GYNOESSENCE CAPSULES
Myo-Inositol/ D-Chiro Inositol/ L-Methylfolate/ Vitamin D3/ Chromium/ Zinc/ Shatavari
What it does
Cholecalciferol is a form of vitamin D that helps maintain healthy bones and teeth.
Commonly used for: vitamin D deficiency, rickets, osteomalacia
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
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Sourcing - Kenya onlyRegistration & product details
Source: Food and Drugs Authority · fetched 2026-04-18 08:32:57 · updated 2026-09-25 04:00:13
About cholecalciferol
Cholecalciferol is a form of vitamin D that helps maintain healthy bones and teeth.
What it treats
- vitamin D deficiency
- rickets
- osteomalacia
How it works
Cholecalciferol helps your body absorb calcium and phosphorus, which are essential for strong bones.
Who it's for
It is suitable for individuals who need to boost their vitamin D levels, especially those with limited sun exposure.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About chromium
Chromium is a mineral that may help with blood sugar control and improve insulin sensitivity.
What it treats
- type 2 diabetes
- high blood sugar
- metabolic syndrome
How it works
Chromium helps your body use insulin effectively, which can lower blood sugar levels.
Who it's for
It is typically used by people with type 2 diabetes or those looking to manage their blood sugar.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About inositol
Inositol is a natural substance often used to support mental health and hormonal balance.
What it treats
- anxiety
- depression
- polycystic ovary syndrome (PCOS)
- bipolar disorder
How it works
Inositol helps improve the communication between brain cells and plays a role in regulating hormones.
Who it's for
Inositol is for adults looking for support with mood stability and hormonal issues.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About l-methylfolate
L-methylfolate is a form of vitamin B that helps the body use folate effectively.
What it treats
- folate deficiency
- depression
- certain types of anemia
How it works
It assists in the production of red blood cells and supports mental health by improving mood.
Who it's for
It is suitable for individuals who need extra folate, including those with specific medical conditions or dietary restrictions.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About myo-inositol
Myo-inositol is a natural substance that may help improve insulin sensitivity and support ovarian function.
What it treats
- polycystic ovary syndrome (PCOS)
- insulin resistance
- ovarian health
How it works
Myo-inositol helps in the regulation of insulin and may promote better ovarian function, which can be beneficial for women with certain reproductive health issues.
Who it's for
This supplement is often used by women, particularly those dealing with polycystic ovary syndrome or insulin-related conditions.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About shatavari
Shatavari is an herbal supplement often used to support women's health and overall well-being.
What it treats
- supports reproductive health
- helps with menstrual issues
- promotes lactation
- may improve digestion
How it works
Shatavari is believed to have adaptogenic properties, which means it may help the body cope with stress and balance hormones.
Who it's for
Shatavari is commonly used by women, especially those looking to enhance reproductive health or manage menstrual discomfort.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: cholecalciferol
BNF-referencedCholecalciferol, also known as vitamin D3, is a fat-soluble vitamin essential for maintaining normal serum calcium and phosphorus levels. It is naturally synthesized in the skin upon exposure to sunlight and can also be obtained from certain dietary sources. Cholecalciferol is crucial for bone health, as it aids in the absorption of calcium and phosphorus from the gut and supports bone mineralization. Deficiency in vitamin D can lead to conditions such as rickets in children and osteomalacia in adults, characterized by weakened bones and skeletal deformities.
Indications
- Vitamin D deficiency
- Rickets
- Osteomalacia
- Osteoporosis
- Hypoparathyroidism
Dosage
Adults: The usual adult dose for vitamin D deficiency is 800 to 2000 IU daily, depending on the severity of deficiency and clinical condition. Higher doses may be used under medical supervision.
Mechanism of action
Cholecalciferol is converted to its active forms, 25-hydroxyvitamin D in the liver and 1,25-dihydroxyvitamin D in the kidneys. These metabolites enhance the intestinal absorption of calcium and phosphorus, increase serum calcium levels, and mobilize these minerals from bone. This process is regulated by parathyroid hormone, which influences calcium and phosphate metabolism, particularly in the kidneys.
Pharmacodynamics
The pharmacodynamics of cholecalciferol involve its conversion to active metabolites that play a significant role in calcium and phosphorus homeostasis. The metabolites facilitate intestinal absorption of these minerals, promote bone mineralization, and influence renal reabsorption. The onset of action occurs within 10 to 24 hours following administration, as metabolic activation is required for its biological effects.
