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Updated: Jul 19, 2026

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Published on: January 19, 2020
Autonomic cardiovascular responses to heme oxygenase inhibition in conscious rats
Haruhisa Hirakawa1, Yoshiaki Hayashida
1Department of Physiology, National Defense Medical College, Saitama, Japan.
Insights
Inhibition of heme oxygenase (HO) activity, which produces carbon monoxide (CO), increases blood pressure by activating the sympathetic nervous system. This highlights the CO/HO system's role in regulating cardiovascular function.
Area of Science:
- Cardiovascular Physiology
- Neuroendocrinology
- Autonomic Nervous System Regulation
Background:
- Carbon monoxide (CO) is a byproduct of heme degradation by heme oxygenase (HO).
- HO activity and CO production occur in the central nervous system.
- Previous research suggests HO inhibition elevates arterial pressure via autonomic pathways.
Purpose of the Study:
- To investigate the autonomic regulation of cardiovascular responses following inhibition of endogenous CO production.
- To examine the effects of the HO inhibitor Zinc deuteroporphyrin 2, 4-bis glycol (ZnDPBG) on sympathetic nerve activity and arterial pressure.
Main Methods:
- Direct sympathetic nerve recordings in conscious, chronically instrumented rats.
- Administration of ZnDPBG to inhibit heme oxygenase (HO) activity.
- Experiments conducted in intact, atropine-treated, and sinoaortic denervated rats.
Main Results:
- ZnDPBG administration increased mean arterial pressure (MAP) and renal sympathetic nerve activity (RSNA) in intact and atropine-treated rats.
- In sinoaortic denervated rats, ZnDPBG increased MAP, heart rate, and RSNA.
- ZnDPBG altered the baroreflex curve for RSNA, indicating central sympathoexcitation.
Conclusions:
- Inhibition of HO activity in the central nervous system leads to sympathoexcitation and increased arterial pressure.
- The CO/HO system is crucial for cardiovascular regulation by modulating sympathetic tone.
Abstract:
Carbon monoxide (CO) is produced in the course of heme degradation from biliverdin by heme oxygenase (HO) in various tissues, including the central nervous system. Recent studies suggest the inhibition of HO activity increases arterial pressure mediated by the autonomic nervous system. The present study was designed to investigate the autonomic regulation of cardiovascular responses to inhibition of endogenous CO production by the HO inhibitor Zinc deuteroporphyrin 2, 4-bis glycol (ZnDPBG) by using direct sympathetic nerve recordings in conscious, chronically instrumented rats. ZnDPBG induced increases in mean arterial pressure (MAP) (P<0.05) and renal sympathetic nerve activity (RSNA) (P<0.05) but no significant change in heart rate (P>0.05) in intact rats. In atropine-treated rats, ZnDPBG also induced increases in MAP (P<0.05) and RSNA (P<0.05) but no change in heart rate (P>0.05). In sinoaortic denervated rats, ZnDPBG induced increases in MAP (P<0.05), heart rate (P<0.05), and RSNA (P<0.05). ZnDPBG shifted the baroreflex curve for RSNA upward and to the right, which was characterized by increases in the maximum and minimum response and midpoint pressure without altering the maximum gain. These results indicate that inhibition of HO activity within the central nervous system causes sympathoexcitation, resulting in an increase in arterial pressure. We conclude that the CO/HO system plays an important role in cardiovascular regulation by modulating sympathetic tone.
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