胚胎期大麻二酚暴露不影响成年斑马鱼游泳性能

Hannah Veinot, E. Folkerts, Ruhul, Declam Ali, G. Goss
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引用次数: 0

摘要

大麻被用于多种原因,如缓解疼痛,缓解压力,减少化疗期间的恶心。虽然大麻起源于中亚和南亚,但这种药物在北美非常流行。2001年7月,加拿大医用大麻合法化,2018年10月17日,娱乐性大麻在全国范围内合法化。许多科学研究表明,大麻对消费者和接触二手烟有负面影响,包括肺癌、呼吸问题以及决策和认知功能下降。由于大麻的快速增长,高浓度的大麻已经渗入水处理设施,并通过管道扩散到湖泊和池塘,这可能会对鱼类造成伤害。虽然有研究得出结论,斑马鱼的神经模式和心脏系统发生了变化,但没有关于大麻的药用成分(大麻二酚或CBD)如何影响鱼的游泳能力的报道。正确的游泳行为是鱼类和其他海洋动物的基本生存特征,但当一种新的潜在有毒化合物进入它们的环境时,可能会对生物体的重要生物功能产生影响。本研究旨在通过评估斑马鱼的临界游泳速度(Ucrit值)来探讨大麻二酚对斑马鱼的潜在影响。通过一个游泳隧道,我们能够控制环境,并很容易地确定鱼在什么时候会疲劳。在三个不同的鱼缸之间进行了比较:一个鱼缸暴露于CBD,另外两个鱼缸包含淡水控制和溶剂控制。使用我们的“p”和“F”状态值,我们可以得出结论,三个鱼缸之间没有观察到显著差异。在未来,我们希望对暴露的鱼进行神经学分析,并完成鱼的呼吸测量,测量暴露于CBD的鱼的耗氧量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Embryonic Cannabidiol Exposure Does Not Affect Adult Zebrafish Swimming Performance
Cannabis is used for a variety of reasons such as relieving pain, relieving stress, and reducing nausea during chemotherapy. While cannabis originates from central and south Asia, the drug has become extremely popular in North America. In July of 2001, medicinal use of cannabis was legalized in Canada, and on October 17 2018, recreational use of cannabis was legalized nationally. Many scientific studies have shown the negative effects of cannabis in consumers and of second hand smoke exposure, including lung cancer, respiratory issues, and reduced decision making and cognitive function. Because of the rapid increase in cannabis, high concentrations have filtered into the water treatment facilities and spread into lakes and ponds through pipelines that could potentially cause harm to the fish. While there are studies that have concluded that there are alterations to the fish’s neuronal patterns and cardiac systems in zebrafish, there were no reports of how the medical ingredient of cannabis (cannabidiol or CBD) may affect the ability of a fish to swim. Proper swim behaviour is an essential survival characteristic to fish and other marine animals, but when a novel potentially toxic compound is introduced into their environment, impacts to vital biological functions in the organism may occur. This study aimed to investigate the potential effects of cannabidiol on zebrafish by evaluating their critical swimming speed (Ucrit value). Using a swim tunnel, we were able to control the environment and easily identify at what point the fish would be fatigued. Comparisons were made between three different fish tanks: one tank exposed to CBD, and the other two tanks contained a fresh water control and a solvent control. Using both our “p” and “F” stat values, we can conclude that there were no significant differences observed between the three fish tanks. In the future, we hope to analyse the neurology of the fish exposed and complete a fish respirometry measuring the oxygen consumption of CBD exposed fish. 
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