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Updated: Jul 15, 2026

An In Vitro Approach to Study Mitochondrial Dysfunction: A Cybrid Model
Published on: March 9, 2022
Absence of a universal mechanism of mitochondrial toxicity by nucleoside analogs
Kaleb C Lund1, LaRae L Peterson, Kendall B Wallace
1Department of Biochemistry and Molecular Biology, Toxicology Graduate Program, University of Minnesota Medical School Duluth, 1035 University Drive, Duluth, MN 55812, USA. klund2@d.umn.edu
Abstract:
Nucleoside analogs are associated with various mitochondrial toxicities, and it is becoming increasingly difficult to accommodate these differences solely in the context of DNA polymerase gamma inhibition. Therefore, we examined the toxicities of zidovudine (AZT) (10 and 50 microM; 2.7 and 13.4 microg/ml), didanosine (ddI) (10 and 50 microM; 2.4 and 11.8 microg/ml), and zalcitabine (ddC) (1 and 5 microM; 0.21 and 1.1 microg/ml) in HepG2 and H9c2 cells without the presumption of mitochondrial DNA (mtDNA) depletion. Ethidium bromide (EtBr) (0.5 microg/ml; 1.3 microM) was used as a positive control. AZT treatment resulted in metabolic disruption (increased lactate and superoxide) and increased cell mortality with decreased proliferation, while mtDNA remained unchanged or increased (HepG2 cells; 50 microM AZT). ddC caused pronounced mtDNA depletion in HepG2 cells but not in H9c2 cells and increased mortality in HepG2 cells, but no significant metabolic disruption in either cell type. ddI caused a moderate depletion of mtDNA in both cell types but showed no other effects. EtBr exposure resulted in metabolic disruption, increased cell mortality with decreased cell proliferation, and mtDNA depletion in both cell types. We conclude that nucleoside analogs display unique toxicities within and between culture models, and therefore, care should be taken when generalizing about the mechanisms of nucleoside reverse transcriptase inhibitor toxicity. Additionally, mtDNA abundance does not necessarily correlate with metabolic disruption, especially in cell culture; careful discernment is recommended in this regard.
Insights
Nucleoside analogs exhibit distinct mitochondrial toxicities, impacting cell metabolism and viability differently. Mitochondrial DNA depletion does not always correlate with these toxic effects.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- Nucleoside analogs are known to cause mitochondrial toxicities.
- Existing explanations often focus solely on DNA polymerase gamma inhibition.
- Understanding diverse toxicity mechanisms is crucial for drug development.
Purpose of the Study:
- To investigate the specific toxicities of zidovudine (AZT), didanosine (ddI), and zalcitabine (ddC) in HepG2 and H9c2 cells.
- To assess these toxicities without assuming mitochondrial DNA (mtDNA) depletion as the primary mechanism.
- To compare the effects of these nucleoside analogs with a known mitochondrial toxin, ethidium bromide (EtBr).
Main Methods:
- Cultured HepG2 and H9c2 cells were treated with varying concentrations of AZT, ddI, and ddC.
- Mitochondrial DNA (mtDNA) levels, cell proliferation, metabolic indicators (lactate, superoxide), and cell mortality were measured.
- Ethidium bromide (EtBr) served as a positive control for mitochondrial toxicity.
Main Results:
- AZT induced metabolic disruption and increased cell mortality, with unchanged or increased mtDNA in HepG2 cells.
- ddC caused significant mtDNA depletion in HepG2 cells but not H9c2 cells, alongside increased mortality.
- ddI moderately depleted mtDNA in both cell types without other significant effects; EtBr caused broad toxicity and mtDNA depletion.
Conclusions:
- Nucleoside analogs display unique and varied toxicities across different cell models.
- Generalizing the mechanisms of nucleoside reverse transcriptase inhibitor toxicity requires caution.
- Mitochondrial DNA abundance does not consistently correlate with observed metabolic disruption in cell culture models.
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