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An experimental approach to the evaluation of the biopersistence of respirable synthetic fibers and minerals.

机译:一种评估可吸入合成纤维和矿物质生物持久性的实验方法。

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摘要

The biopersistence of fibers and minerals in the respiratory tract is an important parameter in the toxicity of those materials. The biopersistence of respirable synthetic fibers and minerals in man can be most closely evaluated in an animal model. While acellular and in vitro systems are important for initial evaluation of solubility and durability, they cannot simulate the dynamics of inhalation deposition and clearance and the subsequent systemic reaction to fibers and minerals that occurs in the animal. To evaluate the biopersistence of synthetic fibers, male rats were exposed to a well defined rat respirable aerosol of man-made vitreous fibers (MMVF), 6 hr/day for 5 days. Following exposure, subgroups were sacrificed at intervals ranging from 1 hr to 52 weeks. Following sacrifice, the lungs were removed, weighed, and immediately frozen at 20 degrees C for subsequent digestion by low temperature plasma ashing. The number, size distribution, and chemical composition of the fibers in the aerosol and lung were determined. With this animal model the role of biopersistence in altering the geometry and clearance of fibers can be systematically evaluated. The model also can be applied for the evaluation of the biopersistence of nonfibrous minerals.
机译:纤维和矿物质在呼吸道中的生物持久性是这些物质毒性的重要参数。可呼吸合成纤维和矿物质在人体内的生物持久性可以在动物模型中进行最接近的评估。虽然脱细胞和体外系统对于初步评估溶解性和耐久性很重要,但它们无法模拟吸入沉积和清除的动力学以及随后对动物体内纤维和矿物质的系统性反应。为了评估合成纤维的生物持久性,将雄性大鼠暴露于定义良好的人造玻璃纤维可吸入气雾剂(MMVF)中,每天6小时,持续5天。暴露后,以1小时至52周的间隔处死亚组。处死后,取出肺,称重,立即冷冻在20摄氏度下,以便随后通过低温等离子体灰化消化。确定了气溶胶和肺中纤维的数量,大小分布和化学组成。利用这种动物模型,可以系统地评估生物持久性在改变纤维的几何形状和清除率中的作用。该模型还可以用于评估非纤维矿物的生物持久性。

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