Medullary monoamines and NMDA-receptor regulation of cardiovascular responses during peripheral nociceptive stimuli

Gudbjorn A Karlsson1, Charles V Preuss, Kevin A Chaitoff

  • 1Department of Pharmaceutical Sciences, Lloyd L. Gregory School of Pharmacy, Palm Beach Atlantic University, West Palm Beach, FL 33416, and Emergency Department, Inland Hospital, Waterville, ME 04910, USA.

Insights

NMDA-receptor blockade in the rostral ventrolateral medulla modulates cardiovascular responses and serotonin/dopamine release during mechanical pain, but not thermal pain, in rats.

Area of Science:

  • Neuroscience
  • Cardiovascular Physiology
  • Pain Research

Background:

  • Previous research indicated AMPA-receptor blockade in the RVLM affects cardiovascular responses to mechanical stimuli.
  • The role of NMDA-receptors in the RVLM during nociception remains less understood.

Purpose of the Study:

  • To investigate the effect of NMDA-receptor blockade in the RVLM on cardiovascular responses and biogenic amine release during mechanical and thermal nociception.
  • To elucidate the central integrative mechanisms of NMDA-receptors in the RVLM during noxious stimuli.

Main Methods:

  • Anesthetized Sprague-Dawley rats were subjected to mechanical (paw pinch) and thermal (hot water bath) noxious stimuli.
  • NMDA-receptor antagonist AP-7 was administered into the RVLM.
  • Cardiovascular parameters (MAP, HR) and extracellular monoamine levels (5HT, DA, NE) were measured.

Main Results:

  • Mechanical stimulation increased MAP, HR, and extracellular 5HT and DA, while decreasing NE.
  • NMDA-receptor blockade attenuated cardiovascular and 5HT/DA changes during mechanical stimuli but not NE.
  • Thermal stimulation increased MAP and HR, but did not alter 5HT or DA; NE decreased.
  • NMDA-receptor blockade had no effect on cardiovascular or monoamine changes during thermal stimuli.

Conclusions:

  • NMDA receptors in the RVLM are involved in modulating cardiovascular responses via serotonin and dopamine during mechanical nociception.
  • NMDA-receptor-mediated mechanisms in the RVLM differ between mechanical and thermal noxious stimuli.
  • This study highlights NMDA-receptor roles in central processing of peripheral noxious sensory input within the RVLM.

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