciclosporin - increases concentration
Doxycyclineispredictedtoincreasetheconcentrationof ciclosporin.rTheoretical
Tetracyclines - decreases exposure
Mitotane is predicted to decrease the exposure to tetracyclines (eravacycline). Adjust eravacycline dose, p. 625.
Tetracyclines - decreases exposure
Rifampicin is predicted to decrease the exposure to tetracyclines (eravacycline). Adjust eravacycline dose, p. 625.
Tetracyclines - decreases exposure
St John's wort is predicted to decrease the exposure to tetracyclines (eravacycline). Adjust eravacycline dose, p. 625.
Tetracyclines - decreases absorption
Oralzincispredictedtodecreasetheabsorptionof tetracyclines.Separateadministrationby2to3hours. oTheoretical https://www.facebook.c (Books-Courses-Medic
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: class
About bromhexine
Bromhexine is a medicine that helps to clear mucus from the airways, making it easier to breathe.
What it treats
- chest congestion
- mucus build-up in the lungs
- chronic bronchitis
How it works
Bromhexine works by thinning the mucus in the airways, which helps to loosen it and makes it easier to cough up.
Who it's for
Bromhexine is suitable for adults and children who have trouble clearing mucus from their lungs.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About doxycycline
Doxycycline is an antibiotic used to treat various infections.
What it treats
- bacterial infections
- acne
- respiratory infections
- malaria prevention
How it works
It works by stopping the growth of bacteria.
Who it's for
It is for adults and children who need treatment for bacterial infections.
Drug class
Tetracyclines
Cautions
- • Be cautious if taking other medications that can harm the liver.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About glucose
Glucose is a simple sugar that provides energy to the body.
What it treats
- low blood sugar (hypoglycemia)
- energy supplement
How it works
Glucose quickly raises blood sugar levels, providing immediate energy.
Who it's for
People who need quick energy, especially those with low blood sugar.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About gram
Gram is a medication that may be used for various conditions.
How it works
The exact way Gram works is not specified, but it is used to treat certain health issues.
Who it's for
Gram may be prescribed for people with specific medical conditions as determined by a healthcare provider.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About hyclate
Hyclate is a medication that may be used for various conditions, providing relief and support in treatment.
What it treats
- stomach cramps
- irritable bowel syndrome (IBS)
How it works
Hyclate helps to relax the muscles in the stomach and intestines, which reduces pain and discomfort.
Who it's for
This medication is generally for adults and children experiencing stomach or bowel issues.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About tartarate
Tartarate is a substance used in various medications for its effects on the body.
What it treats
- treatment of certain types of pain
- support for heart conditions
How it works
Tartarate helps to improve bodily functions and can assist in relieving symptoms related to specific health issues.
Who it's for
It is suitable for adults and children, depending on the specific condition being treated.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About tylosin
Tylosin is an antibiotic used to treat infections caused by certain bacteria.
What it treats
- bacterial infections
- respiratory infections
- gastrointestinal infections
How it works
Tylosin works by stopping the growth of bacteria, helping your body to fight off the infection.
Who it's for
Tylosin is used for adults and children who have specific bacterial infections.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Doxycycline
BNF-referencedDoxycycline is a broad-spectrum tetracycline antibiotic effective against a variety of bacterial infections. It acts by inhibiting protein synthesis in susceptible bacteria, thereby halting their growth and replication. It is commonly used for treating infections such as chlamydia, rickettsia, and mycoplasma, and is also indicated for acne and certain periodontal diseases.
Indications
- Bacterial infections
- Acne
- Destructive (refractory) periodontal disease
- Exacerbations of chronic bronchitis
- Leptospirosis
- Chlamydia infections
- Rickettsial infections
- Mycoplasma infections
- Acute necrotising ulcerative gingivitis
Dosage
Children: For children aged 12–17 years, initially 200 mg daily in 1–2 divided doses for the
Adults: Initially 200 mg daily in 1–2 divided doses for the first day, then maintenance 100 mg daily.
Mechanism of action
Doxycycline exerts its antibacterial effects by binding to the 30S ribosomal subunit of bacterial ribosomes, inhibiting the binding of aminoacyl-tRNA to the mRNA-ribosome complex. This inhibition of protein synthesis is crucial for bacterial growth and is the primary mechanism by which doxycycline exhibits its antimicrobial activity. It also impacts cellular metabolism and has been associated with non-genotoxic carcinogenic effects.