Pharmacokinetics
Cholecalciferol is absorbed in the gastrointestinal tract, and its absorption is enhanced by the presence of dietary fats. It is transported in the bloodstream bound to vitamin D-binding protein. Once in the liver, it undergoes hydroxylation to form 25-hydroxyvitamin D, which is further converted in the kidneys to the active form, 1,25-dihydroxyvitamin D. The elimination half-life of cholecalciferol varies, typically spanning several days, and it is primarily excreted in bile and urine.
Adverse effects
- Hypercalcemia
- Hypercalciuria
- Nausea
- Vomiting
- Constipation
- Weakness
- Fatigue
Interactions
- May enhance the effects of thiazide diuretics, leading to increased risk of hypercalcemia
- Anticonvulsants may increase metabolism of vitamin D, leading to reduced effectiveness
- Cholestyramine may reduce absorption of vitamin D
Precautions
- Monitor serum calcium levels in patients with renal impairment
- Caution in patients with a history of hypercalcemia or hyperparathyroidism
- Use with caution in patients taking other medications that affect calcium metabolism
Pregnancy
Cholecalciferol can be used during pregnancy if indicated, as vitamin D is essential for fetal bone development.
Breast-feeding
Cholecalciferol is excreted in breast milk, but is generally considered safe during breastfeeding.
Storage
Store in a cool, dry place, away from light. Keep out of reach of children.
Formulations
- Capsules
- Tablets
- Liquid 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: chromium
BNF-referencedChromium is an essential trace mineral that plays a critical role in carbohydrate, fat, and protein metabolism. It is particularly known for its involvement in enhancing insulin sensitivity and glucose metabolism. Chromium is often utilized as a dietary supplement for managing conditions related to insulin resistance, such as type 2 diabetes. It also contributes to the regulation of blood lipid levels, thereby playing a potential role in cardiovascular health.
Indications
- Type 2 diabetes mellitus
- Insulin resistance
- Impaired glucose tolerance
- Metabolic syndrome
- Hyperlipidemia
Dosage
Children: Refer to the BNF for Children for specific dosage recommendations suitable for pediatric patients.
Adults: Refer to the BNF for specific dosage recommendations based on the condition being treated.
Mechanism of action
Chromium enhances insulin signaling by upregulating insulin receptor-mediated pathways. It affects downstream effector molecules after insulin binds to its receptor, leading to the activation of phosphatidylinositol 2-kinase (PI3K) and protein kinase B (Akt). This process promotes the translocation of glucose transporter-4 (Glut4) to the cell membrane, facilitating increased glucose uptake. Additionally, chromium can promote GLUT-4 transporter translocation independently of insulin receptor activity under insulin-resistant conditions and aids in cholesterol efflux by increasing membrane fluidity.
Pharmacodynamics
Trivalent chromium is essential for the glucose tolerance factor, which activates insulin-mediated pathways. It enhances insulin binding to cells, increases the density of insulin receptors, and activates insulin receptor kinase, all of which contribute to improved insulin sensitivity. Chromium deficiency can lead to impaired glucose metabolism, and supplementation can normalize glucose tolerance in individuals exhibiting diabetic-like characteristics due to deficiency.
Pharmacokinetics
Chromium absorption occurs primarily in the intestines, but its bioavailability is influenced by various dietary factors, such as the presence of other minerals and vitamins. The mineral is transported in the bloodstream bound to transferrin and is predominantly stored in the liver, spleen, and bone. The elimination of chromium occurs mainly through urine, with small amounts excreted in feces. The half-life and exact metabolic pathways for chromium can vary based on its form and the individual's nutritional status.
Pregnancy
Chromium is generally considered safe during pregnancy when taken in appropriate amounts, but it is advisable to consult a healthcare provider.
Breast-feeding
Chromium is excreted in breast milk, and while it is deemed safe in moderate amounts, consultation with a healthcare provider is recommended.
Storage
Store in a cool, dry place away from light. Keep out of reach of children.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: inositol
BNF-referencedInositol is a sugar alcohol, specifically a six-carbon cyclic compound chemically classified as a hexitol. It plays a crucial role in cellular signaling and is involved in the structure of phosphoinositides, which are important for various cellular processes, including signal transduction, cell growth, and metabolism. Inositol is naturally found in various foods and is synthesized in the human body from glucose. It has been studied for its potential therapeutic effects in conditions such as polycystic ovary syndrome (PCOS), depression, and anxiety.
