Chen_2014_J.Biol.Chem_289_14321

Reference

Title : Differential regulation of primary afferent input to spinal cord by muscarinic receptor subtypes delineated using knockout mice - Chen_2014_J.Biol.Chem_289_14321
Author(s) : Chen SR , Chen H , Yuan WX , Wess J , Pan HL
Ref : Journal of Biological Chemistry , 289 :14321 , 2014
Abstract :

Stimulation of muscarinic acetylcholine receptors (mAChRs) inhibits nociceptive transmission at the spinal level. However, it is unclear how each mAChR subtype regulates excitatory synaptic input from primary afferents. Here we examined excitatory postsynaptic currents (EPSCs) of dorsal horn neurons evoked by dorsal root stimulation in spinal cord slices from wild-type and mAChR subtype knock-out (KO) mice. In wild-type mice, mAChR activation with oxotremorine-M decreased the amplitude of monosynaptic EPSCs in approximately 67% of neurons but increased it in approximately 10% of neurons. The inhibitory effect of oxotremorine-M was attenuated by the M2/M4 antagonist himbacine in the majority of neurons, and the remaining inhibition was abolished by group II/III metabotropic glutamate receptor (mGluR) antagonists in wild-type mice. In M2/M4 double-KO mice, oxotremorine-M inhibited monosynaptic EPSCs in significantly fewer neurons ( approximately 26%) and increased EPSCs in significantly more neurons (33%) compared with wild-type mice. Blocking group II/III mGluRs eliminated the inhibitory effect of oxotremorine-M in M2/M4 double-KO mice. In M2 single-KO and M4 single-KO mice, himbacine still significantly reduced the inhibitory effect of oxotremorine-M. However, the inhibitory and potentiating effects of oxotremorine-M on EPSCs in M3 single-KO and M1/M3 double-KO mice were similar to those in wild-type mice. In M5 single-KO mice, oxotremorine-M failed to potentiate evoked EPSCs, and its inhibitory effect was abolished by himbacine. These findings indicate that activation of presynaptic M2 and M4 subtypes reduces glutamate release from primary afferents. Activation of the M5 subtype either directly increases primary afferent input or inhibits it through indirectly stimulating group II/III mGluRs.

PubMedSearch : Chen_2014_J.Biol.Chem_289_14321
PubMedID: 24695732

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Citations formats

Chen SR, Chen H, Yuan WX, Wess J, Pan HL (2014)
Differential regulation of primary afferent input to spinal cord by muscarinic receptor subtypes delineated using knockout mice
Journal of Biological Chemistry 289 :14321

Chen SR, Chen H, Yuan WX, Wess J, Pan HL (2014)
Journal of Biological Chemistry 289 :14321