Pharmacodynamics
Doxycycline has a broad spectrum of activity against Gram-positive, Gram-negative bacteria, and some protozoa. Its bacteriostatic action is particularly effective against certain resistant strains, including MRSA. The drug's efficacy may vary based on the sensitivity of the bacteria, and resistance can develop through various mechanisms, such as efflux pumps and ribosomal protection.
Pharmacokinetics
Doxycycline is well absorbed from the gastrointestinal tract, with peak plasma concentrations typically reached within 2 hours after oral administration. It has a high volume of distribution and is approximately 90% protein-bound. The drug is metabolized in the liver and excreted primarily in feces, with a smaller fraction eliminated in urine. The half-life of doxycycline is approximately 18 to 22 hours, allowing for once or twice daily dosing in most cases.
Contra-indications
- Pregnancy
- Breastfeeding
- Hypersensitivity to doxycycline or other tetracyclines
- Myasthenia gravis
- Severe hepatic impairment
Adverse effects
- Photosensitivity
- Dizziness
- Headache
- Nausea
- Vomiting
- Diarrhoea
- Angioedema
- Skin reactions
- Pseudomembranous enterocolitis
- Tooth discolouration
- Intracranial hypertension
- Thrombocytopenia
- Stevens-Johnson syndrome
- Pancreatitis
Interactions
- Fosphenytoin (decreases concentration)
- Rifampicin (decreases exposure)
- Ciclosporin (unknown effect on concentration)
- Antacids containing aluminium or magnesium (reduce absorption)
- Iron supplements (reduce absorption)
- Warfarin (may enhance anticoagulant effect)
Precautions
- Use with caution in renal impairment
- May cause increased intracranial pressure
- Risk of superinfection (e.g., fungal infections)
- Avoid exposure to sunlight or sun lamps
- Monitor liver function in patients receiving prolonged therapy
Pregnancy
Should not be given to pregnant women; effects on skeletal development have been documented in the first trimester in animal studies. Administration during the second or third trimester may cause discoloration of the child's teeth, and maternal hepatotoxicity has been reported with large parenteral doses.
Breast-feeding
Should not be given to women who are breastfeeding; absorption may lead to discoloration of teeth in the infant.
Storage
Store in a cool, dry place away from light. Keep out of reach of children.
Formulations
- Tablets
- Capsules
- Oral suspension
- Oral solution
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: Glucose
BNF-referencedGlucose is a simple sugar and a vital carbohydrate that serves as the primary energy source for human cells. It is essential for various metabolic processes, providing energy through glycolysis and subsequent pathways. Glucose is utilized by nearly all tissues and plays a crucial role in maintaining energy homeostasis in the body. It can be administered orally or intravenously and is commonly used in clinical settings for fluid and electrolyte management.
Indications
- Fluid and electrolyte imbalances
- Hypoglycemia
- Nutritional supplementation
- Diabetic emergencies
Dosage
Children: Refer to the BNF for Children for appropriate paediatric dosing guidelines.
Adults: The dosage varies based on the clinical condition and specific formulation used. For intravenous administration, consult product literature for precise dosing.
Mechanism of action
Glucose supplies energy to tissues by undergoing glycolysis, which begins with its phosphorylation by hexokinase to form glucose 6-phosphate. This activates glucose for breakdown, ultimately generating ATP and NADH. The aerobic metabolism of glucose can yield up to 36 ATP molecules. Glucose also serves as a precursor for other biomolecules and regulates various physiological processes including gene transcription and hormone secretion.
Pharmacodynamics
Glucose is an obligatory energy source for cellular activities and plays a significant role in metabolic signaling. It is oxidized to yield energy through glycolysis, the citric acid cycle, and oxidative phosphorylation. Glucose can be converted into fat for energy storage and is stored as glycogen in the liver and muscles. Its administration increases blood glucose levels and stimulates insulin secretion, particularly through oral routes that activate gut incretin hormones.
Pharmacokinetics
Glucose is rapidly absorbed from the gastrointestinal tract or directly into the bloodstream when administered intravenously. It is distributed widely throughout the body and metabolized primarily in tissues requiring energy. The body maintains glucose homeostasis through regulatory mechanisms involving insulin and glucagon. Excess glucose can be stored as glycogen or converted to triglycerides for long-term energy storage.
