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Principles of fluoride toxicity and the cellular response: a review

机译:氟化物毒性和细胞反应原则:综述

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Fluoride is ubiquitously present throughout the world. It is released from minerals, magmatic gas, and industrial processing, and travels in the atmosphere and water. Exposure to low concentrations of fluoride increases overall oral health. Consequently, many countries add fluoride to their public water supply at 0.7-1.5 ppm. Exposure to high concentrations of fluoride, such as in a laboratory setting often exceeding 100 ppm, results in a wide array of toxicity phenotypes. This includes oxidative stress, organelle damage, and apoptosis in single cells, and skeletal and soft tissue damage in multicellular organisms. The mechanism of fluoride toxicity can be broadly attributed to four mechanisms: inhibition of proteins, organelle disruption, altered pH, and electrolyte imbalance. Recently, there has been renewed concern in the public sector as to whether fluoride is safe at the current exposure levels. In this review, we will focus on the impact of fluoride at the chemical, cellular, and multisystem level, as well as how organisms defend against fluoride. We also address public concerns about fluoride toxicity, including whether fluoride has a significant effect on neurodegeneration, diabetes, and the endocrine system.
机译:氟化物普遍存在世界上。它由矿物质,岩浆气体和工业加工释放,并在大气和水中传播。暴露于低浓度的氟化物增加了整体口腔健康。因此,许多国家在0.7-1.5ppm下加入氟化物到其公共供水。暴露于高浓度的氟化物,例如在通常超过100ppm的实验室设定中,导致各种毒性表型。这包括单细胞中氧化应激,细胞器损伤和细胞凋亡,以及多细胞生物中的骨骼和软组织损伤。氟化物毒性的机制可以广泛地归因于四种机制:抑制蛋白质,细胞器破坏,改变的pH和电解质不平衡。最近,公共部门的临疑是氟化物在目前的暴露水平上是安全的。在本综述中,我们将专注于氟化物对化学,细胞和多系统水平的影响,以及生物体如何防御氟化物。我们还涉及公众对氟化物毒性的关注,包括氟化物是否对神经变性,糖尿病和内分泌系统具有显着影响。

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