Elliott Elizabeth R, Brock Kaitlyn E, Taul Alaina C, Asadipooya Artin, Bocook Devin, Burnette Tessa, Chauhan Isha V, Chhadh Bilal, Crane Ryan, Glover Ashley, Griffith Joshua, Hudson JayLa A, Kashif Hassan, Nwadialo Samuel O, Neely Devan M, Nukic Adel, Patel Deep R, Ruschman Gretchen L, Sales Johnathan C, Yarbrough Terra, Cooper Robin L
Department of Biology, University of Kentucky, Lexington, KY 40506-0225, USA;
NeuroSci. 2023 Nov 10;4(4):305-318. doi: 10.3390/neurosci4040025. eCollection 2023 Dec.
Zinc (Zn) is an essential element that can promote proper organ function, cell growth, and immune response; it can also, however, be present in too great a quantity. Zinc toxicity caused by overexposure may result in both minor and major physiological effects, with chronic exposure at low levels and acute exposure at high levels being harmful or even toxic. This investigation examines the effects of acute exposure to relatively high concentrations of Zn on sensory nerve function and nerve conduction. A proprioceptive nerve in marine crab () limbs was used as a model to assess the effects of Zn on stretch-activated channels (SACs) and evoked nerve conduction. Exposure to Zn slowed nerve condition rapidly; however, several minutes were required before the SACs in sensory endings were affected. A depression in conduction speed and an increase followed by a decrease in amplitude were observed for the evoked compound action potential, while the frequency of nerve activity upon joint movement and stretching of the chordotonal organ significantly decreased. These altered responses could be partially reversed via extensive flushing with fresh saline to remove the zinc. This indicates that subtle, long-term exposure to Zn may alter an organism's SAC function for channels related to proprioception and nerve conduction.
锌(Zn)是一种必需元素,可促进器官正常功能、细胞生长和免疫反应;然而,它也可能大量存在。过度暴露导致的锌中毒可能会产生轻微和严重的生理影响,低水平的长期暴露和高水平的急性暴露都有害甚至有毒。本研究考察了急性暴露于相对高浓度的锌对感觉神经功能和神经传导的影响。以海蟹肢体中的本体感觉神经为模型,评估锌对牵张激活通道(SACs)和诱发神经传导的影响。暴露于锌会迅速减缓神经传导;然而,感觉末梢中的SACs在数分钟后才会受到影响。对于诱发的复合动作电位,观察到传导速度降低,幅度先增加后减小,而关节运动和弦音器官伸展时的神经活动频率显著降低。通过用新鲜盐水大量冲洗以去除锌,这些改变的反应可部分逆转。这表明,长期轻微暴露于锌可能会改变生物体与本体感觉和神经传导相关通道的SAC功能。