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glycolic acid/seizures

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Evaluation of sodium valproate loaded nanoparticles in acute and chronic pentylenetetrazole induced seizure models.

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Efficacy of sodium valproate in epilepsy is limited by its poor blood brain barrier penetration and side effects. Nanoparticles may offer a better drug delivery system to overcome these limitations. This study evaluated the efficacy of sodium valproate encapsulated in nanoparticles in

Neuroprotective role of chrysin-loaded poly(lactic-co-glycolic acid) nanoparticle against kindling-induced epilepsy through Nrf2/ARE/HO-1 pathway

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Chrysin is the major bioactive compound of blue passionflower, an important medicinal plant used in traditional herbal formulations since ancient times. In the present study, we report that chrysin nanoparticles (chrysin NPs) protect Wistar rats against kindling-induced epilepsy. Nanoparticles of

Ethylene glycol: an estimate of tolerable levels of exposure based on a review of animal and human data.

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Upon ingestion ethylene glycol (EG, monoethylene glycol) is rapidly absorbed from the gastrointestinal tract, and depending on the severity of exposure signs of toxicity may progress through three stages. Neurological effects characterize the first step consisting of central nervous depression

Advanced fabrication approaches to controlled delivery systems for epilepsy treatment.

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BACKGROUND Epilepsy is a chronic brain disease characterized by unprovoked seizures, which can have severe consequences including loss of awareness and death. Currently, 30% of epileptic patients do not receive adequate seizure alleviation from oral routes of medication. Over the last decade, local

Ethylene glycol action on neurons and its cholinomimetic effects.

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Ethylene glycol (EG) is the most representative of the glycols. It is a compound used as painting and plastic solvent, as antifreeze, and in dyes and synthetic fibers. It may also appear as a wine pollutant. Due to these various uses and conditions, EG can produce intoxication in men and animals.

Ethylene glycol toxicosis in a pygmy goat.

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Ingestion of ethylene glycol was responsible for severe azotemia, acidosis, and abnormal anionic gap value in a pygmy goat. Clinical signs consisted of ataxia, polydipsia, decreased rumen motility, and constipation. Nervous signs included depression, absence of menace response, vertical nystagmus,
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