表面活性剂和成膜聚合物对体外肺表面活性剂功能的影响是剂量率依赖性的。

IF 4.5 2区 医学 Q2 MEDICINE, RESEARCH & EXPERIMENTAL
Sreyoshee Sengupta, Hugh Barlow, Maria T Baltazar, Jorid B Sørli
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引用次数: 0

摘要

表面活性剂和成膜聚合物是清洁产品、护发产品和止汗剂等消费喷雾产品中的常见成分。喷雾通过产生雾化的产品液滴,可以均匀地分布在处理表面,从而简化了应用。然而,这些气溶胶在正常使用过程中可能被吸入。到达肺泡的液滴可与肺表面活性剂相互作用;磷脂和蛋白质的复杂混合物,调节气液界面的表面张力。这种相互作用可以提高最大压缩时的最小表面张力,并改变肺表面活性剂在界面处的表面流变性。我们在体外测试了四种表面活性剂和七种聚合物对肺表面活性剂功能的抑制能力,并研究了这种抑制是否与剂量率相关,即浓度(mg/mL)和雾化速率(mL/min)的乘积。我们发现肺表面活性物质功能的抑制与化学类别(表面活性剂或聚合物)无关,具有明显的剂量率依赖性,并且不同化学物质对肺表面活性物质功能的抑制剂量率不同。我们将抑制化学物质的起始点与已知剂量率依赖的肺毒性聚合物进行了比较。在评估可能吸入的化学物质的风险时,必须确保正常使用不会抑制肺表面活性物质的功能,从而对肺部产生直接影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The effect of surfactants and film-forming polymers on pulmonary surfactant function measured in vitro is dose rate dependent.

Surfactants and film-forming polymers are common ingredients in consumer spray products such as cleaning products, hair care products, and anti-perspirants. Spraying eases application by creating aerosolized droplets of the product that can distribute evenly over the treated surface. However, these aerosols can potentially be inhaled during their normal application. Droplets that reach the alveoli can interact with the pulmonary surfactant; a complex mixture of phospholipids and proteins that regulates the surface tension at the air-liquid interface. This interaction could elevate the minimum surface tension at maximum compression and change the surface rheology of the pulmonary surfactant at the interface. We tested four surfactants and seven polymers for their ability to inhibit pulmonary surfactant function in vitro and investigated if the inhibition is dose-rate dependent i.e., the product of the concentration (mg/mL) and aerosolization rate (mL/min). We found that independent of chemical class (surfactant or polymer) there was a clear dose-rate dependent inhibition of pulmonary surfactant function and that different chemicals inhibited function at different dose-rates. We compared the points of departure of inhibitory chemicals to a polymer with known dose-rate dependent lung toxicity. When assessing the risk of chemicals that might be inhaled, it is essential to ensure normal use would not inhibit pulmonary surfactant function leading to immediate effects on the lungs.

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来源期刊
Altex-Alternatives To Animal Experimentation
Altex-Alternatives To Animal Experimentation MEDICINE, RESEARCH & EXPERIMENTAL-
CiteScore
7.70
自引率
8.90%
发文量
89
审稿时长
2 months
期刊介绍: ALTEX publishes original articles, short communications, reviews, as well as news and comments and meeting reports. Manuscripts submitted to ALTEX are evaluated by two expert reviewers. The evaluation takes into account the scientific merit of a manuscript and its contribution to animal welfare and the 3R principle.
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