Neonatal pyridoxine administration long lastingly accelerates cortical spreading depression in male rats, without

Kelly Rayanne Gondim-Silva1, Joselma M da-Silva1, Laís A V de Souza1

  • 1Department of Nutrition, Federal University of Pernambuco, Recife, Brazil.

Insights

High-dose pyridoxine in developing rats altered brain electrical activity, specifically increasing cortical spreading depression (CSD) propagation. This effect was dose-dependent and long-lasting, suggesting a potential prooxidant role in the developing brain.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Pharmacology

Background:

  • Pyridoxine (vitamin B6) is crucial for nervous system development.
  • High-dose pyridoxine has shown potential benefits for anxiety and epilepsy but also a proconvulsive risk.
  • Its effects on developing brain excitability, like cortical spreading depression (CSD), are not well understood.

Purpose of the Study:

  • To investigate the long-term effects of repeated pyridoxine administration on anxiety-like behavior and CSD in developing rats.
  • To determine if pyridoxine modulates brain excitability in a dose-dependent manner during early development.

Main Methods:

  • Wistar rat pups received daily oral gavage of pyridoxine hydrochloride (1, 5, or 10 mg/kg/day) from postnatal day 7 to 27.
  • Anxiety-like behavior was assessed using the elevated plus maze (EPM) on postnatal days 60-70.
  • Cortical spreading depression (CSD) was recorded on postnatal days 71-80.

Main Results:

  • Pyridoxine treatment significantly increased CSD propagation velocity and the amplitude of the negative direct-current (DC) shift.
  • Pyridoxine treatment decreased the duration of the CSD DC shift.
  • These observed effects on CSD were long-lasting and dose-dependent.
  • No significant effects of pyridoxine were observed on anxiety-like behavior in the EPM.

Conclusions:

  • Chronic early-life pyridoxine administration modulates CSD in the developing rat brain.
  • High-dose pyridoxine may act as a prooxidant agent in the developing brain, impacting electrical activity.
  • Further research is warranted to confirm the prooxidant hypothesis and its implications.

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