Adverse effects
- Hyperglycemia
- Increased osmolarity
- Fluid overload
- Electrolyte imbalances
Interactions
- Insulin - may require dose adjustments
Precautions
- Use with caution in patients with diabetes mellitus
- Monitor blood glucose levels in patients receiving parenteral glucose
- Adjust dosage in renal impairment
Pregnancy
Glucose is generally considered safe in pregnancy; however, monitoring is advised, especially in diabetic patients.
Breast-feeding
Glucose is considered safe during breastfeeding, as it is a natural sugar found in breast milk.
Storage
Store at room temperature, away from light. Avoid freezing.
Formulations
- Glucose 5% solution for infusion
- Glucose 10% solution for infusion
- Glucose 0.9% solution for injection
- Glucose sodium chloride combination solutions
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: bromhexine
BNF-referencedBromhexine is a mucolytic agent used primarily in the management of respiratory conditions characterized by excessive or thick mucus production. It works by reducing mucus viscosity, enhancing mucociliary clearance, and facilitating the expulsion of secretions from the respiratory tract. Given its pharmacological properties, bromhexine is particularly beneficial in conditions such as chronic bronchitis, asthma, and other respiratory ailments where mucus clearance is compromised.
Indications
- Chronic bronchitis
- Asthma
- Bronchiectasis
- Pneumonia
- Respiratory tract infections with productive cough
Dosage
Children: Refer to the BNF for Children for specific paediatric dosing recommendations.
Adults: Refer to the BNF for specific dosing information.
Mechanism of action
Bromhexine aids in mucus clearance by reducing the viscosity of mucus and activating the ciliary epithelium, allowing secretions to be expelled from the respiratory tract. Additionally, bromhexine has been shown to inhibit the transmembrane serine protease 2 receptor (TMPRSS2), which plays a crucial role in viral respiratory diseases. This inhibition may help in preventing or treating various respiratory illnesses, including COVID-19, by blocking viral entry into cells.
Pharmacodynamics
Bromhexine thins airway secretions, thus improving breathing and alleviating discomfort associated with thick mucus in the airways. Its action is particularly beneficial in respiratory disorders where mucus obstruction is a significant issue.
Pharmacokinetics
Bromhexine is well absorbed after oral administration, with peak plasma concentrations typically reached within 1 to 2 hours. It is metabolized in the liver, primarily to ambroxol, which is its active metabolite. The elimination half-life of bromhexine is approximately 8 to 12 hours, and it is excreted mainly through urine. The pharmacokinetics can be influenced by factors such as liver function and concurrent medications.
Adverse effects
- Gastrointestinal disturbances
- Nausea
- Vomiting
- Diarrhea
- Allergic reactions
Precautions
- Use with caution in patients with peptic ulcer disease
- Monitor patients with asthma or bronchospastic conditions
Pregnancy
Bromhexine should be used during pregnancy only if clearly needed and after careful consideration of the potential benefits and risks.
Breast-feeding
Bromhexine is excreted in breast milk; caution should be exercised when administering to nursing mothers.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- Tablets
- Syrup
- Solution for inhalation
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: gram
Gram is an antibiotic that is primarily used to treat bacterial infections. It belongs to the class of drugs known as aminoglycosides and is effective against a variety of gram-negative and some gram-positive bacteria. Its use is often limited to severe infections due to its potential for toxicity, particularly nephrotoxicity and ototoxicity.
Indications
- Severe infections caused by gram-negative bacteria
- Complicated urinary tract infections
- Bacterial sepsis
- Endocarditis caused by susceptible organisms
Dosage
Children: Dosing in children is also weight-based and varies by indication. Refer to the BNF for Children for specific dosing recommendations.
Adults: Dosage varies significantly based on the infection severity and type, renal function, and the specific bacterial susceptibility. Refer to clinical guidelines or the BNF for precise dosing.
Mechanism of action
Gram works by inhibiting bacterial protein synthesis. It binds to the 30S ribosomal subunit of the bacteria, causing misreading of the mRNA and ultimately preventing the synthesis of essential proteins necessary for bacterial growth and replication.
Pharmacodynamics
The pharmacodynamics of Gram include its bactericidal activity against susceptible bacteria. The drug shows concentration-dependent killing, meaning that higher drug concentrations correlate with greater bactericidal effects. The post-antibiotic effect is noted, where bacterial growth is inhibited even after the drug concentration falls below the minimum inhibitory concentration (MIC).
