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1.
Kidney360 ; 3(2): 217-231, 2022 02 24.
Article in English | MEDLINE | ID: mdl-35373131

ABSTRACT

Background: Renal ischemia/reperfusion injury (rIRI) is one of the major causes of AKI. Although animal models are suitable for investigating systemic symptoms of AKI, they are limited in translatability. Human in vitro models are crucial in giving mechanistic insights into rIRI; however, they miss out on crucial aspects such as reperfusion injury and the multitissue aspect of AKI. Methods: We advanced the current renal proximal tubule-on-a-chip model to a coculture model with a perfused endothelial vessel separated by an extracellular matrix. The coculture was characterized for its three-dimensional structure, protein expression, and response to nephrotoxins. Then, rIRI was captured through control of oxygen levels, nutrient availability, and perfusion flow settings. Injury was quantified through morphologic assessment, caspase-3/7 activation, and cell viability. Results: The combination of low oxygen, reduced glucose, and interrupted flow was potent to disturb the proximal tubules. This effect was strongly amplified upon reperfusion. Endothelial vessels were less sensitive to the ischemia-reperfusion parameters. Adenosine treatment showed a protective effect on the disruption of the epithelium and on the caspase-3/7 activation. Conclusions: A human in vitro rIRI model was developed using a coculture of a proximal tubule and blood vessel on-a-chip, which was used to characterize the renoprotective effect of adenosine. The robustness of the model and assays in combination with the throughput of the platform make it ideal to advance pathophysiological research and enable the development of novel therapeutic modalities.


Subject(s)
Acute Kidney Injury , Lab-On-A-Chip Devices , Acute Kidney Injury/prevention & control , Animals , Humans , Ischemia/complications , Kidney Tubules/metabolism , Reperfusion/adverse effects
2.
Nat Protoc ; 16(4): 2023-2050, 2021 04.
Article in English | MEDLINE | ID: mdl-33674788

ABSTRACT

Advanced in vitro kidney models are of great importance to the study of renal physiology and disease. Kidney tubuloids can be established from primary cells derived from adult kidney tissue or urine. Tubuloids are three-dimensional multicellular structures that recapitulate tubular function and have been used to study infectious, malignant, metabolic, and genetic diseases. For tubuloids to more closely represent the in vivo kidney, they can be integrated into an organ-on-a-chip system that has a more physiological tubular architecture and allows flow and interaction with vasculature or epithelial and mesenchymal cells from other organs. Here, we describe a detailed protocol for establishing tubuloid cultures from tissue and urine (1-3 weeks), as well as for generating and characterizing tubuloid cell-derived three-dimensional tubular structures in a perfused microfluidic multi-chip platform (7 d). The combination of the two systems yields a powerful in vitro tool that better recapitulates the complexity of the kidney tubule with donor-specific properties.


Subject(s)
Kidney Tubules/growth & development , Lab-On-A-Chip Devices , Organoids/growth & development , Perfusion , Tissue Culture Techniques/methods , Adolescent , Adult , Aged , Aged, 80 and over , Animals , Cell Fractionation , Child , Child, Preschool , Electric Impedance , Female , Fluorescent Dyes/chemistry , Humans , Infant , Male , Membrane Transport Proteins/metabolism , Microfluidics , Middle Aged , Rats , Young Adult
3.
J Pharm Sci ; 110(4): 1601-1614, 2021 04.
Article in English | MEDLINE | ID: mdl-33545187