Indications
- Polycystic ovary syndrome (PCOS)
- Generalized anxiety disorder
- Depression
- Obsessive-compulsive disorder
- Insulin resistance
Dosage
Children: Refer to the BNF for Children for appropriate dosing guidelines for paediatric patients.
Adults: Refer to the BNF for specific dosing recommendations, as doses may vary based on the condition being treated.
Mechanism of action
Inositol functions primarily as a precursor for the synthesis of phosphoinositides, which are key components of cell membranes. These phosphoinositides are involved in various intracellular signaling pathways, particularly those mediated by G-protein coupled receptors. Inositol also influences the action of neurotransmitters such as serotonin and has been shown to enhance insulin sensitivity and glucose metabolism.
Pharmacodynamics
Inositol has been observed to have mood-stabilizing effects and may improve insulin sensitivity. Its role in cell signaling impacts various physiological processes, including cellular communication and metabolic regulation. The therapeutic effects of inositol in psychiatric conditions may be attributed to its ability to modulate neurotransmitter systems, particularly involving serotonin and dopamine.
Pharmacokinetics
Inositol is well-absorbed from the gastrointestinal tract, with peak plasma levels occurring within 1 to 2 hours after ingestion. It is distributed throughout the body and can cross the blood-brain barrier. Inositol is predominantly excreted in the urine, with a half-life that varies based on dosage and individual metabolism. Metabolism occurs primarily through dephosphorylation to form various inositol phosphates.
Pregnancy
Inositol is generally considered safe during pregnancy but should be used under medical supervision.
Breast-feeding
Inositol is likely safe during breastfeeding, but consult a healthcare provider for specific recommendations.
Storage
Store in a cool, dry place, away from direct sunlight. Keep out of reach of children.
Formulations
- Powder
- 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: lmethylfolate
BNF-referencedLevomefolate, also known as levomefolic acid, is the active metabolite of folic acid that plays a crucial role in one-carbon metabolism. It is essential for various biological processes, including DNA biosynthesis, amino acid metabolism, and neurotransmitter synthesis. This compound is particularly important for methylating homocysteine to methionine, thereby contributing to cardiovascular health and the formation of critical biomolecules like S-adenosylmethionine (SAMe). As the only form of folate that can effectively cross the blood-brain barrier, it is involved in the synthesis of monoamines, which are vital for normal brain function.
Indications
- Folate deficiency
- Hyperhomocysteinemia
- Supporting treatment in certain neurological disorders
- Prevention of neural tube defects during pregnancy
Dosage
Children: Refer to the BNF for Children for specific dosing recommendations.
Adults: Refer to the BNF for specific dosing recommendations.
Mechanism of action
Levomefolic acid acts as a methyl donor in the conversion of homocysteine to methionine, a reaction that is catalyzed by vitamin B12-dependent methionine synthase. This process is essential for reducing homocysteine levels and facilitating the production of S-adenosylmethionine (SAMe), which participates in various methylation reactions, including neurotransmitter synthesis.
Pharmacodynamics
Levomefolate serves as an active metabolite in one-carbon metabolism, regulating key cellular functions such as DNA synthesis, gene expression, and amino acid metabolism. By acting as a cofactor in the synthesis of neurotransmitters like dopamine, serotonin, and norepinephrine, it plays a vital role in maintaining mental health and cognitive function. Additionally, it contributes to red blood cell formation and myelin synthesis.
Pharmacokinetics
Levomefolate is absorbed efficiently from the gastrointestinal tract and is known to cross the blood-brain barrier, which is significant for its role in neurological functions. It is metabolized in the liver and excreted through urine. Its pharmacokinetic profile is influenced by individual variations in folate metabolism and transport pathways.
Pregnancy
Levomefolic acid is generally considered safe during pregnancy as it is a natural form of folate.
Breast-feeding
Levomefolic acid is compatible with breastfeeding, as it is a natural metabolite of folate.
Storage
Store in a cool, dry place away from direct sunlight.
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: myoinositol
BNF-referencedMyo-inositol is a naturally occurring carbohydrate and a form of inositol, which is a six-carbon cyclic sugar alcohol. It plays a crucial role in cellular processes, particularly in the formation of phosphoinositides that are involved in cell signaling pathways. Myo-inositol is commonly used as a dietary supplement and has garnered attention for its potential benefits in various health conditions, including polycystic ovary syndrome (PCOS) and metabolic disorders.
