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Controversial role of gamma-glutamyl transferase activity in cisplatin nephrotoxicity
Lukas Fliedl1, Matthias Wieser, Gabriele Manhart
1ACIB, Vienna, Austria.
Abstract:
Nephrotoxicity of chemotherapeutics is a major hindrance in the treatment of various tumors. Therefore, test systems that reflect mechanisms of human kidney toxicity are necessary, and to reduce animal testing cell culture based systems have to be developed. One cell type that is of specific interest in this regard are renal proximal tubular epithelial cells, as they reabsorb substances from human primary urine filtrates and thus are exposed to urinary excreted xenobiotics and are a major target of cisplatin toxicity. While animal studies using gamma glutamyl transferase (GGT) knock-out mice or GGT inhibitors show that GGT activity increases kidney toxicity of cisplatin, the use of various cell models gives contradictory results. We therefore used a cell panel of immortalized human renal proximal tubular epithelial (RPTECs) cell lines differing in GGT activity. Low GGT activity resulted in high cisplatin sensitivity, as observed in RPTEC-SV40 cells or after siRNA mediated knock-down of GGT in RPTEC/TERT1 cells that have high GGT activity. However, the addition of GGT did not rescue, but also increased cisplatin sensitivity and adding GGT inhibitor as well as substrate (glutathione) or product (cysteinyl-glycine) of GGT resulted in decreased sensitivity. While our data suggest that the use of cell panels are of value in toxicology and toxicogenomics, they also emphasize on the complex interplay of toxins with the intracellular and extracellular microenvironment. In addition, we hypothesize that especially epithelial barrier formation and polarity of RPTECs need to be considered in toxicity models to validly predict the in vivo situation.
Insights
Chemotherapy-induced kidney toxicity necessitates better testing models. This study found that gamma glutamyl transferase (GGT) activity in renal proximal tubular epithelial cells (RPTECs) influences cisplatin sensitivity, highlighting the complexity of in vitro toxicology.
Area of Science:
- Nephrology
- Toxicology
- Cell Biology
Background:
- Chemotherapeutic nephrotoxicity impedes cancer treatment.
- Renal proximal tubular epithelial cells (RPTECs) are key targets for cisplatin toxicity.
- Existing cell models yield contradictory results on gamma glutamyl transferase (GGT) role in cisplatin nephrotoxicity.
Purpose of the Study:
- To investigate the role of GGT activity in cisplatin-induced nephrotoxicity using a panel of human RPTEC cell lines.
- To evaluate the utility of cell panels in toxicology and toxicogenomics.
- To identify factors influencing the accuracy of in vitro kidney toxicity models.
Main Methods:
- Utilized immortalized human RPTEC cell lines with varying GGT activity.
- Employed siRNA to modulate GGT expression.
- Assessed cisplatin sensitivity in RPTEC cell lines under different conditions, including GGT addition and inhibitor/substrate treatment.
Main Results:
- Low GGT activity correlated with high cisplatin sensitivity in RPTEC-SV40 cells and GGT-knockdown cells.
- Exogenous GGT addition increased, rather than rescued, cisplatin sensitivity.
- GGT inhibitors, glutathione, and cysteinyl-glycine decreased cisplatin sensitivity.
Conclusions:
- Cell panels are valuable tools for toxicology and toxicogenomics research.
- GGT activity's role in cisplatin nephrotoxicity is complex and context-dependent.
- Epithelial barrier integrity and polarity are critical considerations for accurate in vitro toxicity prediction.
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