ABSTRACT

Proximal tubule epithelial cells (PTEC) are susceptible to drug-induced kidney injury (DIKI). Cell-based, two-dimensional (2D) in vitro PTEC models are often poor predictors of DIKI, probably due to the lack of physiological architecture and flow. Here, we assessed a high throughput, 3D microfluidic platform (Nephroscreen) for the detection of DIKI in pharmaceutical development. This system was established with four model nephrotoxic drugs (cisplatin, tenofovir, tobramycin and cyclosporin A) and tested with eight pharmaceutical compounds. Measured parameters included cell viability, release of lactate dehydrogenase (LDH) and N-acetyl-ß-d-glucosaminidase (NAG), barrier integrity, release of specific miRNAs, and gene expression of toxicity markers. Drug-transporter interactions for P-gp and MRP2/4 were also determined. The most predictive read outs for DIKI were a combination of cell viability, LDH and miRNA release. In conclusion, Nephroscreen detected DIKI in a robust manner, is compatible with automated pipetting, proved to be amenable to long-term experiments, and was easily transferred between laboratories. This proof-of-concept-study demonstrated the usability and reproducibility of Nephroscreen for the detection of DIKI and drug-transporter interactions. Nephroscreen it represents a valuable tool towards replacing animal testing and supporting the 3Rs (Reduce, Refine and Replace animal experimentation).


Subject(s)
Kidney Tubules, Proximal , Lab-On-A-Chip Devices , Animals , Drug Interactions , Humans , Kidney , Reproducibility of Results
4.
AAPS J ; 20(5): 90, 2018 08 14.
Article in English | MEDLINE | ID: mdl-30109442

ABSTRACT

Proximal tubules in the kidney play a crucial role in reabsorbing and eliminating substrates from the body into the urine, leading to high local concentrations of xenobiotics. This makes the proximal tubule a major target for drug toxicity that needs to be evaluated during the drug development process. Here, we describe an advanced in vitro model consisting of fully polarized renal proximal tubular epithelial cells cultured in a microfluidic system. Up to 40 leak-tight tubules were cultured on this platform that provides access to the basolateral as well as the apical side of the epithelial cells. Exposure to the nephrotoxicant cisplatin caused a dose-dependent disruption of the epithelial barrier, a decrease in viability, an increase in effluent LDH activity, and changes in expression of tight-junction marker zona-occludence 1, actin, and DNA-damage marker H2A.X, as detected by immunostaining. Activity and inhibition of the efflux pumps P-glycoprotein (P-gp) and multidrug resistance protein (MRP) were demonstrated using fluorescence-based transporter assays. In addition, the transepithelial transport function from the basolateral to the apical side of the proximal tubule was studied. The apparent permeability of the fluorescent P-gp substrate rhodamine 123 was decreased by 35% by co-incubation with cyclosporin A. Furthermore, the activity of the glucose transporter SGLT2 was demonstrated using the fluorescent glucose analog 6-NBDG which was sensitive to inhibition by phlorizin. Our results demonstrate that we developed a functional 3D perfused proximal tubule model with advanced renal epithelial characteristics that can be used for drug screening studies.


Subject(s)
Cell Culture Techniques , Epithelial Cells/drug effects , Kidney Diseases/chemically induced , Kidney Tubules, Proximal/drug effects , Membrane Transport Modulators/toxicity , Membrane Transport Proteins/drug effects , Perfusion , ATP Binding Cassette Transporter, Subfamily B, Member 1/antagonists & inhibitors , ATP Binding Cassette Transporter, Subfamily B, Member 1/metabolism , Biological Transport , Cell Line , Cell Polarity , Cisplatin/toxicity , Cyclosporine/toxicity , Dose-Response Relationship, Drug , Epithelial Cells/metabolism , Epithelial Cells/pathology , Humans , Kidney Diseases/metabolism , Kidney Diseases/pathology , Kidney Tubules, Proximal/metabolism , Kidney Tubules, Proximal/pathology , Lab-On-A-Chip Devices , Membrane Transport Proteins/metabolism , Microfluidic Analytical Techniques , Phlorhizin/toxicity , Sodium-Glucose Transporter 2/drug effects , Sodium-Glucose Transporter 2/metabolism , Sodium-Glucose Transporter 2 Inhibitors/toxicity , Tight Junctions/drug effects , Tight Junctions/metabolism , Tight Junctions/pathology
5.
AAPS J ; 20(5): 87, 2018 07 26.
Article in English | MEDLINE | ID: mdl-30051196

