DOI: 10.1021/acs.jproteome.6c00120 ISSN: 1535-3893

Exploring the Translation of Organ-on-a-Chip Technology for Human-Relevant Diagnostic Biomarkers

Conor C. Jenkins, Priscilla E. Lee, Dylan H. Fudge, Gabrielle M. Rizzo, Allison E. Clay, Raquel L. Shortt-Jackson, Shoshanah M. Myska, Daniel J. Angelini, Elizabeth S. Dhummakupt, Tyler D. P. Goralski

Abstract

Microphysiological systems (MPSs) are gaining traction as a viable alternative model for toxicity studies. Further characterization is necessary to explore the full translational potential of MPSs to human physiology, along with the utility of these platforms to serve as a diagnostic tool. Multiomics analyses have emerged as a key means for identifying host biomarkers associated with chemical and drug exposure. Correlations between published human omics and MPS technology omics data will inform the potential of organ chips to accurately represent human responses and provide an alternative approach for improved biomarker discovery for toxicity assessment and exposure identification. To interrogate these potential overlaps, TissUse Chip3 multiorgan chips (MOCs) seeded with kidney organoids, liver organoids, and respiratory tract tissue were exposed to low, therapeutic, and toxic doses of acetaminophen (n = 4 for each condition) for 24 h and subjected to proteomic and metabolomic analysis. The data from our organ chips are largely consistent with biomarkers and dysregulations identified in published human omics data, in vitro and in vivo data, to include the identification of several known acetaminophen metabolites and biotransformation products. These data suggest that organ chips may be a suitable surrogate for human biomarker identification and drug or hazardous chemical exposure diagnosis.

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