The effects of fluoride on neuronal function occurs via cytoskeleton damage and decreased signal transmission

神经毒性 谷氨酸受体 活力测定 化学 氟化物 细胞生物学 神经递质 氟化钠 神经元 细胞 生物 生物化学 毒性 受体 神经科学 有机化学 无机化学
作者
Lingli Chen,Hongmei Ning,Zhihong Yin,Xiaochao Song,Yi Feng,Hao Qin,Yang Li,Jundong Wang,Yaming Ge,Wenkui Wang
出处
期刊:Chemosphere [Elsevier]
卷期号:185: 589-594 被引量:21
标识
DOI:10.1016/j.chemosphere.2017.06.128
摘要

It has been reported that fluoride exposure may cause serious public health problems, particularly neurotoxicity. However, the underlying mechanisms remain unclear. This study used Neuro-2A cells to investigate the effects of fluoride on the cytoskeleton. The Neuro-2A cells were exposed to 0, 1, 2, 4 and 6 mM sodium fluoride (NaF) for 24 h. Cell viability and lactate dehydrogenase (LDH) release were examined. It was observed that exposure to NaF reduced cell viability, disrupted cellular membrane integrity, and high levels of LDH were released. The observed changes occurred in a dose response manner. Morphologic observations showed that cell became rounded and were loosely adherent following exposure to NaF. Axon spines and normal features disappeared with high dose NaF treatment. The expression of MAP2 and synaptophysin decreased, particularly at 4 mM and 6 mM (P < 0.05) for MAP2. These results corroborate the morphologic observations. The content of glutamate and NMDAR (glutamate receptor) protein were assessed to help understand the relationship between synapses and neurotransmitter release using ELISA and Western-blot. Compared with the control, glutamate and NMDAR expression declined significantly at 4 mM and 6 mM (P < 0.05) group. Finally, the ultrastructural changes observed with increasing doses of NaF were: disappearance of synapses, mitochondrial agglutination, vacuole formation, and cellular edema. Taken together, NaF exposure disrupted cellular integrity and suppressed the release of neurotransmitters, thus effecting neuronal function. These findings provide deeper insights into roles of NaF in neuron damage, which could contribute to a better understanding of fluoride-induced neurotoxicity.
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