Indications
- Polycystic ovary syndrome (PCOS)
- Insulin resistance
- Metabolic syndrome
- Mood disorders
- Neurodegenerative diseases
Dosage
Children: Dosage for paediatric patients is not established; refer to BNF for Children for specific guidance.
Adults: The typical adult dose of myo-inositol is 2 to 4 grams daily, usually divided into two doses.
Mechanism of action
Myo-inositol functions primarily as a precursor in the biosynthesis of inositol phosphates, which are critical for cell signaling. It contributes to the synthesis of 1D-myo-inositol hexakisphosphate and other inositol phosphates, facilitating the regulation of cellular functions such as insulin signaling and lipid metabolism. Myo-inositol also plays a role in the modulation of neurotransmitter signaling, particularly in the central nervous system.
Pharmacodynamics
Myo-inositol has been shown to influence insulin sensitivity and may help in restoring ovarian function in women with PCOS. It acts as a second messenger in various hormonal signaling pathways, particularly those involving insulin and follicle-stimulating hormone (FSH). The drug's action can lead to improved ovarian response and metabolic profiles in affected individuals.
Pharmacokinetics
Myo-inositol is well-absorbed when administered orally, with a bioavailability that may vary based on the formulation. It is distributed throughout the body and has a half-life that supports multiple dosing regimens. Myo-inositol is eliminated primarily through renal excretion, and its metabolism is closely linked to the pathways of inositol phosphate metabolism.
Pregnancy
The safety of myoinositol during pregnancy has not been established. Consultation with a healthcare professional is advised.
Breast-feeding
Myoinositol is generally considered safe during breastfeeding, but it is recommended to consult a healthcare provider for personalized advice.
Storage
Store at room temperature, away from moisture and direct sunlight. Keep out of reach of children.
Formulations
- Powder
- Tablet
- Capsule
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: shatavari
Shatavari, also known as Asparagus racemosus, is a herb commonly used in Ayurvedic medicine. It is traditionally regarded as a female reproductive tonic, promoting fertility and supporting overall reproductive health. Shatavari is also known for its adaptogenic properties, helping the body adapt to stress and enhance vitality. It is rich in saponins, which contribute to its therapeutic effects.
Indications
- Infertility
- Menstrual irregularities
- Hormonal imbalances
- Stress management
- Digestive issues
- General health tonic
Dosage
Children: Refer to established guidelines or consult a healthcare professional for appropriate dosing.
Adults: Refer to established guidelines or consult a healthcare professional for appropriate dosing.
Mechanism of action
Shatavari is believed to exert its effects through various mechanisms, including modulation of hormonal balance, particularly estrogen, and enhancement of mucosal immunity. The saponins present in Shatavari may stimulate the production of mucus in the gastrointestinal tract, thereby providing a protective barrier and promoting digestive health. Additionally, it may possess antioxidant properties, contributing to its health benefits.
Pharmacodynamics
The pharmacodynamics of Shatavari involve its effects on the endocrine system, particularly in influencing reproductive hormones and supporting ovarian function. It is thought to enhance fertility by improving the health of the female reproductive system and may have a positive impact on menstrual cycle regulation. The adaptogenic effects help in reducing stress-related symptoms and promoting general well-being.
Pharmacokinetics
Limited pharmacokinetic data are available for Shatavari. However, it is known that its active constituents are absorbed in the gastrointestinal tract after oral administration. The bioavailability of these compounds may vary based on individual metabolism and the formulation used. The herb is typically considered safe for use in recommended doses, with a low potential for toxicity.
Pregnancy
Shatavari is traditionally considered safe during pregnancy and is often used in Ayurvedic medicine to support women's health, particularly during pregnancy. However, clinical evidence is limited, and it is advisable to consult a healthcare provider before use.
