FECONTIN-F
FERROUS SULPHATE GLYCINE FOLIC ACID
What it does
Ferrous is a type of iron supplement used to treat or prevent low iron levels in the body.
Commonly used for: iron deficiency anemia, low iron levels
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About ferrous
Ferrous is a type of iron supplement used to treat or prevent low iron levels in the body.
What it treats
- iron deficiency anemia
- low iron levels
How it works
Ferrous provides the body with iron, which is necessary for producing red blood cells and transporting oxygen.
Who it's for
It is suitable for individuals who have low iron levels or are at risk of iron deficiency, such as pregnant women, vegetarians, or those with certain medical conditions.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About folic
Folic acid is a type of B vitamin that helps your body produce and maintain new cells. It is essential for making DNA and other genetic material.
What it treats
- preventing folic acid deficiency
- helping in the development of the baby during pregnancy (especially in the early stages)
- treating certain types of anemia (low red blood cell count)
How it works
Folic acid works by helping the body create new cells and produce DNA, which is vital for growth and development.
Who it's for
Folic acid is for people who need extra folate, such as pregnant women or those with certain medical conditions.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About glycine
Glycine is an amino acid that plays a role in various bodily functions.
What it treats
- supporting mood and mental health
- helping with sleep issues
- aiding muscle recovery
How it works
Glycine helps to build proteins in the body and can have a calming effect on the brain.
Who it's for
Glycine may be suitable for adults looking to improve their mood, sleep, or muscle recovery.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Ferrousfumarate
BNF-referencedFerrous fumarate is an iron supplement used primarily in the treatment and prevention of iron deficiency anemia. It provides elemental iron, which is essential for the synthesis of hemoglobin and the production of red blood cells. This compound plays a crucial role in increasing the iron stores in the body, which can be depleted in conditions such as chronic blood loss, malnutrition, or increased physiological demands.
Indications
- Iron deficiency anemia
- Prophylaxis of iron deficiency in at-risk populations
- Epithelial tissue changes such as atrophic glossitis and koilonychia
Dosage
Children: For children aged 1 month to 11 years: 0.25 mL per kilogram twice daily, with the total daily dose possibly given in 3 divided doses, not exceeding 20 mL per day. For children aged 12-17 years: 10 mL once daily.
Adults: The dose is calculated according to body weight and the iron deficit, specifying both the iron salt and formulation. For specific dosing, consult product literature.
Mechanism of action
Iron is necessary for the production of hemoglobin. Iron deficiency can lead to decreased production of hemoglobin and a microcytic, hypochromic anemia. Ferrous fumarate releases iron in the gastrointestinal tract, facilitating its absorption and subsequent incorporation into hemoglobin, thus alleviating anemia.
Pharmacodynamics
The major activity of supplemental iron, including ferrous fumarate, is in the prevention and treatment of iron deficiency anemia. Iron also has putative immune-enhancing, anticarcinogenic, and cognition-enhancing activities, supporting overall health and functionality.
Pharmacokinetics
Ferrous fumarate is absorbed in the gastrointestinal tract, with absorption being optimal in an acidic environment. The bioavailability can be influenced by dietary factors, such as the presence of certain foods or medications that may inhibit iron absorption. Once absorbed, iron is transported in the blood bound to transferrin and is stored in tissues as ferritin and hemosiderin. The elimination half-life of iron is variable and depends on the individual's iron status and the amount of iron stored.
Contra-indications
- Iron overload syndromes
- Repeated blood transfusions
- Porphyria cutanea tarda
Adverse effects
- Asthenia
- Drowsiness
- Urine discoloration
- Cold sweat
- Confusion
- Decreased level of consciousness
- Thrombophlebitis
- Headache
- Joint stiffness
- Pain in extremities
- Skin reactions
- Small intestinal bacterial overgrowth
- Thirst
- Nausea
- Constipation
- Diarrhea
- Decreased appetite
Interactions
- Iron absorption may be affected by antacids and certain medications that alter gastric pH.
Precautions
- Monitor iron status to avoid iron overload.
- Caution in patients with intestinal strictures or diverticular disease.
- Care in elderly patients and those on high doses.
Pregnancy
Iron is generally considered safe during pregnancy, but supplementation should be monitored to avoid overload.
Breast-feeding
Iron supplementation may be necessary for exclusively breast-fed infants if maternal iron stores are low.
Storage
Store in a cool, dry place, away from direct sunlight. Keep out of reach of children.
