Per- and polyfluoroalkyl substances (PFAS) in mixtures show additive effects on transcriptomic points of departure in human liver spheroids

Author:

Addicks Gregory C1,Rowan-Carroll Andrea1,Reardon Anthony J F1,Leingartner Karen1,Williams Andrew1,Meier Matthew J1,Moffat Ivy2,Carrier Richard2,Lorusso Luigi3,Wetmore Barbara A4ORCID,Yauk Carole L5ORCID,Atlas Ella16ORCID

Affiliation:

1. Environmental Health Science and Research Bureau, Healthy Environments and Consumer Safety Branch (HECSB), Health Canada , Ottawa, Ontario K1A 0K9, Canada

2. Water and Air Quality Bureau, HECSB, Health Canada, Health Canada , Ottawa, Ontario K1A 0K9, Canada

3. Chemicals and Environmental Health Management Bureau, Healthy Environments and Consumer Safety Branch (HECSB), Health Canada , Ottawa, Ontario K1A 0K9, Canada

4. Center for Computational Toxicology and Exposure, Office of Research and Development, U.S. Environmental Protection Agency , Research Triangle Park, North Carolina 27711, USA

5. Department of Biology, University of Ottawa , Ottawa, Ontario K1N 6N5, Canada

6. Department of Biochemistry, University of Ottawa , Ottawa, Ontario K1H 8M5, Canada

Abstract

Abstract Per- and polyfluoroalkyl substances (PFAS) are a wide range of chemicals that are used in a variety of consumer and industrial products leading to direct human exposure. Many PFAS are chemically nonreactive and persistent in the environment, resulting in additional exposure from water, soil, and dietary intake. While some PFAS have documented negative health effects, data on simultaneous exposures to multiple PFAS (PFAS mixtures) are inadequate for making informed decisions for risk assessment. The current study leverages data from previous work in our group using Templated Oligo-Sequencing (TempO-Seq) for high-throughput transcriptomic analysis of PFAS-exposed primary human liver cell spheroids; herein, we determine the transcriptomic potency of PFAS in mixtures. Gene expression data from single PFAS and mixture exposures of liver cell spheroids were subject to benchmark concentration (BMC) analysis. We used the 25th lowest gene BMC as the point of departure to compare the potencies of single PFAS to PFAS mixtures of varying complexity and composition. Specifically, the empirical potency of 8 PFAS mixtures were compared to predicted mixture potencies calculated using the principal of concentration addition (ie, dose addition) in which mixture component potencies are summed by proportion to predict mixture potency. In this study, for most mixtures, empirical mixture potencies were comparable to potencies calculated through concentration addition. This work supports that the effects of PFAS mixtures on gene expression largely follow the concentration addition predicted response and suggests that effects of these individual PFAS in mixtures are not strongly synergistic or antagonistic.

Funder

HECSB

Health Canada

Chemicals and Environmental Health Management Bureau

Canada Research Chairs

Publisher

Oxford University Press (OUP)

Subject

Toxicology

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