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Molecular and cellular remodeling of HepG2 cells upon treatment with antitubercular drugs
Shikha Bakshi1, Maninder Kaur1, Arpana Verma1
1Department of Biochemistry, Post Graduate Institute of Medical Education and Research, Chandigarh, India.
Abstract:
Drug-induced liver injury (DILI) is an adverse outcome of the currently used tuberculosis treatment regimen, which results in patient noncompliance, poor treatment outcomes, and the emergence of drug-resistant tuberculosis. DILI is primarily caused by the toxicity of the drugs and their metabolites, which affect liver cells, biliary epithelial cells, and liver vasculature. However, the precise mechanism behind the cellular damage attributable to first-line antitubercular drugs (ATDs), as well as the effect of toxicity on the cell survival strategies, is yet to be elucidated. In the current study, HepG2 cells upon treatment with a high concentration of ATDs showed increased perforation within the cell, cuboidal shape, and membrane blebbing as compared with control/untreated cells. It was observed that ATD-induced toxicity in HepG2 cells leads to altered mitochondrial membrane permeability, which was depicted by the decreased fluorescence intensity of the MitoRed tracker dye at higher drug concentrations. In addition, high doses of ATDs caused cell damage through an increase in reactive oxygen species production in HepG2 cells and a simultaneous reduction in glutathione levels. Further, high dose of isoniazid (50-200 mM), pyrazinamide (50-200 mM), and rifampicin (20-100 µM) causes cell apoptosis and affects cell survival during toxic conditions by decreasing the expression of potent autophagy markers Atg5, Atg7, and LC3B. Thus, ATD-mediated toxicity contributes to the reduced ability of hepatocytes to tolerate cellular damage caused by altered mitochondrial membrane permeability, increased apoptosis, and decreased autophagy. These findings further emphasize the need to develop adjuvant therapies that can mitigate ATD-induced toxicity for the effective treatment of tuberculosis.
Insights
Drug-induced liver injury from tuberculosis treatments harms patients. This study reveals how antitubercular drugs damage liver cells by increasing oxidative stress, altering mitochondria, and reducing autophagy, impacting cell survival.
Area of Science:
- Hepatology
- Toxicology
- Cell Biology
Background:
- Drug-induced liver injury (DILI) is a significant adverse effect of tuberculosis treatment.
- DILI complicates treatment, leading to noncompliance and drug resistance.
- Mechanisms of DILI from first-line antitubercular drugs (ATDs) require further elucidation.
Purpose of the Study:
- To investigate the cellular mechanisms of DILI caused by ATDs.
- To understand how ATD toxicity affects hepatocyte survival strategies.
- To identify cellular damage pathways induced by high ATD concentrations.
Main Methods:
- Utilized HepG2 cells as an in vitro model for liver cells.
- Assessed cellular morphology changes (perforation, shape, blebbing) post-ATD treatment.
- Measured mitochondrial membrane permeability using MitoRed tracker.
- Quantified reactive oxygen species (ROS) production and glutathione levels.
- Evaluated apoptosis and autophagy markers (Atg5, Atg7, LC3B) via gene expression.
Main Results:
- High ATD concentrations induced significant morphological changes in HepG2 cells.
- ATD toxicity led to increased mitochondrial membrane permeability and ROS production.
- Glutathione levels decreased, while apoptosis markers increased under high ATD doses.
- Expression of key autophagy markers (Atg5, Atg7, LC3B) was significantly reduced.
Conclusions:
- ATD-induced toxicity impairs hepatocyte's ability to manage cellular damage.
- Mechanisms include altered mitochondrial function, elevated apoptosis, and suppressed autophagy.
- Findings highlight the need for adjuvant therapies to mitigate ATD liver toxicity.
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