Pharmacokinetics
Gram is usually administered parenterally (intravenously or intramuscularly), and its absorption can vary based on the route of administration. It is distributed widely in body fluids and tissues, although it does not penetrate well into the central nervous system. The drug is primarily eliminated through the kidneys, and its half-life may be prolonged in patients with renal impairment. Monitoring of drug levels may be necessary to avoid toxicity.
Adverse effects
- Nausea
- Vomiting
- Diarrhea
- Abdominal pain
- Allergic reactions
- Rash
- Renal dysfunction
Precautions
- Use with caution in patients with renal impairment
- Monitor renal function during therapy
- Assess for potential allergic reactions
Pregnancy
Use only if the potential benefit justifies the potential risk to the fetus. Consult with a healthcare provider.
Breast-feeding
Use with caution, as it may be excreted in breast milk. Consult with a healthcare provider.
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: hyclate
Hyclate, often referring to hyoscine hydrobromide, is a medication primarily used for its anticholinergic properties. It is effective in treating motion sickness, nausea, and vomiting, as well as in the management of muscle spasms in the gastrointestinal tract. Hyoscine works by blocking the action of acetylcholine at muscarinic receptors in the body, leading to decreased secretions and reduced gastrointestinal motility.
Indications
- Motion sickness
- Nausea and vomiting
- Gastrointestinal spasms
- Preoperative sedation
Dosage
Children: Refer to the BNF for Children for specific dosing recommendations based on the child's age, weight, and condition being treated.
Adults: Refer to the appropriate clinical guidelines or BNF for specific dosing recommendations based on the condition being treated and patient factors.
Mechanism of action
Hyclate exerts its effects by antagonizing muscarinic acetylcholine receptors, which are found throughout the central and peripheral nervous systems. This inhibition leads to a decrease in acetylcholine-induced effects, particularly in the gastrointestinal system and vestibular apparatus, thus alleviating symptoms of nausea and motion sickness.
Pharmacodynamics
The pharmacodynamic effects of hyoscine include reduced gastrointestinal motility, decreased secretions, and a sedative effect on the central nervous system. Its antimuscarinic activity can result in side effects such as dry mouth, blurred vision, constipation, and drowsiness, depending on the dose and individual patient response.
Pharmacokinetics
Hyclate is well-absorbed from the gastrointestinal tract, and its peak plasma concentrations are typically reached within 2 hours after oral administration. The drug is widely distributed throughout the body, including the central nervous system where it crosses the blood-brain barrier. Hyoscine is metabolized in the liver and excreted primarily through the urine. The half-life of hyoscine is approximately 3 to 5 hours, but this can vary based on the formulation and route of administration.
Contra-indications
- Hypersensitivity to hyoscyamine or any of the excipients
- Glaucoma
- Myasthenia gravis
- Severe ulcerative colitis
- Tachycardia
Adverse effects
- Dry mouth
- Blurred vision
- Constipation
- Urinary retention
- Dizziness
- Confusion
- Nausea
- Vomiting
Interactions
- Anticholinergic agents may enhance effects
- Opioids may increase risk of constipation
- Antidepressants may increase anticholinergic effects
- Antihistamines may have additive sedative effects
Precautions
- Use with caution in patients with prostate enlargement
- May exacerbate conditions like heart disease or hypertension
- Caution in elderly patients due to increased sensitivity
Pregnancy
Consult the prescribing information; safety during pregnancy is not established.
Breast-feeding
Consult a healthcare provider; may inhibit lactation.
Storage
Store at room temperature, away from moisture and heat.
Formulations
- Oral tablets
- Injection solution
- Extended-release capsules
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: tartarate
BNF-referencedTartarate, specifically potassium tartrate, is a salt of tartaric acid, primarily used in the food industry as an acidity regulator and stabilizing agent. In pharmacology, it is utilized in various formulations and may have applications in certain therapeutic areas. Its molecular formula is C4H4O6-2, indicating it is a dicarboxylic acid derivative. Tartarate plays a role in several biochemical pathways, particularly in metabolic processes.
Indications
- Acidity regulator
- Stabilizing agent in pharmaceutical formulations
- Potential use in metabolic processes
Dosage
Children: Refer to the BNF for Children for specific dosing recommendations, as pediatric dosing should be based on individual clinical scenarios.
Adults: Refer to specific guidelines for formulations containing tartarate, as dosing may vary based on the therapeutic context.
Mechanism of action
Tartarate acts as a salt that can influence the solubility and stability of various pharmaceutical compounds. It is known to interact with calcium ions and may affect the crystallization processes of certain compounds. In metabolic pathways, tartarate may participate in the citric acid cycle, contributing to energy production and various enzymatic reactions.
