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Pharmacokinetic predictions of ROS-mediated targets and genotoxin combinations via multiple ligand simultaneous
C P Sri Snehaa1, Praveen Kumar Issac2, Palanisamy Rajaguru1,3
1Department of Biotechnology, University College of Engineering, Bharathidasan Institute of Technology Campus, Anna University, Tiruchirappalli, Tamil Nadu 620024 India.
Abstract:
Although combination therapy is known for its high efficacy, reduced side effects and drug resistance, toxicity remains a major drawback. Some of the genes are likely to induce hepatotoxicity through ROS-mediated mechanisms when a drug is metabolized alone or in combination in the liver. To address this, we have developed a scientific approach to predict the toxicity of different genotoxin combinations and validate their interactions with various targets. The current study is an extensive study of our previous set of in vivo rat liver microarray data processed using R studio for their functional analysis. About five combinations of genotoxins such as CPT/ETP, CPT/CPL, ETP/CPL, CP/CPT and EES/CP along with their differential gene expression targeting Chemical carcinogenesis-ROS are chosen for this study. We aim to examine the binding affinity of different genotoxin combinations using in silico multiple ligand simultaneous docking (MLSD) and are then bio-evaluated for cytotoxicity in vitro using human hepatocellular carcinoma cell lines (HepG2) with the MTT assay. As a result, dose-response cytotoxicity with its strength of interactions and a significant variance in ROS levels in the treated cells is observed compared to their IC50 values. Out of 5 combinations such as CPT/CPL, ETP/CPL and EES/CP are found not only to be significantly cytotoxic but also induce oxidative stress specifically above their IC50 values with good and moderate binding interactions ensuring their toxicity. On the contrary, the safe combinations are found to be CTP/ETP and CP/CPT possibly with no and tolerable adverse effects standing as preliminary information for researchers in drug design and development.
Insights
Predicting genotoxin combination toxicity is crucial for drug development. Some combinations like CPT/CPL induce significant oxidative stress and cytotoxicity, while others, such as CTP/ETP, show safer profiles, guiding future research.
Area of Science:
- Toxicology
- Pharmacology
- Biochemistry
Background:
- Combination therapy offers efficacy but faces toxicity challenges, particularly hepatotoxicity mediated by reactive oxygen species (ROS).
- Predicting and validating genotoxin interactions is essential for safe drug development.
Purpose of the Study:
- To develop a scientific approach for predicting genotoxin combination toxicity.
- To validate interactions and evaluate cytotoxicity of specific genotoxin combinations.
Main Methods:
- Utilized in vivo rat liver microarray data and R studio for functional analysis.
- Employed in silico multiple ligand simultaneous docking (MLSD) to assess binding affinity.
- Performed in vitro cytotoxicity assays (MTT) on HepG2 cells.
Main Results:
- Observed dose-response cytotoxicity and significant ROS level variations correlated with IC50 values.
- CPT/CPL, ETP/CPL, and EES/CP combinations demonstrated significant cytotoxicity and induced oxidative stress.
- CTP/ETP and CP/CPT combinations exhibited minimal to tolerable adverse effects.
Conclusions:
- Identified specific genotoxin combinations with significant cytotoxic and ROS-inducing potential.
- Highlighted CTP/ETP and CP/CPT as potentially safe combinations for further drug design research.
- Provided preliminary data crucial for guiding drug development and mitigating toxicity risks.
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