ABSTRACT

Drug-transporter interactions could impact renal drug clearance and should ideally be detected in early stages of drug development to avoid toxicity-related withdrawals in later stages. This requires reliable and robust assays for which current high-throughput screenings have, however, poor predictability. Kidney-on-a-chip platforms have the potential to improve predictability, but often lack compatibility with high-content detection platforms. Here, we combined conditionally immortalized proximal tubule epithelial cells overexpressing organic anion transporter 1 (ciPTEC-OAT1) with the microfluidic titer plate OrganoPlate to develop a screenings assay for renal drug-transporter interactions. In this platform, apical localization of F-actin and intracellular tight-junction protein zonula occludens-1 (ZO-1) indicated appropriate cell polarization. Gene expression levels of the drug transporters organic anion transporter 1 (OAT1; SLC22A6), organic cation transporter 2 (OCT2; SLC22A2), P-glycoprotein (P-gp; ABCB1), and multidrug resistance-associated protein 2 and 4 (MRP2/4; ABCC2/4) were similar levels to 2D static cultures. Functionality of the efflux transporters P-gp and MRP2/4 was studied as proof-of-concept for 3D assays using calcein-AM and 5-chloromethylfluorescein-diacetate (CMFDA), respectively. Confocal imaging demonstrated a 4.4 ± 0.2-fold increase in calcein accumulation upon P-gp inhibition using PSC833. For MRP2/4, a 3.0 ± 0.2-fold increased accumulation of glutathione-methylfluorescein (GS-MF) was observed upon inhibition with a combination of PSC833, MK571, and KO143. Semi-quantitative image processing methods for P-gp and MRP2/4 was demonstrated with corresponding Z'-factors of 0.1 ± 0.3 and 0.4 ± 0.1, respectively. In conclusion, we demonstrate a 3D microfluidic PTEC model valuable for screening of drug-transporter interactions that further allows multiplexing of endpoint read-outs for drug-transporter interactions and toxicity.


Subject(s)
Drug Evaluation, Preclinical/methods , Epithelial Cells/drug effects , Kidney Tubules, Proximal/drug effects , Lab-On-A-Chip Devices , Membrane Transport Modulators/toxicity , Membrane Transport Proteins/drug effects , Microfluidic Analytical Techniques/instrumentation , Actins/metabolism , Biological Transport , Cell Line, Transformed , Cell Polarity , Epithelial Cells/metabolism , Humans , Kidney Tubules, Proximal/metabolism , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Microscopy, Confocal , Multidrug Resistance-Associated Protein 2 , Risk Assessment , Zonula Occludens-1 Protein/metabolism
6.
Nat Commun ; 8(1): 262, 2017 08 15.
Article in English | MEDLINE | ID: mdl-28811479

ABSTRACT

In vitro models that better reflect in vivo epithelial barrier (patho-)physiology are urgently required to predict adverse drug effects. Here we introduce extracellular matrix-supported intestinal tubules in perfused microfluidic devices, exhibiting tissue polarization and transporter expression. Forty leak-tight tubules are cultured in parallel on a single plate and their response to pharmacological stimuli is recorded over 125 h using automated imaging techniques. A study comprising 357 gut tubes is performed, of which 93% are leak tight before exposure. EC50-time curves could be extracted that provide insight into both concentration and exposure time response. Full compatibility with standard equipment and user-friendly operation make this Organ-on-a-Chip platform readily applicable in routine laboratories.Efforts to determine the effects of drugs on epithelial barriers could benefit from better in vitro models. Here the authors develop a microfluidic device supporting the growth and function of extracellular matrix-supported intestinal tubules, and evaluate the effect of staurosporine and acetylsalicylic acid on barrier integrity.


Subject(s)
Cell Culture Techniques/methods , Intestinal Mucosa/metabolism , Microfluidic Analytical Techniques/methods , Caco-2 Cells , Cell Culture Techniques/instrumentation , Humans , Intestinal Mucosa/chemistry , Kinetics , Lab-On-A-Chip Devices , Microfluidic Analytical Techniques/instrumentation
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