Pharmacodynamics
The pharmacodynamics of tartarate are largely related to its role as a buffering agent and stabilizer in formulations. It does not have direct pharmacological effects in the way that active drugs do but can influence the solubility and bioavailability of co-administered medications. Its effects on metabolic pathways can indirectly influence physiological responses.
Pharmacokinetics
The pharmacokinetics of tartarate, particularly potassium tartrate, involve absorption in the gastrointestinal tract, where it dissociates into potassium and tartrate ions. These ions can be absorbed and utilized in various biochemical processes. Excretion primarily occurs via the kidneys. The pharmacokinetic profile may vary based on the formulation and route of administration.
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: tylosin
BNF-referencedTylosin is a macrolide antibiotic primarily used in veterinary medicine, particularly in the treatment of bacterial infections in livestock. It is effective against a variety of Gram-positive bacteria and some Gram-negative bacteria. Tylosin is known for its ability to inhibit protein synthesis in bacteria, leading to their growth inhibition and eventual death.
Indications
- Bacterial infections in livestock
- Respiratory infections
- Enteritis caused by various pathogens
- Mycoplasma infections
Dosage
Children: For paediatric dosing, refer to the BNF for Children for appropriate dosing information based on age and weight.
Adults: Refer to the BNF for specific dosing guidelines based on the condition being treated, as doses may vary.
Mechanism of action
Tylosin inhibits peptide bond formation by binding to the 50S ribosomal subunit of bacteria, blocking the aminoacyl-tRNA from entering the ribosome and thus halting protein synthesis. This inhibition acts as a slow-binding, slowly reversible process, and the interaction with the ribosome is characterized by a significant degree of irreversibility, which is crucial for its antibiotic properties.
Pharmacodynamics
Tylosin exhibits bacteriostatic activity, meaning it inhibits bacterial growth rather than directly killing bacteria. Its effectiveness is particularly notable against certain strains of bacteria that are resistant to other antibiotic classes. The irreversibility of its action on the ribosome contributes to its long-lasting effects against bacterial infections.
Pharmacokinetics
After administration, tylosin is absorbed and distributed throughout the body. It is metabolized in the liver and excreted primarily in the bile, with some renal excretion. The half-life of tylosin can vary based on the route of administration and the species being treated. It is important to monitor for potential accumulation in cases of renal impairment.
Pregnancy
There is insufficient data on the use of tylosin during pregnancy. It should only be used if the potential benefits outweigh the risks.
Breast-feeding
It is not known whether tylosin is excreted in human milk. Caution should be exercised when administering to nursing mothers.
Storage
Store in a cool, dry place, away from light. Keep out of reach of children.
Formulations
- Tylosin tartrate tablets
- Tylosin injectable solution
- Tylosin oral suspension
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: Doxycycline
PubChem CID 54671203Molecular formula: C22H24N2O8
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Glucose
PubChem CID 5793Molecular formula: C6H12O6
Mechanism of action
Glucose supplies most of the energy to all tissues by generating energy molecules ATP and NADH during a series of metabolism reactions called glycolysis. Glycolysis can be divided into two main phases where the preparatory phase is initiated by the phosphorylation of glucose by hexokinase to form glucose 6-phosphate. The addition of the high-energy phosphate group activates glucose for the subsequent breakdown in later steps of glycolysis and is the rate-limiting step. Products end up as substrates for following reactions, to ultimately convert C6 glucose molecule into two C3 sugar molecules. These products enter the energy-releasing phase where the total of 4ATP and 2NADH molecules are generated per one glucose molecule. The total aerobic metabolism of glucose can produce up to 36 ATP molecules. These energy-producing reactions of glucose are limited to D-glucose as L-glucose cannot be phosphorylated by hexokinase. Glucose can act as precursors to generate other biomolecules such as vitamin C. It plays a role as a signaling molecule to control glucose and energy homeostasis. Glucose can regulate gene transcription, enzyme activity, hormone secretion, and the activity of glucoregulatory neurons. The types, number, and kinetics of glucose transporters expressed depends on the tissues and fine-tunes glucose uptake, metabolism, and signal generation to preserve cellular and whole body metabolic integrity. Vascular calcification is a hallmark of type 2 diabetes. Glucose stimulates calcification in culture of vascular smooth muscle cells (VSMCs) but the underlying mechanisms remain obscure. We observed that high glucose levels stimulated mouse and human VSMC trans-differentiation into chondrocytes, with increased levels of Sox9, type II collagen, glycosaminoglycan and Runx2 expression, and increased alkaline phosphatase activity and mineralization. These effects were associated with increased expression of IL-1beta, which stimulated alkaline phosphatase and calcification, suggesting that glucose induces chondrocyte differentiation of VSMCs, possibly through IL-1beta activation.
