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Cadmium Regulates the Expression of the CFTR Chloride Channel in Human Airway Epithelial Cells

机译:镉调节人呼吸道上皮细胞中CFTR氯化物通道的表达

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摘要

Cadmium is a toxic heavy metal ranked seventh on the Priority List of Hazardous Substances. As a byproduct of smelters, cadmium is a prevalent environmental contaminant. It is also a major component of cigarette smoke, and its inhalation is associated with decreased pulmonary function, lung cancer, and chronic obstructive pulmonary disease. Ion channels, including the cystic fibrosis transmembrane conductance regulator (CFTR), play a central role in maintaining fluid homeostasis and lung functions. CFTR is mostly expressed in epithelial cells, and little is known about the effect of cadmium exposure on lung epithelial cell function. We show that exposure to cadmium decreases the expression of the CFTR protein and subsequent chloride transport in human airway epithelial cells in vitro. Impairment of CFTR protein expression was also observed in vivo in the lung of mice after intranasal instillation of cadmium. We established that the inhibitory effect of cadmium was not a nonspecific effect of heavy metals, as nickel had no effect on CFTR protein levels. Finally, we show that selected antioxidants, including alpha-tocopherol (vitamin E), but not N-acetylcysteine, can prevent the cadmium-induced suppression of CFTR. In summary, we have identified cadmium as a regulator of the CFTR chloride channel present in lung epithelial cells. Future strategies to prevent the deleterious effect of cadmium on epithelial cells and lung functions may benefit from the finding that alpha-tocopherol protects CFTR expression and function.
机译:镉是有毒重金属,在危险物质优先清单中排名第七。作为冶炼厂的副产品,镉是一种普遍的环境污染物。它也是香烟烟雾的主要成分,其吸入与肺功能下降,肺癌和慢性阻塞性肺疾病有关。离子通道,包括囊性纤维化跨膜电导调节器(CFTR),在维持体液稳态和肺功能中起着核心作用。 CFTR主要在上皮细胞中表达,而镉暴露对肺上皮细胞功能的影响知之甚少。我们显示,暴露于镉会降低CFTR蛋白的表达以及随后的氯化物在人气道上皮细胞中的转运。鼻内滴入镉后,在小鼠肺部体内也观察到CFTR蛋白表达受损。我们确定镉的抑制作用不是重金属的非特异性作用,因为镍对CFTR蛋白水平没有影响。最后,我们证明了选定的抗氧化剂,包括α-生育酚(维生素E),但不包括N-乙酰半胱氨酸,可以防止镉诱导的CFTR抑制。总之,我们已经确定镉是肺上皮细胞中CFTR氯化物通道的调节剂。预防镉对上皮细胞和肺功能有害作用的未来策略可能会受益于α-生育酚保护CFTR表达和功能的发现。

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