Division of Laboratory Sciences, National Center for Environmental Health, Centers for Disease Control and Prevention, Atlanta, GA, 30341, USA.
Division of Laboratory Sciences, National Center for Environmental Health, Centers for Disease Control and Prevention, Atlanta, GA, 30341, USA.
Int J Hyg Environ Health. 2021 May;234:113713. doi: 10.1016/j.ijheh.2021.113713. Epub 2021 Feb 20.
We developed an inductively coupled plasma mass spectrometry (ICP-MS) method using Universal Cell Technology (UCT) with a PerkinElmer NexION ICP-MS, to measure arsenic (As), chromium (Cr), and nickel (Ni) in human urine samples. The advancements of the UCT allowed us to expand the calibration range to make the method applicable for both low concentrations of biomonitoring applications and high concentrations that may be observed from acute exposures and emergency response. Our method analyzes As and Ni in kinetic energy discrimination (KED) mode with helium (He) gas, and Cr in dynamic reaction cell (DRC) mode with ammonia (NH) gas. The combination of these elements is challenging because a carbon source, ethanol (EtOH), is required for normalization of As ionization in urine samples, which creates a spectral overlap (ArC) on Cr. This method additionally improved lab efficiency by combining elements from two of our previously published methods(Jarrett et al., 2007; Quarles et al., 2014) allowing us to measure Cr and Ni concentrations in urine samples collected as part of the National Health and Nutrition Examination Survey (NHANES) beginning with the 2017-2018 survey cycle. We present our rigorous validation of the method selectivity and accuracy using National Institute of Standards and Technology (NIST) Standard Reference Materials (SRM), precision using in-house prepared quality control materials, and a discussion of the use of a modified UCT, a BioUCell, to address an ion transmission phenomenon we observed on the NexION 300 platform when using higher elemental concentrations and high cell gas pressures. The rugged method detection limits, calculated from measurements in more than 60 runs, for As, Cr, and Ni are 0.23 μg L-1, 0.19 μg L-1, and 0.31 μg L-1, respectively.
我们开发了一种使用通用池技术(UCT)的电感耦合等离子体质谱法(ICP-MS),使用珀金埃尔默 NexION ICP-MS 测量人尿液样本中的砷(As)、铬(Cr)和镍(Ni)。UCT 的进步使我们能够扩展校准范围,使该方法既适用于生物监测应用的低浓度,也适用于可能从急性暴露和应急响应中观察到的高浓度。我们的方法在动能甄别(KED)模式下用氦气(He)分析 As 和 Ni,在动态反应池(DRC)模式下用氨气(NH)分析 Cr。这些元素的组合具有挑战性,因为需要碳源乙醇(EtOH)来归一化尿液样本中 As 的离子化,这会在 Cr 上产生光谱重叠(ArC)。该方法还通过组合我们之前发表的两种方法(Jarrett 等人,2007 年;Quarles 等人,2014 年)中的元素,提高了实验室效率,从而能够测量作为国家健康和营养检查调查(NHANES)一部分收集的尿液样本中的 Cr 和 Ni 浓度,该调查从 2017-2018 调查周期开始。我们使用美国国家标准与技术研究院(NIST)标准参考物质(SRM)展示了方法选择性和准确性的严格验证,使用内部制备的质量控制材料展示了精密度,并讨论了使用改良的 UCT(BioUCell)来解决我们在使用更高元素浓度和高池气压时在 NexION 300 平台上观察到的离子传输现象。从 60 多次测量中计算出的该方法的检测限,对于 As、Cr 和 Ni 分别为 0.23μg/L、0.19μg/L 和 0.31μg/L。