Use of Cause-and-Effect Analysis to Optimize the Reliability of In Vitro Inhalation Toxicity Measurements Using an Air-Liquid Interface

被引:17
作者
Petersen, Elijah J. [4 ]
Sharma, Monita [1 ]
Clippinger, Amy J. [1 ]
Gordon, John [2 ]
Katz, Aaron [3 ]
Laux, Peter [3 ]
Leibrock, Lars B. [3 ]
Luch, Andreas [3 ]
Matheson, Joanna [2 ]
Stucki, Andreas O. [1 ]
Tentschert, Jutta [3 ]
Bierkandt, Frank S. [3 ]
机构
[1] PETA Sci Consortium Int EV, D-70499 Stuttgart, Germany
[2] US Consumer Prod Safety Commiss, Rockville, MD 20850 USA
[3] German Fed Inst Risk Assessment BfR, Dept Chem & Prod Safety, D-10589 Berlin, Germany
[4] Natl Inst Stand & Technol NIST, Biosyst & Biomat Div, Mat Measurement Lab, Gaithersburg, MD 20899 USA
关键词
EXPOSURE SYSTEM; NANOPARTICLES; CELLS; ASSAY; IDENTIFICATION; MICROPLASTICS; QUALITY; MODEL;
D O I
10.1021/acs.chemrestox.1c00080
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
In vitro inhalation toxicology methods are increasingly being used for research and regulatory purposes. Although the opportunity for increased human relevance of in vitro inhalation methods compared to in vivo tests has been established and discussed, how to systematically account for variability and maximize the reliability of these in vitro methods, especially for assays that use cells cultured at an air-liquid interface (ALI), has received less attention. One tool that has been used to evaluate the robustness of in vitro test methods is cause-and-effect (C&E) analysis, a conceptual approach to analyze key sources of potential variability in a test method. These sources of variability can then be evaluated using robustness testing and potentially incorporated into in-process control measurements in the assay protocol. There are many differences among in vitro inhalation test methods including the use of different types of biological test systems, exposure platforms/conditions, substances tested, and end points, which represent a major challenge for use in regulatory testing. In this manuscript, we describe how C&E analysis can be applied using a modular approach based on the idea that shared components of different test methods (e.g., the same exposure system is used) have similar sources of variability even though other components may differ. C&E analyses of different in vitro inhalation methods revealed a common set of recommended exposure systems and biological in-process control measurements. The approach described here, when applied in conjunction with Good Laboratory Practices (GLP) criteria, should help improve the inter- and intralaboratory agreement of in vitro inhalation test results, leading to increased confidence in these methods for regulatory and research purposes.
引用
收藏
页码:1370 / 1385
页数:16
相关论文
共 85 条
  • [1] [Anonymous], 2009, Official Journal of the European Union
  • [2] Use of EpiAlveolar Lung Model to Predict Fibrotic Potential of Multiwalled Carbon Nanotubes
    Barosova, Hana
    Maione, Anna G.
    Septiadi, Dedy
    Sharma, Monita
    Haeni, Laetitia
    Balog, Sandor
    O'Connell, Olivia
    Jackson, George R.
    Brown, David
    Clippinger, Amy J.
    Hayden, Patrick
    Petri-Fink, Alke
    Stone, Vicki
    Rothen-Rutishauser, Barbara
    [J]. ACS NANO, 2020, 14 (04) : 3941 - 3956
  • [3] Assessment of In Vitro COPD Models for Tobacco Regulatory Science: Workshop Proceedings, Conclusions and Paths Forward for In Vitro Model Use
    Behrsing, Holger
    Raabe, Hans
    Manuppello, Joseph
    Bombick, Betsy
    Curren, Rodger
    Sullivan, Kristie
    Sethi, Sanjay
    Phipps, Richard
    Tesfaigzi, Yohannes
    Yan, Sherwin
    D'Ruiz, Carl
    Tarran, Robert
    Constant, Samuel
    Phillips, Gary
    Gaca, Marianna
    Hayden, Patrick
    Cao, Xuefei
    Mathis, Carole
    Hoeng, Julia
    Braun, Armin
    Hill, Erin
    [J]. ATLA-ALTERNATIVES TO LABORATORY ANIMALS, 2016, 44 (02): : 129 - 166
  • [4] Comparison of the basic morphology and function of 3D lung epithelial cultures derived from several donors
    Bovard, David
    Giralt, Albert
    Trivedi, Keyur
    Neau, Laurent
    Kanellos, Petros
    Iskandar, Anita
    Kondylis, Athanasios
    Luettich, Karsta
    Frentzel, Stefan
    Hoeng, Julia
    Peitsch, Manuel C.
    [J]. CURRENT RESEARCH IN TOXICOLOGY, 2020, 1 : 56 - 69
  • [5] Polyvinyl chloride (PVC) plastic fragments release Pb additives that are bioavailable in zebrafish
    Boyle, David
    Catarino, Ana I.
    Clark, Nathaniel J.
    Henry, Theodore B.
    [J]. ENVIRONMENTAL POLLUTION, 2020, 263
  • [6] Quantitative Evaluation of Cellular Uptake and Trafficking of Plain and Polyethylene Glycol-Coated Gold Nanoparticles
    Brandenberger, Christina
    Muehlfeld, Christian
    Ali, Zulqurnain
    Lenz, Anke-Gabriele
    Schmid, Otmar
    Parak, Wolfgang J.
    Gehr, Peter
    Rothen-Rutishauser, Barbara
    [J]. SMALL, 2010, 6 (15) : 1669 - 1678
  • [7] Post hoc Interlaboratory Comparison of Single Particle ICP-MS Size Measurements of NIST Gold Nanoparticle Reference Materials
    Bustos, Antonio R. Montoro
    Petersen, Elijah J.
    Possolo, Antonio
    Winchester, Michael R.
    [J]. ANALYTICAL CHEMISTRY, 2015, 87 (17) : 8809 - 8817
  • [8] Bridging the Gap Between Regulatory Acceptance and Industry Use of Non-Animal Methods
    Clippinger, Amy J.
    Hill, Erin
    Curren, Rodger
    Bishop, Patricia
    [J]. ALTEX-ALTERNATIVES TO ANIMAL EXPERIMENTATION, 2016, 33 (04) : 453 - 458
  • [9] Expert consensus on an in vitro approach to assess pulmonary fibrogenic potential of aerosolized nanomaterials
    Clippinger, Amy J.
    Ahluwalia, Arti
    Allen, David
    Bonner, James C.
    Casey, Warren
    Castranova, Vincent
    David, Raymond M.
    Halappanavar, Sabina
    Hotchkiss, Jon A.
    Jarabek, Annie M.
    Maier, Monika
    Polk, William
    Rothen-Rutishauser, Barbara
    Sayes, Christie M.
    Sayre, Phil
    Sharma, Monita
    Stone, Vicki
    [J]. ARCHIVES OF TOXICOLOGY, 2016, 90 (07) : 1769 - 1783
  • [10] ADVANCING THE QUALITY OF ENVIRONMENTAL MICROPLASTIC RESEARCH
    Connors, Kristin A.
    Dyer, Scott D.
    Belanger, Scott E.
    [J]. ENVIRONMENTAL TOXICOLOGY AND CHEMISTRY, 2017, 36 (07) : 1697 - 1703