Formulations
- Solution for injection (Iron as Iron sucrose 20 mg per 1 ml)
- Capsules containing iron formulations
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: Ferroussulfate
BNF-referencedFerrous sulfate is an iron supplement used primarily for the treatment and prevention of iron-deficiency anemia. It provides the body with iron, an essential component of hemoglobin in red blood cells, facilitating oxygen transport throughout the body. Iron-deficiency anemia can result from inadequate dietary intake, chronic blood loss, or increased physiological demands such as pregnancy.
Indications
- Iron-deficiency anemia (therapeutic)
- Iron-deficiency anemia (prophylactic)
Dosage
Children: For children aged 1 month to 11 years: 0.25 mL/kilogram twice daily. For children aged 12 to 17 years: 10 mL once daily.
Adults: 280 mg twice daily.
Mechanism of action
Ferrous sulfate acts as a source of iron, which is essential for the synthesis of hemoglobin, the protein in red blood cells that carries oxygen. Iron is absorbed in the intestines, where it is converted into a form that can be incorporated into hemoglobin. The mechanism involves transport proteins that facilitate iron uptake and incorporation into the heme group of hemoglobin.
Pharmacodynamics
The pharmacodynamic effect of ferrous sulfate is the increase in hemoglobin levels and improvement in symptoms of anemia, such as fatigue and weakness. Iron supplementation leads to increased erythropoiesis (red blood cell production) in the bone marrow, effectively correcting the deficit in iron stores and enhancing oxygen-carrying capacity.
Pharmacokinetics
Ferrous sulfate is absorbed in the gastrointestinal tract, particularly in the duodenum and proximal jejunum. The bioavailability of iron from ferrous sulfate can be affected by dietary factors, with enhanced absorption in acidic environments. Peak plasma concentrations typically occur within 2 to 6 hours post-administration. Iron is primarily stored in the liver and bone marrow, and any excess iron is excreted through feces, urine, and sweat.
Contra-indications
- Hypersensitivity to ferrous sulfate or any of its excipients
- Hemochromatosis
- Hemosiderosis
- Thalassemia
- Other anemias not due to iron deficiency
Adverse effects
- Gastrointestinal disturbances (nausea, constipation, diarrhea, abdominal pain)
- Dark stools
- Staining of teeth (with liquid formulations)
- Allergic reactions (rare)
Interactions
- Antacids may reduce the absorption of iron
- Tetracycline antibiotics may interfere with iron absorption
- Ascorbic acid (vitamin C) may enhance iron absorption
- Certain foods and beverages (e.g., tea, coffee, dairy) can decrease iron absorption
Precautions
- Use with caution in patients with peptic ulcer disease
- Monitor for signs of iron overload
- Assess the cause of anemia before initiation of therapy
- Keep out of reach of children to prevent accidental overdose
Pregnancy
Ferrous sulfate is generally considered safe for use during pregnancy to prevent or treat iron-deficiency anemia.
Breast-feeding
Ferrous sulfate is excreted in breast milk in small amounts but is considered safe for breastfeeding mothers.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- Ferrous sulfate 200 mg tablets
- Ferrous sulfate 325 mg modified-release tablets
- Ferrous sulfate oral solution 140 mg/5 mL
- Ferrous sulfate drops
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: Glycine
BNF-referencedGlycine is a non-essential amino acid that plays a significant role in various physiological processes, including neurotransmission and immune function. It acts as an inhibitory neurotransmitter in the central nervous system by binding to specific receptors. Glycine is also involved in the synthesis of proteins, hormones, and other biomolecules, contributing to metabolic processes. In clinical practice, glycine is primarily used in irrigation solutions during urological surgeries.
Indications
- Bladder irrigation during urological surgery
- Irrigation for transurethral resection of the prostate gland
- Irrigation for bladder tumors
Dosage
Children: Refer to the BNF for Children for pediatric dosing guidelines.
Adults: Refer to the product literature for specific dosing information.
Mechanism of action
Glycine binds to strychnine-sensitive and strychnine-insensitive glycine receptors in the central nervous system. The strychnine-sensitive receptor is a chloride channel that enhances inhibitory neurotransmission. This action may contribute to glycine's potential antispastic effects. Additionally, glycine potentiates NMDA receptor-mediated neurotransmission, which may have implications in managing certain neurological conditions, such as neuroleptic-resistant negative symptoms in schizophrenia.
