Analysis of reproducibility and robustness of a renal proximal tubule microphysiological system OrganoPlate 3-lane 40 for in vitro studies of drug transport and toxicity

Author:

Sakolish Courtney1,Moyer Haley L1,Tsai Han-Hsuan D1ORCID,Ford Lucie C1,Dickey Allison N2,Wright Fred A234,Han Gang5,Bajaj Piyush6,Baltazar Maria T7,Carmichael Paul L7,Stanko Jason P8,Ferguson Stephen S8ORCID,Rusyn Ivan1

Affiliation:

1. Department of Veterinary Physiology and Pharmacology, Texas A&M University , College Station, Texas 77843, USA

2. Bioinformatics Research Center, North Carolina State University , Raleigh, North Carolina 27695, USA

3. Department of Statistics, North Carolina State University , Raleigh, North Carolina 27695, USA

4. Department of Biological Sciences, North Carolina State University , Raleigh, North Carolina 27695, USA

5. Department of Epidemiology and Biostatistics, Texas A&M University , College Station, Texas 77843, USA

6. Global Investigative Toxicology, Preclinical Safety, Sanofi , Cambridge, Massachusetts 02141, USA

7. Safety & Environmental Assurance Centre (SEAC), Unilever , Bedfordshire MK44 1LQ, UK

8. Division of Translational Toxicology, National Institute of Environmental Health Sciences , Research Triangle Park, North Carolina 27709, USA

Abstract

Abstract Microphysiological systems are an emerging area of in vitro drug development, and their independent evaluation is important for wide adoption and use. The primary goal of this study was to test reproducibility and robustness of a renal proximal tubule microphysiological system, OrganoPlate 3-lane 40, as an in vitro model for drug transport and toxicity studies. This microfluidic model was compared with static multiwell cultures and tested using several human renal proximal tubule epithelial cell (RPTEC) types. The model was characterized in terms of the functional transport for various tubule-specific proteins, epithelial permeability of small molecules (cisplatin, tenofovir, and perfluorooctanoic acid) versus large molecules (fluorescent dextrans, 60–150 kDa), and gene expression response to a nephrotoxic xenobiotic. The advantages offered by OrganoPlate 3-lane 40 as compared with multiwell cultures are the presence of media flow, albeit intermittent, and increased throughput compared with other microfluidic models. However, OrganoPlate 3-lane 40 model appeared to offer only limited (eg, MRP-mediated transport) advantages in terms of either gene expression or functional transport when compared with the multiwell plate culture conditions. Although OrganoPlate 3-lane 40 can be used to study cellular uptake and direct toxic effects of small molecules, it may have limited utility for drug transport studies. Overall, this study offers refined experimental protocols and comprehensive comparative data on the function of RPETCs in traditional multiwell culture and microfluidic OrganoPlate 3-lane 40, information that will be invaluable for the prospective end-users of in vitro models of the human proximal tubule.

Funder

National Center for Advancing Translational Sciences

National Institute of Environmental Health Sciences

Publisher

Oxford University Press (OUP)

Subject

Toxicology

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