Pharmacodynamics
Blood glucose is an obligatory energy source for humans involved in various cellular activities, and it also acts as a signaling molecule for diverse glucose-sensing molecules and proteins. Glucose undergoes oxidation into carbon dioxide, water, and yields energy molecules in the process of glycolysis and subsequent citric cycle and oxidative phosphorylation. Glucose is readily converted into fat in the body which can be used as a source of energy as required. Under a similar conversion into storage of energy, glucose is stored in the liver and muscles as glycogen. Glucose stores are mobilized in a regulated manner, depending on the tissues' metabolic demands. Oral glucose tablets or injections serve to increase the supply of glucose and oral glucose administration is more effective in stimulating insulin secretion because it stimulates the incretin hormones from the gut, which promotes insulin secretion.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: bromhexine
PubChem CID 2442Molecular formula: C14H20Br2N2
Mechanism of action
Inflammation of the airways, increased mucus secretion, and altered mucociliary clearance are the hallmarks of various diseases of the respiratory tract. Mucus clearance is necessary for lung health; bromhexine aids in mucus clearance by reducing the viscosity of mucus and activating the ciliary epithelium, allowing secretions to be expelled from the respiratory tract. Recent have studies have demonstrated that bromhexine inhibits the transmembrane serine protease 2 receptor (TMPRSS2) in humans. Activation of TMPRSS2 plays an important role in viral respiratory diseases such as influenza A and Middle East Respiratory Syndrome (MERS). Inhibition of receptor activation and viral entry by bromhexine may be effective in preventing or treating various respiratory illnesses, including COVID-19. In vitro studies have suggested the action of ambroxol (a metabolite of bromhexine) on the angiogensin-converting enzyme receptor 2 (ACE2), prevents entry of the viral envelope-anchored spike glycoprotein of SARS-Cov-2 into alveolar cells or increases the secretion of surfactant, preventing viral entry.
Pharmacodynamics
Bromhexine thins airway secretions, improving breathing and discomfort associated with thick mucus in airways associated with a variety of respiratory conditions.
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: tartarate
PubChem CID 3806114Molecular formula: C4H4O6-2
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: tylosin
PubChem CID 5280440Molecular formula: C46H77NO17
Mechanism of action
The inhibition of peptide bond formation by tylosin, a 16-membered ring macrolide, was studied in a model system derived from Escherichia coli. In this cell-free system, a peptide bond is formed between puromycin (acceptor substrate) and AcPhe-tRNA (donor substrate) bound at the P-site of poly(U)-programmed ribosomes. It is shown that tylosin inhibits puromycin reaction as a slow-binding, slowly reversible inhibitor. Detailed kinetic analysis reveals that tylosin (I) reacts rapidly with complex C, i.e., the AcPhe-tRNA. poly(U).70S ribosome complex, to form the encounter complex CI, which then undergoes a slow isomerization and is converted to a tight complex, CI, inactive toward puromycin. These events are described by the scheme C + I <==> (K(i)) CI <==> (k(4), k(5)) CI. The K(i), k(4), and k(5) values are equal to 3 microM, 1.5 min(-1), and 2.5 x 10(-3) min(-1), respectively. The extremely low value of k(5) implies that the inactivation of complex C by tylosin is almost irreversible. The irreversibility of the tylosin effect on peptide bond formation is significant for the interpretation of this antibiotic's therapeutic properties; it also renders the tylosin reaction a useful tool in the study of other macrolides failing to inhibit the puromycin reaction but competing with tylosin for common binding sites on the ribosome. Thus, the tylosin reaction, in conjunction with the puromycin reaction, was applied to investigate the erythromycin mode of action. It is shown that erythromycin (Er), like tylosin, interacts with complex C according to the kinetic scheme C + Er <==> (K(er)) CEr <==> (k(6), k(7)) C*Er and forms a tight complex, CEr, which remains active toward puromycin. The determination of K(er), k(6), and k(7) enables us to classify erythromycin as a slow-binding ligand of ribosomes
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.
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