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Endomorphin-2 Decreases Excitatory Synaptic Transmission in the Spinal Ventral Horn of the Rat
Zhen-Yu Wu1, Ya-Cheng Lu1, Ban Feng1
1Department of Anatomy and K. K. Leung Brain Research Centre, The Fourth Military Medical UniversityXi'an, China.
Abstract:
Motor impairment is one of the serious side-effects of morphine, which is an exogenous agonist of the μ-opioid receptor (MOR) as well as a widely used analgesic drug in clinical practice for chronic pain treatment. Endomorphins (EMs, including EM-1 and EM-2), the most effective and specific endogenous agonists of the MOR, exert more potent analgesia in acute and neuropathic pain than other opiates, such as morphine. Although EMs had fewer side-effects comparing to other opiates, motor impairment was still one unwanted reaction which limited its clinical application. In order to prevent and treat the motor impairment, it is critical to reveal the neural mechanisms underlying such locomotion disorder. The purpose of the present study was to reveal the neural mechanisms underlying the effects of EM-2 on the activity of motoneurons in the spinal ventral horn. First, we examine the distribution of EM-2-immunoreactive (IR) primary afferent fibers and their synaptic connections with the motoneurons innervating the skeletal muscles of the lower limb revealed by sciatic nerve retrograde tracing. The results showed that EM-2-IR fibers and terminals were sparsely observed in lamina IX and they formed symmetric synaptic connections with the motoneurons within lamina IX of the spinal ventral horn. Then, whole-cell patch-clamp technique was used to observe the effects of EM-2 on the spontaneous excitatory postsynaptic current (sEPSC) of motoneurons in lamina IX. The results showed that EM-2 could decrease both the frequency and amplitude of the sEPSC of the motoneurons in lamina IX, which was reversed by the MOR antagonist CTOP. These results indicate that EM-2-IR fibers originated from primary afferent fibers form symmetric synaptic connections with motoneurons innervating skeletal muscles of the lower limbs in lamina IX of the spinal ventral horn and EM-2 might exert inhibitory effects on the activities of these motoneurons through both presynaptic and postsynaptic mechanisms.
Insights
Endomorphin-2 (EM-2) affects spinal cord motoneurons, potentially causing motor impairment. This study reveals EM-2
Area of Science:
- Neuroscience
- Pharmacology
- Spinal Cord Research
Background:
- Motor impairment is a significant side-effect of μ-opioid receptor (MOR) agonists like morphine and endomorphins (EMs).
- Endomorphins (EM-1, EM-2) are potent endogenous MOR agonists with analgesic properties but can cause motor impairment, limiting clinical use.
- Understanding the neural mechanisms of EM-induced motor impairment is crucial for developing safer analgesics.
Purpose of the Study:
- To elucidate the neural mechanisms underlying the effects of endomorphin-2 (EM-2) on spinal ventral horn motoneuron activity.
- To investigate the distribution and synaptic connections of EM-2-immunoreactive (IR) primary afferent fibers with lower limb motoneurons.
- To examine the direct effects of EM-2 on motoneuron excitability.
Main Methods:
- Sciatic nerve retrograde tracing to identify primary afferent fiber connections.
- Immunohistochemistry to visualize EM-2-IR fibers and terminals in the spinal cord.
- Whole-cell patch-clamp recordings to measure spontaneous excitatory postsynaptic currents (sEPSCs) in lamina IX motoneurons.
- Pharmacological manipulation using MOR antagonist CTOP.
Main Results:
- EM-2-IR fibers and terminals were found in lamina IX, forming symmetric synapses with motoneurons innervating lower limb muscles.
- EM-2 application significantly decreased both the frequency and amplitude of sEPSCs in lamina IX motoneurons.
- The inhibitory effects of EM-2 on sEPSCs were reversed by the MOR antagonist CTOP.
Conclusions:
- EM-2-IR primary afferent fibers synapse onto spinal motoneurons in lamina IX, suggesting a direct role in motor control.
- EM-2 exerts inhibitory effects on motoneuron activity via both presynaptic and postsynaptic mechanisms involving MOR activation.
- These findings provide insights into the neural basis of EM-2-induced motor impairment and potential therapeutic targets.

