人道屠宰十足类甲壳动物:确定电击后失去知觉的最有效指标

Douglas M. Neil, Endre Putyora, A. Albalat
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引用次数: 0

摘要

通过野外捕捉和人工饲养,十足类甲壳动物为全世界提供了宝贵的食物来源。它们还被广泛用于科学研究,既是研究基本生物过程的对象,也是检测环境变化的模式生物。现在,越来越多的人认为十足类甲壳动物是有知觉的,许多国家正在立法确保甲壳动物在捕捞或圈养时的福利。此外,对这些动物进行人道屠宰的方法也在不断发展,其中电击是一种主要的方法。目前正在对一系列商业捕捞或具有重要科学价值的物种进行电击法优化,本研究采用严格的神经生理学方法进一步研究了螃蟹(Carcinus maenas)和龙虾(Homarus gammarus)物种,为这一进程做出了贡献。通过记录中枢神经系统和外周神经系统的神经活动,我们发现使用标准商用仪器进行电击会在感觉、运动和中枢等各个层面抑制这两个物种的神经活动,使动物失去神经知觉。这种方法是确定是否成功实现无知觉的最直接、最有效的方法。不过,在商业和实验室环境中,对有效电击的常规监测最终必须依赖于简单而可靠的生理或行为指标,并根据神经学方法进行校准。监测心跳被广泛用于确定新陈代谢活动、运动表现、激动互动和对环境条件的反应。因此,我们评估了使用心脏活动作为感知状态指标的可能性。我们在电击前后都记录了马氏鲟和加马鱼的心跳,但发现在许多情况下,即使中枢和外周神经活动已经停止,心脏活动实际上仍在继续(尽管速率有所降低)相当长的时间(超过 1 小时)。因此,心跳并不是感知状态的可靠指标,因此也不适合作为有效电击的指标。本文讨论了这些发现的可能原因,以及验证更适合常规确定有效电击晕的行为测量方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards the humane slaughter of decapod crustaceans: identifying the most effective indicators of insensibility following electrical stunning
Decapod crustaceans provide a valuable food source worldwide, both through wild capture and captive rearing. They are also used extensively in scientific research, both as subjects for the investigation of basic biological processes and as model organisms for the detection of environmental changes. There is now an increasing acceptance that decapod crustaceans are sentient, and legislation is being introduced in numerous countries to ensure crustacean welfare when they are harvested or held captive. Moreover, methods for the humane slaughter of these animals are being developed, and of these electrical stunning is a prime candidate. Optimisation of electrical stunning is underway for a range of commercially-exploited or scientifically-important species, and the present study contributes to that process by examining further crab (Carcinus maenas) and lobster (Homarus gammarus) species using a rigorous neurophysiological approach. By recording nerve activity in both the central and peripheral nervous systems, we have found that electrical stunning with a standard commercial instrument arrests nerve activity in both these species at all levels: sensory, motor and central, rendering the animals neurologically insensible. This methodology is the most direct and effective way to establish if insensibility is successfully achieved. However, ultimately the routine monitoring of effective stunning in commercial and laboratory settings will have to depend on simple, yet reliable physiological or behavioural indicators, following their calibration against neurological methods. Monitoring heartbeat is used widely to establish metabolic activity, locomotory performance, agonistic interactions and responses to environmental conditions. We have therefore assessed the potential to use cardiac activity as an indicator for the state of sensibility. We recorded the heartbeat in both C. maenas and H. gammarus before and after electrical stunning, but find that in many cases even though nerve activity has ceased both centrally and peripherally, cardiac activity actually continues (though at a reduced rate) for a substantial time (>1h). The heartbeat is therefore not a reliable indicator of the state of sensibility, making it an unsuitable indicator of effective stunning. Possible reasons for these findings, and ways to validate behavioural measures that may be more appropriate for routinely establishing effective electrical stunning, are discussed.
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