Breast-feeding
Shatavari is believed to promote lactation and is often used in Ayurvedic practices to support breastfeeding mothers. Nevertheless, safety in breastfeeding has not been well-established in clinical studies.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- Powder
- Capsules
- Liquid extract
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: cholecalciferol
PubChem CID 5280795Molecular formula: C27H44O
Mechanism of action
Most individuals naturally generate adequate amounts of vitamin D through ordinary dietary intake of vitamin D (in some foods like eggs, fish, and cheese) and natural photochemical conversion of the vitamin D3 precursor 7-dehydrocholesterol in the skin via exposure to sunlight. Conversely, vitamin D deficiency can often occur from a combination of insufficient exposure to sunlight, inadequate dietary intake of vitamin D, genetic defects with endogenous vitamin D receptor, or even severe liver or kidney disease. Such deficiency is known for resulting in conditions like rickets or osteomalacia, all of which reflect inadequate mineralization of bone, enhanced compensatory skeletal demineralization, resultant decreased calcium ion blood concentrations, and increases in the production and secretion of parathyroid hormone. Increases in parathyroid hormone stimulate the mobilization of skeletal calcium and the renal excretion of phosphorus. This enhanced mobilization of skeletal calcium leads towards porotic bone conditions. Ordinarily, while vitamin D3 is made naturally via photochemical processes in the skin, both itself and vitamin D2 can be found in various food and pharmaceutical sources as dietary supplements. The principal biological function of vitamin D is the maintenance of normal levels of serum calcium and phosphorus in the bloodstream by enhancing the efficacy of the small intestine to absorb these minerals from the diet. At the liver, vitamin D3 or D2 is hydroxylated to 25-hydroxyvitamin D and then finally to the primary active metabolite 1,25-dihydroxyvitamin D in the kidney via further hydroxylation. This final metabolite binds to endogenous vitamin d receptors, which results in a variety of regulatory roles - including maintaining calcium balance, the regulation of parathyroid hormone, the promotion of the renal reabsorption of calcium, increased intestinal absorption of calcium and phosphorus, and increased calcium and phosphorus mobilization of calcium and phosphorus from bone to plasma to maintain balanced levels of each in bone and the plasma. In particular, calcitriol interacts with vitamin D receptors in the small intestine to enhance the efficiency of intestinal calcium and phosphorous absorption from about 10-15% to 30-40% and 60% increased to 80%, respectively. Furthermore, calcitriol binds with vitamin D receptors in osteoblasts to stimulate a receptor activator of nuclear factor kB ligand (or RANKL) which subsequently interacts with receptor activator of nuclear factor kB (NFkB) on immature preosteoclasts, causing them to become mature bone-resorbing osteoclasts. Such mature osteoclasts ultimately function in removing calcium and phosphorus from bone to maintain blood calcium and phosphorus levels. Moreover, calcitriol also stimulates calcium reabsorption from the glomerular filtrate in the kidneys. Additionally, it is believed that when calcitriol binds with nuclear vitamin D receptors, that this bound complex itself binds to retinoic acid X receptor (RXR) to generate a heterodimeric complex that consequently binds to specific nucleotide sequences in the DNA called vitamin D response elements. When bound, various transcription factors attach to this complex, resulting in either up or down-regulation of the associated gene's activity. It is thought that there may be as much as 200 to 2000 genes that possess vitamin D response elements or that are influenced indirectly to control a multitude of genes across the genome. It is in this way that cholecalciferol is believed to function in regulating gene transcription associated with cancer risk, autoimmune disorders, and cardiovascular disease linked to vitamin D deficiency. In fact, there has been some research to suggest calcitriol may also be able to prevent malignancies by inducing cellular maturation and inducing apoptosis and inhibiting angiogenesis, exhibit anti-inflammatory effects by inhibiting foam cell formation and promoting angiogenesis in en
Pharmacodynamics
The in vivo synthesis of the predominant two biologically active metabolites of vitamin D occurs in two steps. The first hydroxylation of vitamin D3 cholecalciferol (or D2) occurs in the liver to yield 25-hydroxyvitamin D while the second hydroxylation happens in the kidneys to give 1, 25-dihydroxyvitamin D. These vitamin D metabolites subsequently facilitate the active absorption of calcium and phosphorus in the small intestine, serving to increase serum calcium and phosphate levels sufficiently to allow bone mineralization. Conversely, these vitamin D metabolites also assist in mobilizing calcium and phosphate from bone and likely increase the reabsorption of calcium and perhaps also of phosphate via the renal tubules. There exists a period of 10 to 24 hours between the administration of cholecalciferol and the initiation of its action in the body due to the necessity of synthesis of the active vitamin D metabolites in the liver and kidneys. It is parathyroid hormone that is responsible for the regulation of such metabolism at the level of the kidneys.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: chromium
PubChem CID 23976Molecular formula: Cr
Mechanism of action