Pharmacodynamics
Glycine plays a crucial role in various biological functions, including energy metabolism and immune response. It is involved in hormone synthesis and helps in modulating neurotransmitter release, particularly in inhibitory pathways. Glycine's ability to enhance chloride conductance in neurons contributes to its antispastic properties and its potential to mitigate oxidative stress in immune responses.
Pharmacokinetics
Glycine is absorbed readily in the gastrointestinal tract and is utilized by the body for protein synthesis and other metabolic functions. The distribution of glycine in the body is widespread, as it is present in various tissues. Glycine is metabolized in the liver and other tissues, with excretion primarily occurring via the kidneys. The pharmacokinetics of glycine can be influenced by factors such as age, renal function, and overall health status.
Adverse effects
- Fluid overload
- Electrolyte imbalance
- Nausea
- Vomiting
- Headache
- Hypotension
Precautions
- Monitor for signs of fluid overload during irrigation
- Use caution in patients with pre-existing electrolyte imbalances
- Careful consideration in patients with renal impairment
Pregnancy
Glycine is generally considered safe for use during pregnancy when used as an irrigation solution, but risks should be discussed with a healthcare provider.
Breast-feeding
Glycine is likely safe during breastfeeding, but limited data is available. Consultation with a healthcare professional is advisable.
Storage
Store in a cool, dry place. Protect from light. Do not freeze.
Formulations
- Glycine 1.5% irrigation solution 3 litre Easyflow bags
- Glycine 1.5% irrigation solution 1 litre Flowfusor bottles
- Glycine 1.5% irrigation solution 1 litre Easyflow bags
- Glycine 1.5% irrigation solution 2 litre Flowfusor bottles
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: ferrous
BNF-referencedFerrous refers to iron in its +2 oxidation state, primarily encountered as ferrous sulfate, which is used as an iron supplement to treat or prevent iron deficiency anemia. Iron is a crucial component of hemoglobin in red blood cells, facilitating oxygen transport throughout the body. Adequate iron levels are essential for various biological functions, including energy metabolism and immune system performance.
Indications
- Iron deficiency anemia
- Iron deficiency due to inadequate dietary intake
- Anemia associated with chronic disease
- Pregnancy-related anemia
Dosage
Children: Refer to the BNF for Children for specific dosing recommendations based on age and weight.
Adults: Refer to the BNF for specific dosing recommendations, generally, adults may require 100-200 mg of elemental iron daily divided into several doses.
Mechanism of action
Ferrous ions (Fe2+) play a vital role in hemoglobin production by participating in the synthesis of heme, the iron-containing compound essential for oxygen transport in the blood. In addition, iron is a cofactor for various enzymes involved in metabolic pathways, including those related to DNA synthesis and energy production.
Pharmacodynamics
The pharmacodynamic effects of ferrous include increased hemoglobin synthesis, improved oxygen transport, and enhanced cellular energy metabolism. Supplementation leads to an increase in serum ferritin levels and replenishment of iron stores in the body, which is particularly beneficial in cases of iron deficiency anemia.
Pharmacokinetics
Ferrous iron is absorbed primarily in the duodenum and upper jejunum of the small intestine. The absorption rate can be influenced by various factors, including the presence of food, the form of iron, and individual patient characteristics. Once absorbed, ferrous is transported in the bloodstream bound to transferrin, and it is stored in the liver, spleen, and bone marrow as ferritin. The elimination half-life of iron is not well-defined as it is not excreted directly but rather recycled in the body.
Pregnancy
Not contraindicated, but iron supplementation should be done under medical supervision.
Breast-feeding
Iron is excreted in breast milk, but supplementation is generally considered safe.
Storage
Store in a cool, dry place away from 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: folic
BNF-referencedFolic acid, also known as Vitamin B9 or folate, is a water-soluble B-complex vitamin essential for numerous biochemical processes, including DNA and RNA synthesis. It plays a critical role in the synthesis of purines, pyrimidines, and the amino acid methionine, making it vital for normal cell division and growth. Folic acid is predominantly found in foods such as liver, kidney, yeast, and leafy green vegetables, and due to the body's inability to synthesize it, dietary intake or supplementation is necessary to prevent deficiencies. Folic acid is particularly important during periods of rapid cell proliferation, such as infancy and pregnancy, and has been associated with reduced risks of certain cancers.
