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Cultured human proximal tubule cells as a model for aminoglycoside nephrotoxicity
M A Sens1, G R Hennigar, D J Hazen-Martin
1Department of Pathology, Medical University of South Carolina, Charleston 29425.
Abstract:
Despite numerous clinical and animal studies, the initial injury and pathogenesis of aminoglycoside nephrotoxicity remains unclear. To compliment and extend existing research avenues, a cell culture model system representative of the human proximal tubule (HPT) was tested to determine its applicability for use in studies assessing aminoglycoside-induced cellular toxicity. For this determination, the proximal tubule cell cultures were exposed to increasing concentrations of streptomycin and monitored for cell death and light and electron microscopic changes under both confluent (resting) and subconfluent (actively-dividing) culture conditions. Confluent cultures exposed to streptomycin were also assessed for possible alterations in transport activities by monitoring the electrical properties of the cells through Ussing chamber analysis. Both the confluent and subconfluent cultures demonstrated concentration-dependent toxicity to streptomycin. Ultrastructural analysis disclosed that both actively-dividing and stationary cultures contained "myeloid bodies" within the cytoplasm, consistent with those known to occur in vivo. In studies relating cell numbers to the dosage and time of exposure to streptomycin, the confluent cultures demonstrated and "insult-recovery" period at toxic, but sub-lethal, concentration, again correlating to the known in vivo experience with this class of antibiotics. The subconfluent cultures demonstrated increased resistance to the toxic effects of streptomycin, again mimicking the clinical experience with aminoglycoside toxicity. Chamber analysis, at a streptomycin dose well below the toxic level, indicated changes in the transport activities of these cultured cells. It is proposed that the use of cultured proximal tubule cells could be a useful model system to extend current research avenues assessing the mechanism of aminoglycoside nephrotoxicity.
Insights
This study introduces a human proximal tubule cell culture model to investigate aminoglycoside nephrotoxicity. The model successfully replicated in vivo toxicity patterns, offering a new tool for studying antibiotic-induced kidney damage.
Area of Science:
- Nephrology
- Toxicology
- Cell Biology
Background:
- The precise mechanisms underlying aminoglycoside nephrotoxicity remain incompletely understood despite extensive research.
- Existing clinical and animal studies have limitations in fully elucidating the initial injury and pathogenesis.
- A robust in vitro model is needed to complement current research and explore cellular toxicity mechanisms.
Purpose of the Study:
- To evaluate the utility of a human proximal tubule (HPT) cell culture system for studying aminoglycoside-induced cellular toxicity.
- To assess the applicability of this model in mimicking in vivo observations of aminoglycoside nephrotoxicity.
Main Methods:
- Human proximal tubule cell cultures were exposed to varying concentrations of streptomycin under both confluent (resting) and subconfluent (actively-dividing) conditions.
- Cell death, light, and electron microscopic changes were monitored.
- Ussing chamber analysis assessed electrical properties and transport activities in confluent cultures exposed to sub-toxic streptomycin doses.
Main Results:
- Both culture conditions exhibited concentration-dependent toxicity to streptomycin.
- Ultrastructural analysis revealed 'myeloid bodies' in both cell states, consistent with in vivo findings.
- Confluent cultures showed an 'insult-recovery' pattern at sub-lethal doses, while subconfluent cultures displayed increased resistance, mirroring clinical observations.
Conclusions:
- Cultured human proximal tubule cells demonstrate concentration-dependent toxicity and characteristic ultrastructural changes upon streptomycin exposure.
- The model effectively replicates key aspects of aminoglycoside nephrotoxicity observed in vivo, including insult-recovery dynamics and differential resistance.
- This cell culture system is proposed as a valuable tool for further investigation into the mechanisms of aminoglycoside-induced kidney damage.