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Implantation of Combined Telemetric ECG and Blood Pressure Transmitters to Determine Spontaneous Baroreflex Sensitivity in Conscious Mice
Published on: February 14, 2021
Increased cerebral activity suppresses baroreflex control of heart rate in freely moving mice
1Department of Sports Medical Sciences, Shinshu University Graduate School of Medicine, 3-1-1 Asahi Matsumoto 390-8621, Japan.
Insights
Increased brain activity suppresses the baroreflex, which controls heart rate. This suppression occurs before mice begin voluntary movement, potentially contributing to a rapid rise in blood pressure.
Area of Science:
- Neuroscience
- Cardiovascular Physiology
- Autonomic Nervous System Regulation
Background:
- The baroreflex is crucial for regulating heart rate (HR) and mean arterial pressure (MAP).
- The relationship between cerebral activity and baroreflex control during voluntary movement initiation is not well understood.
Purpose of the Study:
- To investigate if increased cerebral activity suppresses baroreflex control of HR.
- To determine if this suppression precedes the onset of locomotion in mice.
Main Methods:
- Measurements of MAP, cerebral blood flow (CBF) in the motor cortex, and electroencephalogram (EEG) in freely moving mice.
- Analysis of the cross-correlation function between HR and MAP to assess baroreflex sensitivity (R(t)).
- Correlation of EEG theta/delta ratio (index of cerebral activity) with CBF and baroreflex sensitivity.
Main Results:
- Increased cerebral activity (higher theta/delta ratio) was positively correlated with CBF and suppressed baroreflex sensitivity (lower R(t) and HR/MAP).
- Baroreflex sensitivity significantly decreased as cerebral activity increased.
- Locomotion onset was preceded by increases in cerebral activity and suppressed baroreflex sensitivity, followed by a rapid MAP increase.
Conclusions:
- Increased cerebral activity suppresses baroreflex control of heart rate.
- This suppression may play a role in the initiation of voluntary locomotion and associated rapid increases in mean arterial pressure.
Abstract:
We assessed whether increased cerebral activity suppressed baroreflex control of heart rate (HR) and, if so, whether this occurred prior to the onset of locomotion in daily activity of mice. We measured mean arterial pressure (MAP, arterial catheter), cerebral blood flow in the motor cortex (CBF, laser-Doppler flowmetry), and electroencephalogram in free-moving mice (n = 8) during 12 daytime hours. The contribution of baroreflex control of HR to MAP regulation was determined during a total resting period for approximately 8 h from the cross-correlation function (R(t)) between spontaneous changes in HR (HR) and MAP (MAP) every 4 s and the sensitivity was determined from HR/MAP where R(t) was significant (P < 0.05). The power density ratio of theta to delta wave band in electroencephalogram (theta/delta), determined every 4 s as an index of cerebral activity, was positively correlated with CBF during 73 +/- 3% of the total resting period (P < 0.05) and with R(t) during 59 +/- 2% (P < 0.05). When each measurement during the resting period was divided into seven bins according to the level of theta/delta, CBF was 91 +/- 2% in the lowest bin and 118 +/- 3% in the highest bin (P < 0.001), R(t) was 0.69 +/- 0.06 and 0.27 +/- 0.04 (P < 0.001) and HR/MAP (beats min(1) mmHg(1)) was 12.4 +/- 0.9 and 7.5 +/- 0.9 (P < 0.001), respectively, with significant correlations with theta/delta (all P < 0.002). Moreover, mice started to move in approximately 30 sec after the sequential increases of theta/delta and R(t), mice started to move at 5 times higher probability than after a given time, followed by a rapid increase in MAP by approximately 10 mmHg. These results suggest that increased cerebral activity suppresses baroreflex control of HR and this might be related to the start of voluntary locomotion with a rapid increase in MAP.
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