Mechanism of action
Folic acid is biochemically inactive until it is converted into active forms, primarily tetrahydrofolic acid and methyltetrahydrofolate, by the enzyme dihydrofolate reductase (DHFR). These active forms are essential for maintaining normal erythropoiesis, synthesizing nucleic acids, interconverting amino acids, and generating formate. They participate in critical one-carbon transfer reactions necessary for DNA synthesis and methylation processes. Folic acid, in conjunction with vitamin B12, helps normalize elevated homocysteine levels by facilitating its remethylation to methionine, a process that is crucial for various metabolic pathways.
Pharmacodynamics
Folic acid is an essential cofactor for enzymes involved in nucleic acid synthesis and amino acid metabolism. It is particularly significant in preventing megaloblastic anemia, which arises from impaired DNA synthesis due to folate deficiency. The synthesis of thymidylate, necessary for DNA formation, is directly influenced by folate availability. Folic acid's role is especially crucial during periods of rapid cellular division, and it has protective effects against certain cancer developments. As humans cannot synthesize folic acid endogenously, adequate dietary intake is essential for maintaining normal physiological functions.
Pharmacokinetics
Folic acid is absorbed in the small intestine and is then converted into its active forms within the body. The bioavailability of folic acid is influenced by factors such as food composition and the presence of certain gastrointestinal conditions. Once absorbed, it is transported in the bloodstream, mainly as 5-methyltetrahydrofolate. The distribution of folate occurs within various tissues, with significant
Adverse effects
- Allergic reactions
- Gastrointestinal disturbances
- Skin rash
- Altered sleep patterns
Interactions
- Anticonvulsants may reduce the effectiveness of folic acid
- Methotrexate may interfere with folic acid metabolism
- Trimethoprim-sulfamethoxazole can enhance the effects of folic acid deficiency
Precautions
- Monitor for signs of anemia in patients with malabsorption syndromes
- Use cautiously in patients with a history of hypersensitivity to folic acid
- Assess for vitamin B12 deficiency before initiating treatment, as folic acid can mask symptoms
Pregnancy
Folic acid is essential during pregnancy to prevent neural tube defects and support fetal development. Supplementation is recommended before conception and during the first trimester.
Breast-feeding
Folic acid passes into breast milk, and adequate maternal intake is important to ensure sufficient levels for the nursing infant.
Storage
Store in a cool, dry place away from light. Keep out of reach of children.
Formulations
- Tablets
- Oral solutions
- Injectable forms
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: Ferrousfumarate
PubChem CID 6433164Molecular formula: C4H2FeO4
Mechanism of action
Iron is necessary for the production of hemoglobin. Iron-deficiency can lead to decreased production of hemoglobin and a microcytic, hypochromic anemia.
Pharmacodynamics
The major activity of supplemental iron is in the prevention and treatment of iron deficiency anemia. Iron has putative immune-enhancing, anticarcinogenic and cognition-enhancing activities.
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Ferrousgluconate
PubChem CID 23616740Molecular formula: C12H22FeO14
Mechanism of action
Iron is necessary for the production of hemoglobin. Iron-deficiency can lead to decreased production of hemoglobin and a microcytic, hypochromic anemia.
Pharmacodynamics
The major activity of supplemental iron is in the prevention and treatment of iron deficiency anemia. Iron has putative immune-enhancing, anticarcinogenic and cognition-enhancing activities.
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Glycine
PubChem CID 750Molecular formula: C2H5NO2
Mechanism of action
In the CNS, there exist strychnine-sensitive glycine binding sites as well as strychnine-insensitive glycine binding sites. The strychnine-insensitive glycine-binding site is located on the NMDA receptor complex. The strychnine-sensitive glycine receptor complex is comprised of a chloride channel and is a member of the ligand-gated ion channel superfamily. The putative antispastic activity of supplemental glycine could be mediated by glycine's binding to strychnine-sensitive binding sites in the spinal cord. This would result in increased chloride conductance and consequent enhancement of inhibitory neurotransmission. The ability of glycine to potentiate NMDA receptor-mediated neurotransmission raised the possibility of its use in the management of neuroleptic-resistant negative symptoms in schizophrenia. Animal studies indicate that supplemental glycine protects against endotoxin-induced lethality, hypoxia-reperfusion injury after liver transplantation, and D-galactosamine-mediated liver injury. Neutrophils are thought to participate in these pathologic processes via invasion of tissue and releasing such reactive oxygen species as superoxide. In vitro studies have shown that neutrophils contain a glycine-gated chloride channel that can attenuate increases in intracellular calcium and diminsh neutrophil oxidant production. This research is ealy-stage, but suggests that supplementary glycine may turn out to be useful in processes where neutrophil infiltration contributes to toxicity, such as ARDS. HYPERPOLARIZATION OF MOTONEURONS PRODUCED BY IONTOPHORETIC APPLICATION OF GLYCINE IS RELATIVELY TRANSIENT BUT APPROACHES THE EQUILIBRIUM POTENTIAL FOR THE INDIRECTLY ACTIVATED INHIBITORY POSTSYNAPTIC POTENTIAL...TESTS WITH GABA... INDICATE SIMILAR ELECTROPHYSIOLOGICAL EFFECTS & SIMILAR INCR IN CL- CONDUCTANCE. MAJOR EVIDENCE THAT FAVORS GLYCINE AS MEDIATOR OF INTRASPINAL POSTSYNAPTIC INHIBITION IS THE SELECTIVE ANTAGONISM OF ITS EFFECTS BY STRYCHNINE. ... GLYCINE ALSO APPEARS TO BE MOST LIKELY TRANSMITTER FOR INHIBITORY INTERNEURONS IN RETICULAR FORMATION BUT NOT IN CUNEATE NUCLEUS.