Chromium is an essential nutrient involved in the metabolism of glucose, insulin and blood lipids. Its role in potentiating insulin signalling cascades has been implicated in several studies. Chromium upregulates insulin-stimulated insulin signal transduction via affecting effector molecules downstream of the insulin receptor (IR). IR-mediated signalling pathway involves phoshorylation of multiple intracellular domains and protein kinases, and downstream effector molecules. Upon activation by ligands, intracellular β-subunit of IR autophosphorylates and activates tyrosine kinase domain of the IR, followed by activation and phosphorylation of regulatory proteins and downstream signalling effectors including phosphatidylinositol 2-kinase (PI3K). PI3K activates further downstream reaction cascades to activate protein kinase B (Akt) to ultimately promote translocation of glucose transporter-4 (Glut4)-vesicles from the cytoplasm to the cell surface and regulate glucose uptake. Chromium enhances the kinase activity of insulin receptor β and increases the activity of downstream effectors, pI3-kinase and Akt. Under insulin-resistant conditions, chromium also promotes GLUT-4 transporter translocation that is independent of activity of IR, IRS-1, PI3-kinase, or Akt; chromium mediates cholesterol efflux from the membranes via increasing fluidity of the membrane by decreasing the membrane cholesterol and upregulation of sterol regulatory element-binding protein. As a result, intracellular GLUT-4 transporters are stimulated to translocate from intracellular to the plasma membrane, leading to enhanced glucose uptake in muscle cells. Chromium attenuates the activity of PTP-1B _in vitro,_ which is a negative regulator of insulin signaling. It also alleviates ER stress that is observed to be elevated the suppression of insulin signaling. ER stress is thought to activate c-Jun N-terminal kinase (JNK), which subsequently induces serine phosphorylation of IRS and aberration of insulin signalling. Transient upregulation of AMPK by chromium also leads to increased glucose uptake. While the toxicity of metals and metalloids, like arsenic, cadmium, mercury, lead and chromium, is undisputed, the underlying molecular mechanisms are not entirely clear. General consensus holds that proteins are the prime targets; heavy metals interfere with the physiological activity of specific, particularly susceptible proteins, either by forming a complex with functional side chain groups or by displacing essential metal ions in metalloproteins. Recent studies have revealed an additional mode of metal action targeted at proteins in a non-native state; certain heavy metals and metalloids have been found to inhibit the in vitro refolding of chemically denatured proteins, to interfere with protein folding in vivo and to cause aggregation of nascent proteins in living cells. Apparently, unfolded proteins with motile backbone and side chains are considerably more prone to engage in stable, pluridentate metal complexes than native proteins with their well-defined 3D structure. By interfering with the folding process, heavy metal ions and metalloids profoundly affect protein homeostasis and cell viability. This review describes how heavy metals impede protein folding and promote protein aggregation, how cells regulate quality control systems to protect themselves from metal toxicity and how metals might contribute to protein misfolding disorders.
Pharmacodynamics
Trivalent chromium is part of glucose tolerance factor, an essential activator of insulin-mediated reactions. Chromium helps to maintain normal glucose metabolism and peripheral nerve function. Chromium increases insulin binding to cells, increases insulin receptor density and activates insulin receptor kinase leading to enhanced insulin sensitivity. In chromium deficiency, intravenous administration of chromium resulted in normalization of the glucose tolerance curve from the diabetic-like curve typical of chromium deficiency.
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: inositol
PubChem CID 892Molecular formula: C6H12O6
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: l-methylfolate
PubChem CID 135398561Molecular formula: C20H25N7O6
Mechanism of action
Levomefolic acid plays a critical role in methylating homocysteines into methionine by acting as a methyl donor in a reaction catalyzed by vitamine B12-dependent methionine synthase. Homocysteine must either be further metabolized via transulfuration to become cysteine, taurine, and glutathione via a B6-dependent process, or re-methylated to become methionine again. Methionine formed from remethylation of homocysteine by levomefolic acid forms the downstream metabolite S-adenosylmethionine (SAMe), which is involved in numerous biochemical methyl donation reactions, including reactions forming monoamine neurotransmitters. Studies suggest that high plasma levels of homocysteine is associated with increased incidences of arterial plaque formation.
Pharmacodynamics
Levomefolic acid is an active metabolite of folic acid and a methyl group donor in one-carbon metabolism reactions. It regulates important cellular functions such as DNA biosynthesis, gene expression regulation, amino acid synthesis and metabolism, and myelin synthesis and repair. As a only form of folate that can cross the blood-brain barrier, it acts as a cofactor in the production of monoamine neurotransmitters such as dopamine, serotonin and norepinephrine. Levomefolic acid is also involved in red blood cell formation.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: myo-inositol
PubChem CID 892Molecular formula: C6H12O6
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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