Mechanisms Contributing to the Generation of Mayer Waves

Michael G Z Ghali1,2,3,4,5,6, George Z Ghali1,7,8

  • 1Department of Neurological Surgery, Karolinska Institutet, Stockholm, Sweden.

Insights

Mayer waves, oscillations in blood pressure, may originate from brainstem and spinal cord neural circuits, not solely the baroreflex. These findings suggest a broader role in neuronal network function.

Area of Science:

  • Neuroscience
  • Cardiovascular Physiology
  • Autonomic Nervous System

Background:

  • Mayer waves are oscillations observed in hemodynamic variables, first described in 1876.
  • Their origin has been largely attributed to the baroreflex, influencing sympathetic and cardiac functions.
  • Previous research noted their presence in sympathetic neural discharge and related brainstem/spinal areas.

Purpose of the Study:

  • To evaluate and evolve the understanding of Mayer wave genesis.
  • To investigate the hypothesis that Mayer waves are primarily generated by central nervous system oscillators.
  • To explore the potential role of baroreflex modulation versus intrinsic neuronal oscillators.

Main Methods:

  • Analysis of existing literature and empirical data on Mayer waves.
  • Examination of spectral power in hemodynamic and neural discharge recordings.
  • Assessment of Mayer wave persistence following sinoaortic denervation, sympathectomy, and spinal cord transection in animal models.

Main Results:

  • Sinoaortic denervation and sympathectomy variably reduced Mayer wave spectral power, but did not abolish it.
  • Mayer waves persisted after barodeafferentation, supporting generation by brainstem and spinal cord propriobulbar/propriospinal oscillators.
  • Persistence after high cervical transection suggested a spinal cord origin for some Mayer wave generation.

Conclusions:

  • Mayer waves are likely chiefly generated by brainstem and spinal cord neural microcircuit oscillators, with baroreflex modulation.
  • These oscillations may represent an intrinsic property of neurons or an emergent property of neural-vascular interactions.
  • Further research into network mechanisms is encouraged, potentially informing new fields like quantum neurophysics.

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