NMDA受体
突触可塑性
伊芬普地尔
突触后电位
神经科学
突触后密度
谷氨酸受体
伤害
化学
神经传递
痛觉超敏
痛觉过敏
药理学
细胞生物学
生物
受体
生物化学
作者
Shuai Li,Jing Cao,Xian Yang,Zhan‐Wei Suo,Lei Shi,Yan‐Ni Liu,Hongbin Yang,Xiao‐Dong Hu
摘要
Abstract Calcium influx via N‐methyl‐D‐aspartate (NMDA)‐subtype glutamate receptors (NMDARs) regulates the intracellular trafficking of NMDARs, leading to long‐lasting modification of NMDAR‐mediated synaptic transmission that is involved in development, learning, and synaptic plasticity. The present study investigated the contribution of such NMDAR‐dependent synaptic trafficking in spinal dorsal horn to the induction of pain hypersensitivity. Our data showed that direct activation of NMDARs by intrathecal NMDA application elicited pronounced mechanical allodynia in intact mice, which was concurrent with a specific increase in the abundance of NMDAR subunits NR1 and NR2B at the postsynaptic density (PSD)‐enriched fraction. Selective inhibition of NR2B‐containing NMDARs (NR2BR) by ifenprodil dose dependently attenuated the mechanical allodynia in NMDA‐injected mice, suggesting the importance of NR2BR synaptic accumulation in NMDA‐induced pain sensitization. The NR2BR redistribution at synapses after NMDA challenge was associated with a significant increase in NR2B phosphorylation at Tyr1472, a catalytic site by Src family protein tyrosine kinases (SFKs) that has been shown to prevent NR2B endocytosis. Intrathecal injection of a specific SFKs inhibitor, PP2, to block NR2B tyrosine phosphorylation eliminated NMDA‐induced NR2BR synaptic expression and also attenuated the mechanical allodynia. These data suggested that activation of spinal NMDARs was able to accumulate NR2BR at synapses via SFK signaling, which might exaggerate NMDAR‐dependent nociceptive transmission and contribute to NMDA‐induced nociceptive behavioral hyperresponsiveness. © 2011 Wiley‐Liss, Inc.
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