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首页> 外文期刊>Evidence-based complementary and alternative medicine: eCAM >On the G-Protein-Coupled Receptor Heteromers and Their Allosteric Receptor-Receptor Interactions in the Central Nervous System: Focus on Their Role in Pain Modulation
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On the G-Protein-Coupled Receptor Heteromers and Their Allosteric Receptor-Receptor Interactions in the Central Nervous System: Focus on Their Role in Pain Modulation

机译:在中枢神经系统中的G蛋白偶联的受体异构体及其变构受体-受体相互作用:专注于其在疼痛调节中的作用。

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摘要

The modulatory role of allosteric receptor-receptor interactions in the pain pathways of the Central Nervous System and the peripheral nociceptors has become of increasing interest. As integrators of nociceptive and antinociceptive wiring and volume transmission signals, with a major role for the opioid receptor heteromers, they likely have an important role in the pain circuits and may be involved in acupuncture. The delta opioid receptor (DOR) exerts an antagonistic allosteric influence on the mu opioid receptor (MOR) function in a MOR-DOR heteromer. This heteromer contributes to morphine-induced tolerance and dependence, since it becomes abundant and develops a reduced G-protein-coupling with reduced signaling mainly operating via beta-arrestin2 upon chronic morphine treatment. A DOR antagonist causes a return of the Gi/o binding and coupling to the heteromer and the biological actions of morphine. The gender- and ovarian steroid-dependent recruitment of spinal cord MOR/kappa opioid receptor (KOR) heterodimers enhances antinociceptive functions and if impaired could contribute to chronic pain states in women. MOR1D heterodimerizes with gastrin-releasing peptide receptor (GRPR) in the spinal cord, mediating morphine induced itch. Other mechanism for the antinociceptive actions of acupuncture along meridians maybe that it enhances the cross-desensitization of the TRPA1 (chemical nociceptor)-TRPV1 (capsaicin receptor) heteromeric channel complexes within the nociceptor terminals located along these meridians. Selective ionotropic cannabinoids may also produce cross-desensitization of the TRPA1-TRPV1 heteromeric nociceptor channels by being negative allosteric modulators of these channels leading to antinociception and antihyperalgesia.
机译:变构受体-受体相互作用在中枢神经系统和周围伤害感受器的疼痛途径中的调节作用已引起越来越多的关注。作为伤害性和镇痛性布线以及体积传输信号的整合者,它们对阿片受体异源体起主要作用,因此它们可能在疼痛回路中起重要作用,并可能参与针灸。 δ阿片受体(DOR)对MOR-DOR异聚体中的mu阿片受体(MOR)功能产生拮抗变构影响。该异聚体有助于吗啡诱导的耐受性和依赖性,因为它变得丰富并在慢性吗啡治疗后主要通过β-arrestin2产生减少的G蛋白偶联和减少的信号传导。 DOR拮抗剂会导致Gi / o结合和偶合异构体的生物作用恢复Gi / o结合。性别和卵巢类固醇依赖性脊髓脊髓MOR /κ阿片受体(KOR)异二聚体的募集会增强抗伤害感受功能,如果受损,则可能导致女性出现慢性疼痛状态。 MOR1D与脊髓中胃泌素释放肽受体(GRPR)异源二聚体,介导吗啡诱导的瘙痒。沿经络针刺的抗伤害感受作用的其他机制可能是,它增强了沿这些经络的伤害感受器末端内TRPA1(化学伤害感受器)-TRPV1(辣椒素受体)异聚通道复合物的交叉脱敏作用。选择性离子型大麻素也可能是TRPA1-TRPV1异源伤害感受器通道的交叉脱敏剂,因为它们是导致负伤害感受和抗痛觉过敏的负性变构调节剂。

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