Pharmacodynamics
Helps trigger the release of oxygen to the energy requiring cell-making process; Important in the manufacturing of hormones responsible for a strong immune system.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: ferrous
PubChem CID 27284Molecular formula: Fe+2
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: folic
PubChem CID 135398658Molecular formula: C19H19N7O6
Mechanism of action
Folic acid, as it is biochemically inactive, is converted to tetrahydrofolic acid and methyltetrahydrofolate by dihydrofolate reductase (DHFR). These folic acid congeners are transported across cells by receptor-mediated endocytosis where they are needed to maintain normal erythropoiesis, synthesize purine and thymidylate nucleic acids, interconvert amino acids, methylate tRNA, and generate and use formate. Using vitamin B12 as a cofactor, folic acid can normalize high homocysteine levels by remethylation of homocysteine to methionine via methionine synthetase. Folic acid, after conversion to tetrahydrofolic acid, is necessary for normal erythropoiesis, synthesis of purine and thymidylates, metabolism of amino acids such as glycine and methionine, and the metabolism of histidine. The principal biochemical function of folates is the mediation of one-carbon transfer reactions. 5-Methyltetrahydrofolate donates a methyl group to homocystine, in the conversion of homocystine to L-methionine. ... 5,10-Methyltetrahydrofolate is regenerated from tetrahydrofolate via the enzyme serine hydroxymethyltransferase, a reaction, which in addition to producing 5,10-methyltetrahydrofolate, yields glycine. ... 5,10-methyltetrahydrofolate, supplies the one carbon group for the methylation of deoxyuridylic acid to form the DNA precursor thymidylic acid. This reaction is catalyzed by thymidylate synthase and the folate product of the reaction is dihydrofolate. Dihydrofolate is converted to tetrahydrofolate via the enzyme dihydrofolate reductase ...
Pharmacodynamics
Folic acid is a water-soluble B-complex vitamin found in foods such as liver, kidney, yeast, and leafy, green vegetables. Also known as folate or Vitamin B9, folic acid is an essential cofactor for enzymes involved in DNA and RNA synthesis. More specifically, folic acid is required by the body for the synthesis of purines, pyrimidines, and methionine before incorporation into DNA or protein. Folic acid is the precursor of tetrahydrofolic acid, which is involved as a cofactor for transformylation reactions in the biosynthesis of purines and thymidylates of nucleic acids. Impairment of thymidylate synthesis in patients with folic acid deficiency is thought to account for the defective deoxyribonucleic acid (DNA) synthesis that leads to megaloblast formation and megaloblastic and macrocytic anemias. Folic acid is particularly important during phases of rapid cell division, such as infancy, pregnancy, and erythropoiesis, and plays a protective factor in the development of cancer. As humans are unable to synthesize folic acid endogenously, diet and supplementation is necessary to prevent deficiencies. In order to function properly within the body, folic acid must first be reduced by the enzyme dihydrofolate reductase (DHFR) into the cofactors dihydrofolate (DHF) and tetrahydrofolate (THF). This important pathway, which is required for de novo synthesis of nucleic acids and amino acids, is disrupted by anti-metabolite therapies such as [DB00563] as they function as DHFR inhibitors to prevent DNA synthesis in rapidly dividing cells, and therefore prevent the formation of DHF and THF. In general, folate serum levels below 5 ng/mL indicate folate deficiency, and levels below 2 ng/mL usually result in megaloblastic anemia.
Biological pathways
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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