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石英晶体微天平(QCM)适用于使用 VITROCELL®Cloud 细胞暴露系统进行纳米毒理学研究的实时剂量测定。

Quartz crystal microbalances (QCM) are suitable for real-time dosimetry in nanotoxicological studies using VITROCELL®Cloud cell exposure systems.

机构信息

Institute of Lung Biology and Disease, Helmholtz Zentrum München, 85764, Neuherberg, Germany.

Comprehensive Pneumology Center, Munich (CPC-M) - Member of the German Center for Lung Research (DZL), 81377, Munich, Germany.

出版信息

Part Fibre Toxicol. 2020 Sep 16;17(1):44. doi: 10.1186/s12989-020-00376-w.

Abstract

BACKGROUND

Accurate knowledge of cell-/tissue-delivered dose plays a pivotal role in inhalation toxicology studies, since it is the key parameter for hazard assessment and translation of in vitro to in vivo dose-response. Traditionally, (nano-)particle toxicological studies with in vivo and in vitro models of the lung rely on in silio computational or off-line analytical methods for dosimetry. In contrast to traditional in vitro testing under submerged cell culture conditions, the more physiologic air-liquid interface (ALI) conditions offer the possibility for real-time dosimetry using quartz crystal microbalances (QCMs). However, it is unclear, if QCMs are sensitive enough for nanotoxicological studies. We investigated this issue for two commercially available VITROCELL®Cloud ALI exposure systems.

RESULTS

Quantitative fluorescence spectroscopy of fluorescein-spiked saline aerosol was used to determine detection limit, precision and accuracy of the QCMs implemented in a VITROCELL®Cloud 6 and Cloud 12 system for dose-controlled ALI aerosol-cell exposure experiments. Both QCMs performed linearly over the entire investigated dose range (200 to 12,000 ng/cm) with an accuracy of 3.4% (Cloud 6) and 3.8% (Cloud 12). Their precision (repeatability) decreased from 2.5% for large doses (> 9500 ng/cm) to values of 10% and even 25% for doses of 1000 ng/cm and 200 ng/cm, respectively. Their lower detection limit was 170 ng/cm and 169 ng/cm for the Cloud 6 and Cloud 12, respectively. Dose-response measurements with (NM110) ZnO nanoparticles revealed an onset dose of 3.3 μg/cm (or 0.39 cm/cm) for both cell viability (WST-1) and cytotoxicity (LDH) of A549 lung epithelial cells.

CONCLUSIONS

The QCMs of the Cloud 6 and Cloud 12 systems show similar performance and are highly sensitive, accurate devices for (quasi-) real-time dosimetry of the cell-delivered particle dose in ALI cell exposure experiments, if operated according to manufacturer specifications. Comparison with in vitro onset doses from this and previously published ALI studies revealed that the detection limit of 170 ng/cm is sufficient for determination of toxicological onset doses for all particle types with low (e.g. polystyrene) or high mass-specific toxicity (e.g. ZnO and Ag) investigated here. Hence, in principle QCMs are suitable for in vitro nanotoxciological studies, but this should be investigated for each QCM and ALI exposure system under the specific exposure conditions as described in the present study.

摘要

背景

在吸入毒理学研究中,准确了解细胞/组织内的剂量起着关键作用,因为它是危害评估和体外到体内剂量反应转化的关键参数。传统上,使用体内和体外肺模型的(纳米)颗粒毒理学研究依赖于基于计算机的或离线分析方法进行剂量测定。与传统的在淹没细胞培养条件下进行的体外测试相比,更接近生理的气液界面(ALI)条件为使用石英晶体微天平(QCM)进行实时剂量测定提供了可能性。然而,尚不清楚 QCM 是否足够灵敏以用于纳米毒理学研究。我们使用两种市售的 VITROCELL®Cloud ALI 暴露系统对此问题进行了研究。

结果

使用荧光素标记的盐水气溶胶的定量荧光光谱法,测定了 VITROCELL®Cloud 6 和 Cloud 12 系统中 QCM 的检测限、精密度和准确性,这些 QCM 用于剂量控制的 ALI 气溶胶-细胞暴露实验。两个 QCM 在整个研究剂量范围内(200 至 12,000ng/cm)均呈线性,精度分别为 3.4%(Cloud 6)和 3.8%(Cloud 12)。其精密度(重复性)从大剂量(>9500ng/cm)的 2.5%下降到 1000ng/cm 和 200ng/cm 剂量的 10%和甚至 25%。它们的检测下限分别为 Cloud 6 和 Cloud 12 的 170ng/cm 和 169ng/cm。(NM110)氧化锌纳米颗粒的剂量反应测量显示,对于 A549 肺上皮细胞的细胞活力(WST-1)和细胞毒性(LDH),两种系统的起始剂量均为 3.3μg/cm(或 0.39cm/cm)。

结论

如果按照制造商的规格进行操作,Cloud 6 和 Cloud 12 系统的 QCM 是用于 ALI 细胞暴露实验中细胞内传递的颗粒剂量的(准)实时剂量测定的高度灵敏、准确的设备。与本研究和以前发表的 ALI 研究中的体外起始剂量进行比较表明,检测下限为 170ng/cm 足以确定所有研究中低(例如聚苯乙烯)或高质量特异性毒性(例如 ZnO 和 Ag)的颗粒类型的毒性起始剂量。因此,原则上 QCM 适用于体外纳米毒理学研究,但应根据本研究中描述的特定暴露条件,针对每种 QCM 和 ALI 暴露系统进行研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0176/7493184/08cbd7fb8fc7/12989_2020_376_Fig1_HTML.jpg

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