valproic brands
15 registered brands containing valproic in Kenya.
valproic
PubChem CID 3121Molecular formula: C8H16O2
The exact mechanisms by which valproate exerts it's effects on epilepsy, migraine headaches, and bipolar disorder are unknown however several pathways exist which may contribute to the drug's action. Valproate is known to inhibit succinic semialdehyde dehydrogenase. This inhibition results in an increase in succinic semialdehyde which acts as an inhibitor of GABA transaminase ultimately reducing GABA metabolism and increasing GABAergic neurotransmission. As GABA is an inhibitory neurotransmitter, this increase results in increased inhibitory activity. A possible secondary contributor to cortical inhibition is a direct suppression of voltage gated sodium channel activity and indirect suppression through effects on GABA. It has also been suggested that valproate impacts the extracellular signal-related kinase pathway (ERK). These effects appear to be dependent on mitogen-activated protein kinase (MEK) and result in the phosphorylation of ERK1/2. This activation increases expression of several downstream targets including ELK-1 with subsequent increases in c-fos, growth cone-associated protein-43 which contributes to neural plasticity, B-cell lymphoma/leukaemia-2 which is an anti-apoptotic protein, and brain-derived neurotrophic factor (BDNF) which is also involved in neural plasticity and growth. Increased neurogenesis and neurite growth due to valproate are attributed to the effects of this pathway. An additional downstream effect of increased BDNF expression appears to be an increase in GABA<sub>A</sub> receptors which contribute further to increased GABAergic activity. Valproate exerts a non-competitive indirect inhibitory effect on myo-inosital-1-phophate synthetase. This results in reduced de novo synthesis of inositol monophosphatase and subsequent inositol depletion. It is unknown how this contributed to valproate's effects on bipolar disorder but [lithium] is known to exert a similar inositol-depleting effect. Valproate exposure also appears to produce down-regulation of protein kinase C proteins (PKC)-α and -ε which are potentially related to bipolar disorder as PKC is unregulated in the frontal cortex of bipolar patients. This is further supported by a similar reduction in PKC with lithium. The inhibition of the PKC pathway may also be a contributor to migraine prophylaxis. Myristoylated alanine-rich C kinase substrate, a PKC substrate, is also downregulated by valproate and may contribute to changes in synaptic remodeling through effects on the cytoskeleton. Valproate also appears to impact fatty acid metabolism. Less incorporation of fatty acid substrates in sterols and glycerolipids is thought to impact membrane fluidity and result in increased action potential threshold potentially contributing to valproate's antiepileptic action. Valproate has been found to be a non-competitive direct inhibitor of brain microsomal long-chain fatty acyl-CoA synthetase. Inhibition of this enzyme decreases available arichidonyl-CoA, a substrate in the production of inflammatory prostaglandins. It is thought that this may be a mechanism behind valproate's efficacy in migraine prophylaxis as migraines are routinely treated with non-steroidal anti-inflammatory drugs which also inhibit prostaglandin production. Finally, valproate acts as a direct histone deactylase (HDAC) inhibitor. Hyperacetylation of lysine residues on histones promoted DNA relaxation and allows for increased gene transcription. The scope of valproate's genomic effects is wide with 461 genes being up or down-regulated. The relation of these genomic effects to therapeutic value is not fully characterized however H3 and H4 hyperacetylation correlates with improvement of symptoms in bipolar patients. Histone hyperacetylation at the BDNF gene, increasing BDNF expression, post-seizure is known to occur and is thought to be a neuroprotective mechanism which valproate may strengthen or prolong. H3 hyperacetylation is associated with a reduction in glyceraldehyde-3-phosph
Source: PubChem (NCBI) · compound 3121
| Product | Manufacturer | Status | Country |
|---|---|---|---|
| BRAIPORIN 300MG TABLETS 300MG |
Unisel | Registered | Kenya |
| BRAIPORIN 500MG TABLETS SODIUM VALPROATE BP…..333MG VALPROIC ACID BP…………145MG |
Unisel | Registered | Kenya |
| ENCORATE CHRONO 300 TABLETS SODIUM VALPROATE 200 MG VALPROIC ACID 87 MG BOTH TOGETHER CORRESPONDS TO SODIUM VALPROATE 300 MG |
Sun Pharma | Registered | Kenya |
| ENCORATE CHRONO 500 TABLETS SODIUM VALPROATE 333 MG VALPROIC ACID 145 MG BOTH TOGETHER CORRESPONDS TO SODIUM VALPROATE 500 MG |
Sun Pharma | Registered | Kenya |
| EPILIM CHRONO 300MG TABLET 300MG |
Ressourcethica | Registered | Kenya |
| EPILIM CHRONO 300MG TABLET 300MG |
Ressourcethica | Registered | Kenya |
| EPILIM CHRONO 500MG TABLET 500MG |
Ressourcethica | Registered | Kenya |
| EPILIM CHRONO 500MG TABLET 500MG |
Ressourcethica | Registered | Kenya |
| VALCIP CR 500 SODIUM VALPROATE 333MG VALPROIC ACID 145MG |
Lords Healthcare | Registered | Kenya |
| VALCONTIN 200 TABLETS EACH FILM COATED TABLET CONTAINS: SODIUM VALPROATE BP 133.5 MG VALPROIC ACID USP : 58.0 MG (BOTH TOGETHER CORRESPOND TO SODIUM VALPROATE 200 MG) (IN A CONTROLLED RELEASE SYSTEM) |
Europa Healthcare | Registered | Kenya |
| VALCONTIN 500 TABLETS EACH FILM COATED TABLET CONTAINS: SODIUM VALPROATE BP : 333.0MG VALPROIC ACID USP: 145.0MG (BOTH TOGETHER CORRESPOND TO SODIUM VALPROATE 500MG) (IN A CONTROLLED RELEASE SYSTEM) |
Europa Healthcare | Registered | Kenya |
| VALPARIN CHRONO 300 300 MG + 87 MG |
Medox Pharmaceuticals | Registered | Kenya |
| VALPARIN CHRONO 500 300 MG + 145 MG |
Medox Pharmaceuticals | Registered | Kenya |
| VALPORAL 200 CR 133.5MG + 58MG |
Zawadi Healthcare | Registered | Kenya |
| VALTEC CR-300 TABLETS SODIUM VALPROATE BP 200 MG & VALPROIC ACID USP 87 MG (BOTH TOGETHER CORRESPOND TO SODIUM VALPROATE 300 MG) |
Imperial Managed Solutions | Registered | Kenya |