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Brain region-specific studies of the excitatory behavioral effects of morphine-3-glucuronide
A J Halliday1, S E Bartlett, P Colditz
1School of Pharmacy, The University of Queensland, St Lucia, Brisbane, Australia.
Abstract:
This study was designed to determine in rats whether morphine-3-glucuronide (M3G) produces its neuro-excitatory effects most potently in the ventral hippocampus (as has been reported previously for subanalgesic doses of opioid peptides). Guide cannulae were implanted into one of seven regions of the rat brain: lateral ventricle; ventral, CA1 and CA2-CA3 regions of the hippocampus; amygdala; striatum or cortex. After a 7 day recovery period, rats received intracerebral injections of (i) M3G (1.1 or 11 nmol) (ii) DADLE ([D-Ala2,D-Leu5]enkephalin), (45 nmol, positive controls) or (iii) vehicle (deionised water), and behavioral excitation was quantified over 80 min. High-dose M3G (11 nmol) evoked behavioral excitation in all brain regions but the onset, severity and duration of these effects varied considerably among brain regions. By contrast, low-dose M3G (1.1 nmol) evoked excitatory behaviors only when administered into the ventral hippocampus and the amygdala, with the most potent effects being observed in the ventral hippocampus. Prior administration of the nonselective opioid antagonists, naloxone and beta-funaltrexamine into the ventral hippocampus, markedly attenuated low-dose M3G's excitatory effects but did not significantly alter levels of excitation evoked by high-dose M3G. Naloxone given 10 min after M3G (1.1 or 11 nmol) did not significantly attenuate behavioral excitation. Thus, M3G's excitatory behavioral effects occur most potently in the ventral hippocampus as reported previously for subanalgesic doses of opioid peptides, and appear to be mediated through at least two mechanisms, one possibly involving excitatory opioid receptors and the other, non-opioid receptors.
Insights
Morphine-3-glucuronide (M3G) causes neuro-excitation most potently in the ventral hippocampus. These effects involve opioid and non-opioid mechanisms, particularly at lower doses.
Area of Science:
- Neuroscience
- Pharmacology
- Behavioral Science
Background:
- Morphine-3-glucuronide (M3G) is a metabolite of morphine.
- Opioid peptides have shown neuro-excitatory effects in specific brain regions.
Purpose of the Study:
- To determine if M3G produces neuro-excitatory effects most potently in the ventral hippocampus in rats.
- To investigate the brain regions involved in M3G's neuro-excitatory effects.
- To explore the mechanisms underlying M3G's effects.
Main Methods:
- Intracerebral injections of M3G, DADLE, or vehicle into seven rat brain regions.
- Quantification of behavioral excitation over 80 minutes.
- Administration of opioid antagonists (naloxone, beta-funaltrexamine) to assess receptor involvement.
Main Results:
- High-dose M3G (11 nmol) caused excitation in all tested brain regions, with regional variations in onset, severity, and duration.
- Low-dose M3G (1.1 nmol) selectively induced excitatory behaviors in the ventral hippocampus and amygdala, with peak potency in the ventral hippocampus.
- Opioid antagonists attenuated low-dose M3G effects in the ventral hippocampus, but not high-dose effects.
Conclusions:
- M3G's neuro-excitatory behavioral effects are most potent in the ventral hippocampus.
- M3G's effects appear to be mediated by both opioid and non-opioid mechanisms.
- The ventral hippocampus plays a critical role in mediating M3G's potent excitatory effects.