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Updated: May 12, 2026

Advanced 3D Liver Models for In vitro Genotoxicity Testing Following Long-Term Nanomaterial Exposure
Published on: June 5, 2020
An integrated approach for prospectively investigating a mode-of-action for rodent liver effects
Matthew J LeBaron1, David R Geter, Reza J Rasoulpour
1Toxicology and Environmental Research & Consulting, The Dow Chemical Company, Midland, MI 48674, USA. MJLeBaron@dow.com
Abstract:
Registration of new plant protection products (e.g., herbicide, insecticide, or fungicide) requires comprehensive mammalian toxicity evaluation including carcinogenicity studies in two species. The outcome of the carcinogenicity testing has a significant bearing on the overall human health risk assessment of the substance and, consequently, approved uses for different crops across geographies. In order to understand the relevance of a specific tumor finding to human health, a systematic, transparent, and hypothesis-driven mode of action (MoA) investigation is, appropriately, an expectation by the regulatory agencies. Here, we describe a novel approach of prospectively generating the MoA data by implementing additional end points to the standard guideline toxicity studies with sulfoxaflor, a molecule in development. This proactive MoA approach results in a more robust integration of molecular with apical end points while minimizing animal use. Sulfoxaflor, a molecule targeting sap-feeding insects, induced liver effects (increased liver weight due to hepatocellular hypertrophy) in an initial palatability probe study for selecting doses for subsequent repeat-dose dietary studies. This finding triggered the inclusion of dose-response investigations of the potential key events for rodent liver carcinogenesis, concurrent with the hazard assessment studies. As predicted, sulfoxaflor induced liver tumors in rats and mice in the bioassays. The MoA data available by the time of the carcinogenicity finding supported the conclusion that the carcinogenic potential of sulfoxaflor was due to CAR/PXR nuclear receptor activation with subsequent hepatocellular proliferation. This MoA was not considered to be relevant to humans as sulfoxaflor is unlikely to induce hepatocellular proliferation in humans and therefore would not be a human liver carcinogen.
Insights
New pesticide sulfoxaflor caused liver tumors in rodents via a mechanism not relevant to humans. This proactive mode of action investigation supports its safety for human health risk assessment.
Area of Science:
- Toxicology
- Carcinogenesis
- Regulatory Science
Background:
- Mammalian toxicity evaluation, including carcinogenicity studies, is crucial for registering new plant protection products.
- Understanding the mode of action (MoA) of observed tumor findings is essential for human health risk assessment and regulatory approval.
- Regulatory agencies expect systematic, transparent, and hypothesis-driven MoA investigations.
Purpose of the Study:
- To describe a novel approach for prospectively generating MoA data alongside standard toxicity studies.
- To integrate molecular and apical endpoints to minimize animal use and enhance MoA understanding.
- To investigate the MoA of liver effects observed with sulfoxaflor, a novel insecticide.
Main Methods:
- Implemented additional endpoints in standard toxicity studies for sulfoxaflor.
- Conducted dose-response investigations of key events related to rodent liver carcinogenesis.
- Integrated molecular data with apical endpoints during hazard assessment.
Main Results:
- Sulfoxaflor induced liver tumors in rats and mice.
- MoA data indicated CAR/PXR nuclear receptor activation and subsequent hepatocellular proliferation as the cause of tumors.
- This MoA was determined to be not relevant to humans.
Conclusions:
- The proactive MoA investigation approach provides robust data integration and minimizes animal use.
- Sulfoxaflor's carcinogenic potential in rodents is mediated by a mechanism not applicable to humans.
- This MoA data supports the conclusion that sulfoxaflor is unlikely to be a human liver carcinogen.
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