苦参生物碱对中脑边缘多巴胺释放的影响。

IF 2.5 4区 医学 Q3 NEUROSCIENCES
James P. Manus , Rebecca C. Crenshaw , Lindsay C. Ringer , Shelby A. Towers , Nick B. Paige , Francisco Leon , Christopher R. McCurdy , Deranda B. Lester
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引用次数: 0

摘要

Kratom是从一种原产于东南亚的植物(Mitragyna speciosa)的叶子中提取的,这种植物在低剂量时具有复杂的类似兴奋剂的作用,在高剂量时具有类似鸦片的作用,用于治疗与情绪相关的问题,如焦虑或抑郁,或帮助改善阿片类药物戒断症状。然而,其主要精神活性生物碱米特拉吉碱(MG)和7-羟基米特拉吉碱(7-HMG)的神经机制尚不清楚。考虑到kratom的作用经常被与滥用药物进行比较,本研究检查了MG和7-HMG对奖励相关神经传递的影响。FPA用于量化麻醉雄性和雌性小鼠在MG(1、15或30 MG /kg i.p.)、7-HMG(0.5、1或2 MG /kg i.p.)或载药前后伏隔核(NAc)刺激诱发的相性多巴胺释放。MG在记录期内(90 min)以剂量依赖的方式减少多巴胺释放,低剂量MG显著增加雄性多巴胺自身受体功能。两性对7-HMG的反应相似,低剂量的7-HMG增加多巴胺释放,而高剂量的7-HMG减少多巴胺释放。7-HMG没有改变两性多巴胺自身受体的功能。MG和7-HMG均未改变刺激诱发多巴胺的清除率。研究结果表明,这些克拉托姆生物碱确实会改变多巴胺的功能,尽管可能与经典药物滥用的方式不一致。对克拉通生物碱的神经机制的进一步研究将为其治疗用途或潜在的滥用责任提供至关重要和紧迫的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effects of kratom alkaloids on mesolimbic dopamine release

Effects of kratom alkaloids on mesolimbic dopamine release
Kratom is derived from the leaves of a plant (Mitragyna speciosa) native to Southeast Asia that has been consumed for its complex stimulant-like effects at low doses, opiate-like effects at high doses, to treat mood related issues like anxiety or depression, or to help ameliorate opioid withdrawal symptoms. However, the neural mechanisms of its major psychoactive alkaloids, mitragynine (MG) and 7-hydroxymitragynine (7-HMG), are still not clear. Given that the effects of kratom are often compared to drugs with abuse liabilities, the current study examined the effects of MG and 7-HMG on reward-related neurotransmission. Fixed potential amperometry was used to quantify stimulation-evoked phasic dopamine release in the nucleus accumbens (NAc) of anesthetized male and female mice before and after MG (1, 15, or 30 mg/kg i.p.), 7-HMG (0.5, 1, or 2 mg/kg i.p.), or vehicle. MG reduced dopamine release over the recording period (90 min) in a dose dependent manner, and the low dose of MG significantly increased dopamine autoreceptor functioning in males. Both sexes responded similarly to 7-HMG with the low dose of 7-HMG increasing dopamine release while the high dose decreased dopamine release. 7-HMG did not alter dopamine autoreceptor functioning for either sex. Neither MG nor 7-HMG altered the clearance rate of stimulation-evoked dopamine. Findings suggest that these kratom alkaloids do alter dopamine functioning, although potentially not in a way consistent with classic drugs of abuse. Further investigation of the neural mechanisms of kratom’s alkaloids will provide crucial and urgent insight into their therapeutic uses or potential abuse liability.
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来源期刊
Neuroscience Letters
Neuroscience Letters 医学-神经科学
CiteScore
5.20
自引率
0.00%
发文量
408
审稿时长
50 days
期刊介绍: Neuroscience Letters is devoted to the rapid publication of short, high-quality papers of interest to the broad community of neuroscientists. Only papers which will make a significant addition to the literature in the field will be published. Papers in all areas of neuroscience - molecular, cellular, developmental, systems, behavioral and cognitive, as well as computational - will be considered for publication. Submission of laboratory investigations that shed light on disease mechanisms is encouraged. Special Issues, edited by Guest Editors to cover new and rapidly-moving areas, will include invited mini-reviews. Occasional mini-reviews in especially timely areas will be considered for publication, without invitation, outside of Special Issues; these un-solicited mini-reviews can be submitted without invitation but must be of very high quality. Clinical studies will also be published if they provide new information about organization or actions of the nervous system, or provide new insights into the neurobiology of disease. NSL does not publish case reports.
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