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Proposed mode of action of benzene-induced leukemia: Interpreting available data and identifying critical data gaps
M E Bette Meek1, James E Klaunig
1McLaughlin Centre for Population Health Risk Assessment, University of Ottawa, One Stewart Street, Suite 309, Ottawa, Ontario, Canada. bmeek@uottawa.ca
Abstract:
Mode of action is defined as a series of key biological events leading to an observed toxicological effect (for example, metabolism to a toxic entity, cell death, regenerative repair and tumors). It contrasts with mechanism of action, which generally involves a detailed understanding of the molecular basis for an effect. A framework to consider the weight of evidence for hypothesized modes of action in animals and their relevance to humans, has been widely adopted and used by government agencies and international organizations. The framework, developed and refined through its application in case studies for principally non-DNA-reactive carcinogens, has more recently been extended to DNA-reactive carcinogens, non-cancer endpoints and different life stages. In addition to increasing transparency, use of the framework promotes consistency in decision-making concerning adequacy of weight of evidence, facilitates peer input and review and identifies critical research needs. The framework provides an effective tool to facilitate discussion between the research and risk assessment communities on critical data gaps, which if filled, would permit more refined estimates of risk. As a basis for additionally coordinating and focusing research on critical data gaps in a risk assessment context, five key events in the mode of action for benzene-induced leukemia are proposed: (1) benzene metabolism via Cytochrome P450, (2) the interaction of benzene metabolites with target cells in the bone marrow, (3) formation of initiated, mutated target cells, (4) selective proliferation of the mutated cells and (5) production of leukemia. These key events are considered in a framework analysis of human relevance as a basis to consider appropriate next steps in developing research strategies.
Insights
Understanding the mode of action (MOA) is crucial for toxicological effect assessment. A weight-of-evidence framework helps evaluate MOA hypotheses and guides research for better risk assessment, exemplified by benzene-induced leukemia.
Area of Science:
- Toxicology
- Risk Assessment
- Carcinogenesis
Background:
- Mode of action (MOA) describes biological events leading to toxicological effects, distinct from molecular mechanisms.
- A weight-of-evidence framework for MOA evaluation is widely used by regulatory agencies.
- This framework has been adapted for various endpoints, life stages, and carcinogen types.
Purpose of the Study:
- To present a framework for evaluating the weight of evidence for hypothesized modes of action.
- To enhance transparency, consistency, and peer review in toxicological assessments.
- To identify critical data gaps and coordinate research for refined risk estimates.
Main Methods:
- Application of a weight-of-evidence framework to assess hypothesized modes of action.
- Case studies involving non-DNA-reactive and DNA-reactive carcinogens.
- Extension of the framework to non-cancer endpoints and different life stages.
Main Results:
- The framework increases transparency and consistency in decision-making.
- It facilitates peer input, review, and identification of research needs.
- It serves as a tool for discussion between researchers and risk assessors.
Conclusions:
- A structured framework is effective for evaluating modes of action and their human relevance.
- Five key events in the MOA of benzene-induced leukemia are proposed for research focus.
- This approach aids in coordinating research to fill critical data gaps for improved risk assessment.
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