| Literature DB >> 28401035 |
Shuaizhang Li1, Jinghua Zhao1, Ruili Huang1, Toni Steiner2, Maureen Bourner2, Michael Mitchell2, David C Thompson2, Bin Zhao3, Menghang Xia1.
Abstract
Kidney toxicity is a major problem both in drug development and clinical settings. It is difficult to predict nephrotoxicity in part because of the lack of appropriate in vitro cell models, limited endpoints, and the observation that the activity of membrane transporters which plays important roles in nephrotoxicity by affecting the pharmacokinetic profile of drugs is often not taken into account. We developed a new cell model using pseudo-immortalized human primary renal proximal tubule epithelial cells. This cell line (SA7K) was characterized by the presence of proximal tubule cell markers as well as several functional properties, including transporter activity and response to a few well-characterized nephrotoxicants. We subsequently evaluated a group of potential nephrotoxic compounds in SA7K cells and compared them to a commonly used human immortalized kidney cell line (HK-2). Cells were treated with test compounds and three endpoints were analyzed, including cell viability, apoptosis and mitochondrial membrane potential. The results showed that most of the known nephrotoxic compounds could be detected in one or more of these endpoints. There were sensitivity differences in response to several of the chemicals between HK-2 and SA7K cells, which may relate to differences in expressions of key transporters or other components of nephrotoxicity pathways. Our data suggest that SA7K cells appear as promising for the early detection of renal toxicants.Entities:
Keywords: Apoptosis; Mitochondrial membrane potential (MMP); Nephrotoxicity; SA7K cells; Transporters
Year: 2017 PMID: 28401035 PMCID: PMC5362976 DOI: 10.2174/2213988501711010019
Source DB: PubMed Journal: Curr Chem Genom Transl Med ISSN: 2213-9885
Cytotoxicity of well-characterized human nephrotoxicants in HK-2 and SA7K Cells.
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| HK-2 | SA7K | HK-2 | SA7K | HK-2 | SA7K | |
| Cyclosporine A | 19.92±4.17 | Inactive | Inactive | 11.12±1.80 | Inactive | 10.34±1.86 |
| Potassium dichromate | 65.75±14.83 | 18.65±5.27 | Inactive | 23.39±1.90 | Inactive | 72.54±4.91 |
| Cadmium (II) chloride | 26.98±4.60 | 65.23±11.73 | Inactive | Inactive | Inactive | Inactive |
| Citrinin | 78.2±0 | 87.75±0 | Inactive | 98.46± 0 | 78.56±9.03 | 73.96±6.01 |
| Adefovir dipivoxil | 64.65±4.38 | 91.71±11.69 | 63.23±14.46 | 84.57±5.51 | Inactive | 78.21±0 |
| Puromycin | 1.30±0.64 | 3.95±0.64 | 3.37±0.22 | 2.55±0.82 | Inactive | 5.28±2.68 |
| Arsenic trioxide | 13.15±1.07 | 17.19±4.29 | Inactive | 15.16±6.0 | Inactive | Inactive |
| Rifampin | 84.57±5.51 | 69.70±0 | Inactive | 82.98±6.75 | 26.89±3.70 | 15.67±5.70 |
| Tacrolimus | Inactive | Inactive | Inactive | Inactive | 49.93±0 | 22.30±0 |
| Tetracycline | Inactive | Inactive | Inactive | Inactive | Inactive | 9.85±0 |
Data are presented as mean ± SD from two to three experiments. Compounds showing no concentration response were defined as inactive.
Evaluation of nephrotoxic compounds in HK-2 and SA7K Cells.
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| HK-2 | SA7K | HK-2 | SA7K | HK-2 | SA7K | |
| Camptothecin | 0.69±0.09 | 0.75±0.14 | 0.47±0.05 | 1.92 | 6.26±0.51 | 14.54±3.63 |
| Sunitinib malate | 18.03±3.09 | 12.65±3.06 | Inactive | 7.33±1.78 | Inactive | Inactive |
| Sulfinpyrazone | 22.21±1.81 | Inactive | Inactive | Inactive | 14.82±1.28 | 11±4.15 |
| Mitomycin C | 10.11±0.66 | 7.53±2.90 | 23.79±4.44 | 6.38±0.42 | Inactive | Inactive |
| Vinblastine Sulfate | Inactive | Inactive | Inactive | 0.57±1.86 | Inactive | Inactive |
| Doxorubicin | 3.89±0.50 | 2.51±0.74 | 2.64±0.79 | 2.75±0.35 | 0.39±0.19 | 1.18±0.51 |
| Taxol | Inactive | Inactive | 0.04±0.01 | 0.67±0.29 | 34.08±4.45 | 35.87±2.34 |
| Ochratoxin A | 0.04±0 | 17.00±1.38 | 0.15±0.06 | Inactive | Inactive | Inactive |
| Ergotamine | Inactive | Inactive | Inactive | Inactive | 17.64±1.43 | 16.16±2.75 |
| Digoxin | 0.03±0.008 | 0.61±0.19 | Inactive | Inactive | Inactive | Inactive |
Data are presented as mean ± SD from two to three experiments.