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Windup in dorsal horn neurons is modulated by endogenous spinal mu-opioid mechanisms
Yun Guan1, Jasenka Borzan, Richard A Meyer
1Department ofAnesthesiology and Critical Care Medicine, Johns Hopkins University, School of Medicine, Baltimore, Maryland 21205, USA.
Abstract:
The mu-opioid receptor (MOR) plays a critical role in morphine analgesia and nociceptive transmission. However, the physiological roles for endogenous MOR mechanisms in modulating spinal nociceptive transmission, and particularly in the enhanced excitability of spinal nociceptive neurons after repeated noxious inputs, are less well understood. Using a MOR gene knock-out (-/-) approach and an MOR-preferring antagonist, we investigated the roles of endogenous MOR mechanisms in processing of acute noxious input and in neuronal sensitization during windup-inducing stimuli in wide dynamic range (WDR) neurons. Extracellular single-unit activity of WDR neurons was recorded in isoflurane-anesthetized MOR(-/-) and wild-type C57BL/6 mice. There were no significant differences between the genotypes in the responses of deep WDR cells to acute mechanical stimuli, graded electrical stimuli, and noxious chemical stimuli applied to the receptive field. Intracutaneous electrical stimulation at 1.0 Hz produced similar levels of windup in both genotypes. In contrast, 0.2 Hz stimulation induced significantly higher levels of windup in MOR(-/-) mice compared with the wild-type group. In wild-type mice, spinal superfusion with naloxone hydrochloride (10 mM, 30 microl) significantly enhanced windup to 0.2 Hz stimulation in both deep and superficial WDR cells. A trend toward facilitation of windup was also observed during 1.0 Hz stimulation after naloxone treatment. These results suggest that endogenous MOR mechanisms are not essential in the processing of acute noxious mechanical and electrical stimuli by WDR neurons. However, MORs may play an important role in endogenous inhibitory mechanisms that regulate the development of spinal neuronal sensitization.
Insights
Endogenous mu-opioid receptor (MOR) mechanisms do not affect acute pain processing but are crucial for inhibiting spinal neuronal sensitization during repeated noxious stimuli.
Area of Science:
- Neuroscience
- Pain Research
- Pharmacology
Background:
- The mu-opioid receptor (MOR) is vital for morphine's pain relief and transmitting pain signals.
- The specific roles of endogenous MORs in spinal nociception and neuronal sensitization after repeated pain are not fully understood.
Purpose of the Study:
- To investigate the role of endogenous MOR mechanisms in processing acute noxious stimuli.
- To determine the involvement of MORs in spinal neuronal sensitization during windup-inducing stimuli in wide dynamic range (WDR) neurons.
Main Methods:
- Utilized MOR gene knockout mice and an MOR-preferring antagonist.
- Recorded extracellular single-unit activity of WDR neurons in anesthetized mice.
- Administered acute mechanical, electrical, and chemical stimuli, and assessed windup responses.
Main Results:
- No significant differences in responses to acute stimuli between MOR knockout and wild-type mice.
- MOR knockout mice showed significantly higher windup at 0.2 Hz stimulation compared to wild-type.
- Blocking MORs with naloxone in wild-type mice enhanced windup at 0.2 Hz stimulation.
Conclusions:
- Endogenous MOR mechanisms are not essential for processing acute noxious stimuli by WDR neurons.
- MORs play a significant role in endogenous inhibitory pathways that regulate spinal neuronal sensitization.
- MORs are important in modulating the development of central sensitization during repetitive painful inputs.
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