Tolbutamide attenuates diazoxide-induced aggravation of hypoxic cell injury

M Pissarek1, C Reichelt, G J Krauss

  • 1Department of Pharmacology, University of Leipzig, Härtelstrabe 16-18, D-04107 Leipzig, Germany.

Brain Research
|February 13, 1999
PubMed

Insights

Hypoxia depletes neuronal ATP and other nucleotides, potentially affecting KATP channels. Diazoxide worsens this depletion, while tolbutamide offers some protection, influencing cerebral hypoxia outcomes.

Area of Science:

  • Neuroscience
  • Biochemistry
  • Cellular Physiology

Background:

  • ATP-dependent potassium (KATP) channels regulate neuronal activity.
  • These channels open during hypoxia when intracellular ATP levels fall.
  • Nucleotide levels are crucial modulators of KATP channel function.

Purpose of the Study:

  • Investigate how hypoxia alters purine and pyrimidine nucleotide levels in the brain.
  • Examine the effects of KATP channel modulators (diazoxide and tolbutamide) on these nucleotide levels during hypoxia.
  • Determine the role of nucleotide alterations in KATP channel function during cerebral hypoxia.

Main Methods:

  • Neuronal slices from the parietal cortex were subjected to hypoxia (N2-CO2) or normoxia (O2-CO2).
  • Nucleotide levels (ATP, GTP, CTP, UTP, ADP, GDP, UDP) were measured using anion-exchange HPLC.
  • The effects of diazoxide (KATP activator) and tolbutamide (KATP antagonist) on nucleotide levels were assessed under hypoxic conditions.

Main Results:

  • Hypoxia significantly decreased triphosphate nucleotides (ATP, GTP, UTP, CTP) and increased diphosphate nucleotides (ADP, GDP, UDP).
  • Diazoxide (300 microM) exacerbated the decline in ATP, UTP, and CTP levels during hypoxia.
  • Tolbutamide (300 microM) antagonized the effects of diazoxide and prevented the hypoxia-induced increase in ADP.

Conclusions:

  • Hypoxia-induced changes in purine and pyrimidine nucleotide levels likely modulate KATP channel activity.
  • These nucleotide alterations may contribute to reversible and irreversible stages of cerebral hypoxic injury.
  • Decreased pyrimidine nucleotides during severe hypoxia could impact cell survival via protein and DNA synthesis.

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