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Assessment of Mitochondrial Functions and Cell Viability in Renal Cells Overexpressing Protein Kinase C Isozymes
Published on: January 7, 2013
Gentamicin causes apoptosis at low concentrations in renal LLC-PK1 cells subjected to electroporation
Hélène Servais1, Yves Jossin, Françoise Van Bambeke
1Unité de Pharmacologie Cellulaire et Moléculaire, Université Catholique de Louvain, 7370 avenue E. Mounier 73, B-1200 Brussels, Belgium.
Abstract:
Gentamicin accumulates in the lysosomes of kidney proximal tubular cells and causes apoptosis at clinically relevant doses. Gentamicin-induced apoptosis can be reproduced with cultured renal cells, but only at high extracellular concentrations (1 to 3 mM; 0.4 to 1.2 g/liter) because of its low level of uptake. We recently showed that gentamicin-induced apoptosis in LLC-PK1 cells involves a rapid (2-h) permeabilization of lysosomes and activation of the mitochondrial pathway of apoptosis (10 h). We now examine whether the delivery of gentamicin to the cytosol by electroporation would sensitize LLC-PK1 cells to apoptosis. Cells were subjected to eight pulses (1 ms) at 800 V/cm (square waves) in the presence of gentamicin (3 microM to 3 mM; 1.2 mg/liter to 1.2 g/liter); returned to gentamicin-free medium; and examined at 8 h for their Bax (a marker of mitochondrial pathway activation) contents by Western blotting and competitive reverse transcriptase PCR and at 24 h for apoptosis by 4',6'-diamidino-2'-phenylindole staining (confirmed by electron microscopy) and for necrosis (by determination of lactate dehydrogenase release). Nonelectroporated cells were incubated with gentamicin for 8 and 24 h. Significant increases in Bax levels (8 h) and apoptosis (24 h) were detected with 0.03 mM (13.2 mg/liter) gentamicin in electroporated cells compared with those achieved with 2 mM (928 mg/liter) in incubated cells. The increase in the Bax level was not associated with an increase in the level of its mRNA but was associated with the accumulation of ubiquitinated forms (probably as a result of impairment of its degradation by the proteasome). Assay of cell-associated gentamicin showed a marked, immediate, but transient accumulation in electroporated cells, whereas a slow, steady uptake was detected in incubated cells. The data indicate that cytosolic gentamicin triggers apoptosis. Sequestration of gentamicin in lysosomes would, to some extent, protect against apoptosis.
Insights
Cytosolic delivery of gentamicin sensitizes kidney cells to apoptosis by increasing Bax levels. Lysosomal sequestration protects cells, indicating cytosol entry triggers programmed cell death.
Area of Science:
- Nephrology
- Cell Biology
- Biochemistry
Background:
- Gentamicin accumulates in kidney lysosomes, inducing apoptosis at clinical doses.
- Low cellular uptake limits gentamicin-induced apoptosis in cultured renal cells.
- Lysosomal permeabilization and mitochondrial pathway activation precede gentamicin-induced apoptosis.
Purpose of the Study:
- To investigate if delivering gentamicin to the cytosol via electroporation sensitizes LLC-PK1 cells to apoptosis.
- To compare the apoptotic effects of cytosolic vs. extracellular gentamicin exposure.
Main Methods:
- LLC-PK1 cells were electroporated in the presence of gentamicin.
- Bax protein levels and mRNA were assessed via Western blotting and RT-PCR.
- Apoptosis and necrosis were evaluated using DAPI staining, electron microscopy, and LDH release assays.
Main Results:
- Electroporation enabled apoptosis induction with significantly lower gentamicin concentrations (0.03 mM) compared to incubation (2 mM).
- Increased Bax levels, independent of mRNA, correlated with ubiquitinated forms, suggesting proteasomal degradation impairment.
- Electroporated cells showed rapid, transient gentamicin accumulation, while incubated cells exhibited slow, steady uptake.
Conclusions:
- Cytosolic gentamicin directly triggers apoptosis in renal cells.
- Lysosomal sequestration of gentamicin offers partial protection against apoptosis.
- This study highlights the importance of gentamicin's cellular localization in mediating toxicity.

