基于内啡肽和胃泌素受体拮抗剂的新型嵌合肽可产生脊髓上部抗痛觉效应,并降低小鼠的急性耐受性。

Bing Wu, Songxia Cheng, Fuyan Liu, Jia Wei, Yongling Liu, Teng Qian, Jiali Ding, Biao Xu, Jie Wei
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引用次数: 0

摘要

人们普遍认为,与单靶点化合物相比,开发双靶点或多功能阿片类化合物可为疼痛治疗提供一种副作用较少的宝贵方法。在这项研究中,我们设计并鉴定了两种新型嵌合肽--EM-1-DLS 和 EM-2-DLS,它们结合了内啡肽(EMs)和胃泌素受体拮抗剂 [D-Lys3]-GHRP-6 (DLS)。功能测试表明,EM-1-DLS 和 EM-2-DLS 可作为κ-阿片受体(κ-OR)优先激动剂、弱μ-阿片受体(μ-OR)和胃泌素受体(GHSR)激动剂。小鼠脑室内注射(i.c.v.)EM-1-DLS和EM-2-DLS后,在尾巴抽出试验中均表现出剂量和时间依赖性的抗痛觉作用。其中,EM-1-DLS的抗痛觉效力最高,ED50约为EM-1的8倍,而EM-2-DLS的抗痛觉效力与EM-2相当。EM-1-DLS的抗痛觉作用涉及激活GHS-R1α、μ-OR和κ-OR,而EM-2-DLS则通过GHS-R1α、δ-OR和κ-OR途径发挥作用。此外,还研究了急性抗痛觉耐受性,结果显示 EM-1-DLS 诱导的耐受性比率为 2.33 倍,明显低于 EM-1 诱导的 5.19 倍。嵌合肽与EMs之间的交叉耐受比介于0.92至1.76之间,表明耐受性低于单独的EMs。这些发现凸显了这些嵌合肽在减轻疼痛的同时降低耐受性的潜力,为开发安全性更高的新型镇痛疗法提供了一种前景广阔的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel chimeric peptides based on endomorphins and ghrelin receptor antagonist produced supraspinal antinociceptive effects with reduced acute tolerance in mice.

It is widely recognized that developing bi- or multifunctional opioid compounds could offer a valuable approach to pain management with fewer side effects compared to single-target compounds. In this study, we designed and characterized two novel chimeric peptides, EM-1-DLS and EM-2-DLS, incorporating endomorphins (EMs) and the ghrelin receptor antagonist [D-Lys3]-GHRP-6 (DLS). Functional assays demonstrated that EM-1-DLS and EM-2-DLS acted as κ-opioid receptor (κ-OR)-preferring agonists, weak μ-opioid receptors (μ-OR) and ghrelin receptor (GHSR) agonists. Upon intracerebroventricular (i.c.v.) administration in mice, both EM-1-DLS and EM-2-DLS exhibited dose- and time-dependent antinociceptive effects in the tail withdrawal test. EM-1-DLS demonstrated the highest antinociceptive potency among the peptides, with an ED50 approximately 8-fold greater than EM-1, while EM-2-DLS showed comparable effects to EM-2. The antinociceptive actions of EM-1-DLS involved activation of GHS-R1α, μ-OR, and κ-OR, whereas EM-2-DLS acted via GHS-R1α, δ-OR, and κ-OR pathways. Additionally, acute antinociceptive tolerance was investigated, revealing that EM-1-DLS induced a tolerance ratio of 2.33-fold, significantly lower than the 5.19-fold ratio induced by EM-1. Cross-tolerance ratios between the chimeric peptides and EMs ranged from 0.92 to 1.76, indicating reduced tolerance compared to EMs alone. These findings highlight the potential of these chimeric peptides to mitigate pain with diminished tolerance development, suggesting a promising strategy for the development of new analgesic therapies with improved safety profiles.

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